1 //===-- RNBRemote.cpp -------------------------------------------*- C++ -*-===//
2 //
3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4 // See https://llvm.org/LICENSE.txt for license information.
5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6 //
7 //===----------------------------------------------------------------------===//
8 //
9 //  Created by Greg Clayton on 12/12/07.
10 //
11 //===----------------------------------------------------------------------===//
12 
13 #include "RNBRemote.h"
14 
15 #include <bsm/audit.h>
16 #include <bsm/audit_session.h>
17 #include <cerrno>
18 #include <csignal>
19 #include <libproc.h>
20 #include <mach-o/loader.h>
21 #include <mach/exception_types.h>
22 #include <mach/mach_vm.h>
23 #include <mach/task_info.h>
24 #include <pwd.h>
25 #include <sys/stat.h>
26 #include <sys/sysctl.h>
27 #include <unistd.h>
28 
29 #if defined(__APPLE__)
30 #include <pthread.h>
31 #include <sched.h>
32 #endif
33 
34 #include "DNB.h"
35 #include "DNBDataRef.h"
36 #include "DNBLog.h"
37 #include "DNBThreadResumeActions.h"
38 #include "JSON.h"
39 #include "JSONGenerator.h"
40 #include "JSONGenerator.h"
41 #include "MacOSX/Genealogy.h"
42 #include "OsLogger.h"
43 #include "RNBContext.h"
44 #include "RNBServices.h"
45 #include "RNBSocket.h"
46 #include "StdStringExtractor.h"
47 
48 #include <compression.h>
49 
50 #include <TargetConditionals.h>
51 #include <iomanip>
52 #include <memory>
53 #include <sstream>
54 #include <unordered_set>
55 
56 #include <CoreFoundation/CoreFoundation.h>
57 #include <Security/Security.h>
58 
59 // constants
60 
61 static const std::string OS_LOG_EVENTS_KEY_NAME("events");
62 static const std::string JSON_ASYNC_TYPE_KEY_NAME("type");
63 
64 // std::iostream formatting macros
65 #define RAW_HEXBASE std::setfill('0') << std::hex << std::right
66 #define HEXBASE '0' << 'x' << RAW_HEXBASE
67 #define RAWHEX8(x) RAW_HEXBASE << std::setw(2) << ((uint32_t)((uint8_t)x))
68 #define RAWHEX16 RAW_HEXBASE << std::setw(4)
69 #define RAWHEX32 RAW_HEXBASE << std::setw(8)
70 #define RAWHEX64 RAW_HEXBASE << std::setw(16)
71 #define HEX8(x) HEXBASE << std::setw(2) << ((uint32_t)(x))
72 #define HEX16 HEXBASE << std::setw(4)
73 #define HEX32 HEXBASE << std::setw(8)
74 #define HEX64 HEXBASE << std::setw(16)
75 #define RAW_HEX(x) RAW_HEXBASE << std::setw(sizeof(x) * 2) << (x)
76 #define HEX(x) HEXBASE << std::setw(sizeof(x) * 2) << (x)
77 #define RAWHEX_SIZE(x, sz) RAW_HEXBASE << std::setw((sz)) << (x)
78 #define HEX_SIZE(x, sz) HEXBASE << std::setw((sz)) << (x)
79 #define STRING_WIDTH(w) std::setfill(' ') << std::setw(w)
80 #define LEFT_STRING_WIDTH(s, w)                                                \
81   std::left << std::setfill(' ') << std::setw(w) << (s) << std::right
82 #define DECIMAL std::dec << std::setfill(' ')
83 #define DECIMAL_WIDTH(w) DECIMAL << std::setw(w)
84 #define FLOAT(n, d)                                                            \
85   std::setfill(' ') << std::setw((n) + (d) + 1) << std::setprecision(d)        \
86                     << std::showpoint << std::fixed
87 #define INDENT_WITH_SPACES(iword_idx)                                          \
88   std::setfill(' ') << std::setw((iword_idx)) << ""
89 #define INDENT_WITH_TABS(iword_idx)                                            \
90   std::setfill('\t') << std::setw((iword_idx)) << ""
91 // Class to handle communications via gdb remote protocol.
92 
93 // Prototypes
94 
95 static std::string binary_encode_string(const std::string &s);
96 
97 // Decode a single hex character and return the hex value as a number or
98 // -1 if "ch" is not a hex character.
99 static inline int xdigit_to_sint(char ch) {
100   if (ch >= 'a' && ch <= 'f')
101     return 10 + ch - 'a';
102   if (ch >= 'A' && ch <= 'F')
103     return 10 + ch - 'A';
104   if (ch >= '0' && ch <= '9')
105     return ch - '0';
106   return -1;
107 }
108 
109 // Decode a single hex ASCII byte. Return -1 on failure, a value 0-255
110 // on success.
111 static inline int decoded_hex_ascii_char(const char *p) {
112   const int hi_nibble = xdigit_to_sint(p[0]);
113   if (hi_nibble == -1)
114     return -1;
115   const int lo_nibble = xdigit_to_sint(p[1]);
116   if (lo_nibble == -1)
117     return -1;
118   return (uint8_t)((hi_nibble << 4) + lo_nibble);
119 }
120 
121 // Decode a hex ASCII string back into a string
122 static std::string decode_hex_ascii_string(const char *p,
123                                            uint32_t max_length = UINT32_MAX) {
124   std::string arg;
125   if (p) {
126     for (const char *c = p; ((c - p) / 2) < max_length; c += 2) {
127       int ch = decoded_hex_ascii_char(c);
128       if (ch == -1)
129         break;
130       else
131         arg.push_back(ch);
132     }
133   }
134   return arg;
135 }
136 
137 uint64_t decode_uint64(const char *p, int base, char **end = nullptr,
138                        uint64_t fail_value = 0) {
139   nub_addr_t addr = strtoull(p, end, 16);
140   if (addr == 0 && errno != 0)
141     return fail_value;
142   return addr;
143 }
144 
145 extern void ASLLogCallback(void *baton, uint32_t flags, const char *format,
146                            va_list args);
147 
148 // from System.framework/Versions/B/PrivateHeaders/sys/codesign.h
149 extern "C" {
150 #define CS_OPS_STATUS 0       /* return status */
151 #define CS_RESTRICT 0x0000800 /* tell dyld to treat restricted */
152 int csops(pid_t pid, unsigned int ops, void *useraddr, size_t usersize);
153 
154 // from rootless.h
155 bool rootless_allows_task_for_pid(pid_t pid);
156 
157 // from sys/csr.h
158 typedef uint32_t csr_config_t;
159 #define CSR_ALLOW_TASK_FOR_PID (1 << 2)
160 int csr_check(csr_config_t mask);
161 }
162 
163 RNBRemote::RNBRemote()
164     : m_ctx(), m_comm(), m_arch(), m_continue_thread(-1), m_thread(-1),
165       m_mutex(), m_dispatch_queue_offsets(),
166       m_dispatch_queue_offsets_addr(INVALID_NUB_ADDRESS),
167       m_qSymbol_index(UINT32_MAX), m_packets_recvd(0), m_packets(),
168       m_rx_packets(), m_rx_partial_data(), m_rx_pthread(0),
169       m_max_payload_size(DEFAULT_GDB_REMOTE_PROTOCOL_BUFSIZE - 4),
170       m_extended_mode(false), m_noack_mode(false),
171       m_thread_suffix_supported(false), m_list_threads_in_stop_reply(false),
172       m_compression_minsize(384), m_enable_compression_next_send_packet(false),
173       m_compression_mode(compression_types::none) {
174   DNBLogThreadedIf(LOG_RNB_REMOTE, "%s", __PRETTY_FUNCTION__);
175   CreatePacketTable();
176 }
177 
178 RNBRemote::~RNBRemote() {
179   DNBLogThreadedIf(LOG_RNB_REMOTE, "%s", __PRETTY_FUNCTION__);
180   StopReadRemoteDataThread();
181 }
182 
183 void RNBRemote::CreatePacketTable() {
184   // Step required to add new packets:
185   // 1 - Add new enumeration to RNBRemote::PacketEnum
186   // 2 - Create the RNBRemote::HandlePacket_ function if a new function is
187   // needed
188   // 3 - Register the Packet definition with any needed callbacks in this
189   // function
190   //          - If no response is needed for a command, then use NULL for the
191   //          normal callback
192   //          - If the packet is not supported while the target is running, use
193   //          NULL for the async callback
194   // 4 - If the packet is a standard packet (starts with a '$' character
195   //      followed by the payload and then '#' and checksum, then you are done
196   //      else go on to step 5
197   // 5 - if the packet is a fixed length packet:
198   //      - modify the switch statement for the first character in the payload
199   //        in RNBRemote::CommDataReceived so it doesn't reject the new packet
200   //        type as invalid
201   //      - modify the switch statement for the first character in the payload
202   //        in RNBRemote::GetPacketPayload and make sure the payload of the
203   //        packet
204   //        is returned correctly
205 
206   std::vector<Packet> &t = m_packets;
207   t.push_back(Packet(ack, NULL, NULL, "+", "ACK"));
208   t.push_back(Packet(nack, NULL, NULL, "-", "!ACK"));
209   t.push_back(Packet(read_memory, &RNBRemote::HandlePacket_m, NULL, "m",
210                      "Read memory"));
211   t.push_back(Packet(read_register, &RNBRemote::HandlePacket_p, NULL, "p",
212                      "Read one register"));
213   t.push_back(Packet(read_general_regs, &RNBRemote::HandlePacket_g, NULL, "g",
214                      "Read registers"));
215   t.push_back(Packet(write_memory, &RNBRemote::HandlePacket_M, NULL, "M",
216                      "Write memory"));
217   t.push_back(Packet(write_register, &RNBRemote::HandlePacket_P, NULL, "P",
218                      "Write one register"));
219   t.push_back(Packet(write_general_regs, &RNBRemote::HandlePacket_G, NULL, "G",
220                      "Write registers"));
221   t.push_back(Packet(insert_mem_bp, &RNBRemote::HandlePacket_z, NULL, "Z0",
222                      "Insert memory breakpoint"));
223   t.push_back(Packet(remove_mem_bp, &RNBRemote::HandlePacket_z, NULL, "z0",
224                      "Remove memory breakpoint"));
225   t.push_back(Packet(single_step, &RNBRemote::HandlePacket_s, NULL, "s",
226                      "Single step"));
227   t.push_back(Packet(cont, &RNBRemote::HandlePacket_c, NULL, "c", "continue"));
228   t.push_back(Packet(single_step_with_sig, &RNBRemote::HandlePacket_S, NULL,
229                      "S", "Single step with signal"));
230   t.push_back(
231       Packet(set_thread, &RNBRemote::HandlePacket_H, NULL, "H", "Set thread"));
232   t.push_back(Packet(halt, &RNBRemote::HandlePacket_last_signal,
233                      &RNBRemote::HandlePacket_stop_process, "\x03", "^C"));
234   //  t.push_back (Packet (use_extended_mode,
235   //  &RNBRemote::HandlePacket_UNIMPLEMENTED, NULL, "!", "Use extended mode"));
236   t.push_back(Packet(why_halted, &RNBRemote::HandlePacket_last_signal, NULL,
237                      "?", "Why did target halt"));
238   t.push_back(
239       Packet(set_argv, &RNBRemote::HandlePacket_A, NULL, "A", "Set argv"));
240   //  t.push_back (Packet (set_bp,
241   //  &RNBRemote::HandlePacket_UNIMPLEMENTED, NULL, "B", "Set/clear
242   //  breakpoint"));
243   t.push_back(Packet(continue_with_sig, &RNBRemote::HandlePacket_C, NULL, "C",
244                      "Continue with signal"));
245   t.push_back(Packet(detach, &RNBRemote::HandlePacket_D, NULL, "D",
246                      "Detach gdb from remote system"));
247   //  t.push_back (Packet (step_inferior_one_cycle,
248   //  &RNBRemote::HandlePacket_UNIMPLEMENTED, NULL, "i", "Step inferior by one
249   //  clock cycle"));
250   //  t.push_back (Packet (signal_and_step_inf_one_cycle,
251   //  &RNBRemote::HandlePacket_UNIMPLEMENTED, NULL, "I", "Signal inferior, then
252   //  step one clock cycle"));
253   t.push_back(Packet(kill, &RNBRemote::HandlePacket_k, NULL, "k", "Kill"));
254   //  t.push_back (Packet (restart,
255   //  &RNBRemote::HandlePacket_UNIMPLEMENTED, NULL, "R", "Restart inferior"));
256   //  t.push_back (Packet (search_mem_backwards,
257   //  &RNBRemote::HandlePacket_UNIMPLEMENTED, NULL, "t", "Search memory
258   //  backwards"));
259   t.push_back(Packet(thread_alive_p, &RNBRemote::HandlePacket_T, NULL, "T",
260                      "Is thread alive"));
261   t.push_back(Packet(query_supported_features,
262                      &RNBRemote::HandlePacket_qSupported, NULL, "qSupported",
263                      "Query about supported features"));
264   t.push_back(Packet(vattach, &RNBRemote::HandlePacket_v, NULL, "vAttach",
265                      "Attach to a new process"));
266   t.push_back(Packet(vattachwait, &RNBRemote::HandlePacket_v, NULL,
267                      "vAttachWait",
268                      "Wait for a process to start up then attach to it"));
269   t.push_back(Packet(vattachorwait, &RNBRemote::HandlePacket_v, NULL,
270                      "vAttachOrWait", "Attach to the process or if it doesn't "
271                                       "exist, wait for the process to start up "
272                                       "then attach to it"));
273   t.push_back(Packet(vattachname, &RNBRemote::HandlePacket_v, NULL,
274                      "vAttachName", "Attach to an existing process by name"));
275   t.push_back(Packet(vcont_list_actions, &RNBRemote::HandlePacket_v, NULL,
276                      "vCont;", "Verbose resume with thread actions"));
277   t.push_back(Packet(vcont_list_actions, &RNBRemote::HandlePacket_v, NULL,
278                      "vCont?",
279                      "List valid continue-with-thread-actions actions"));
280   t.push_back(Packet(read_data_from_memory, &RNBRemote::HandlePacket_x, NULL,
281                      "x", "Read data from memory"));
282   t.push_back(Packet(write_data_to_memory, &RNBRemote::HandlePacket_X, NULL,
283                      "X", "Write data to memory"));
284   t.push_back(Packet(insert_hardware_bp, &RNBRemote::HandlePacket_z, NULL, "Z1",
285                      "Insert hardware breakpoint"));
286   t.push_back(Packet(remove_hardware_bp, &RNBRemote::HandlePacket_z, NULL, "z1",
287                      "Remove hardware breakpoint"));
288   t.push_back(Packet(insert_write_watch_bp, &RNBRemote::HandlePacket_z, NULL,
289                      "Z2", "Insert write watchpoint"));
290   t.push_back(Packet(remove_write_watch_bp, &RNBRemote::HandlePacket_z, NULL,
291                      "z2", "Remove write watchpoint"));
292   t.push_back(Packet(insert_read_watch_bp, &RNBRemote::HandlePacket_z, NULL,
293                      "Z3", "Insert read watchpoint"));
294   t.push_back(Packet(remove_read_watch_bp, &RNBRemote::HandlePacket_z, NULL,
295                      "z3", "Remove read watchpoint"));
296   t.push_back(Packet(insert_access_watch_bp, &RNBRemote::HandlePacket_z, NULL,
297                      "Z4", "Insert access watchpoint"));
298   t.push_back(Packet(remove_access_watch_bp, &RNBRemote::HandlePacket_z, NULL,
299                      "z4", "Remove access watchpoint"));
300   t.push_back(Packet(query_monitor, &RNBRemote::HandlePacket_qRcmd, NULL,
301                      "qRcmd", "Monitor command"));
302   t.push_back(Packet(query_current_thread_id, &RNBRemote::HandlePacket_qC, NULL,
303                      "qC", "Query current thread ID"));
304   t.push_back(Packet(query_echo, &RNBRemote::HandlePacket_qEcho, NULL, "qEcho:",
305                      "Echo the packet back to allow the debugger to sync up "
306                      "with this server"));
307   t.push_back(Packet(query_get_pid, &RNBRemote::HandlePacket_qGetPid, NULL,
308                      "qGetPid", "Query process id"));
309   t.push_back(Packet(query_thread_ids_first,
310                      &RNBRemote::HandlePacket_qThreadInfo, NULL, "qfThreadInfo",
311                      "Get list of active threads (first req)"));
312   t.push_back(Packet(query_thread_ids_subsequent,
313                      &RNBRemote::HandlePacket_qThreadInfo, NULL, "qsThreadInfo",
314                      "Get list of active threads (subsequent req)"));
315   // APPLE LOCAL: qThreadStopInfo
316   // syntax: qThreadStopInfoTTTT
317   //  TTTT is hex thread ID
318   t.push_back(Packet(query_thread_stop_info,
319                      &RNBRemote::HandlePacket_qThreadStopInfo, NULL,
320                      "qThreadStopInfo",
321                      "Get detailed info on why the specified thread stopped"));
322   t.push_back(Packet(query_thread_extra_info,
323                      &RNBRemote::HandlePacket_qThreadExtraInfo, NULL,
324                      "qThreadExtraInfo", "Get printable status of a thread"));
325   //  t.push_back (Packet (query_image_offsets,
326   //  &RNBRemote::HandlePacket_UNIMPLEMENTED, NULL, "qOffsets", "Report offset
327   //  of loaded program"));
328   t.push_back(Packet(
329       query_launch_success, &RNBRemote::HandlePacket_qLaunchSuccess, NULL,
330       "qLaunchSuccess", "Report the success or failure of the launch attempt"));
331   t.push_back(
332       Packet(query_register_info, &RNBRemote::HandlePacket_qRegisterInfo, NULL,
333              "qRegisterInfo",
334              "Dynamically discover remote register context information."));
335   t.push_back(Packet(
336       query_shlib_notify_info_addr, &RNBRemote::HandlePacket_qShlibInfoAddr,
337       NULL, "qShlibInfoAddr", "Returns the address that contains info needed "
338                               "for getting shared library notifications"));
339   t.push_back(Packet(query_step_packet_supported,
340                      &RNBRemote::HandlePacket_qStepPacketSupported, NULL,
341                      "qStepPacketSupported",
342                      "Replys with OK if the 's' packet is supported."));
343   t.push_back(
344       Packet(query_vattachorwait_supported,
345              &RNBRemote::HandlePacket_qVAttachOrWaitSupported, NULL,
346              "qVAttachOrWaitSupported",
347              "Replys with OK if the 'vAttachOrWait' packet is supported."));
348   t.push_back(
349       Packet(query_sync_thread_state_supported,
350              &RNBRemote::HandlePacket_qSyncThreadStateSupported, NULL,
351              "qSyncThreadStateSupported",
352              "Replys with OK if the 'QSyncThreadState:' packet is supported."));
353   t.push_back(Packet(
354       query_host_info, &RNBRemote::HandlePacket_qHostInfo, NULL, "qHostInfo",
355       "Replies with multiple 'key:value;' tuples appended to each other."));
356   t.push_back(Packet(
357       query_gdb_server_version, &RNBRemote::HandlePacket_qGDBServerVersion,
358       NULL, "qGDBServerVersion",
359       "Replies with multiple 'key:value;' tuples appended to each other."));
360   t.push_back(Packet(
361       query_process_info, &RNBRemote::HandlePacket_qProcessInfo, NULL,
362       "qProcessInfo",
363       "Replies with multiple 'key:value;' tuples appended to each other."));
364   t.push_back(Packet(
365       query_symbol_lookup, &RNBRemote::HandlePacket_qSymbol, NULL, "qSymbol:",
366       "Notify that host debugger is ready to do symbol lookups"));
367   t.push_back(Packet(json_query_thread_extended_info,
368                      &RNBRemote::HandlePacket_jThreadExtendedInfo, NULL,
369                      "jThreadExtendedInfo",
370                      "Replies with JSON data of thread extended information."));
371   t.push_back(Packet(json_query_get_loaded_dynamic_libraries_infos,
372                      &RNBRemote::HandlePacket_jGetLoadedDynamicLibrariesInfos,
373                      NULL, "jGetLoadedDynamicLibrariesInfos",
374                      "Replies with JSON data of all the shared libraries "
375                      "loaded in this process."));
376   t.push_back(
377       Packet(json_query_threads_info, &RNBRemote::HandlePacket_jThreadsInfo,
378              NULL, "jThreadsInfo",
379              "Replies with JSON data with information about all threads."));
380   t.push_back(Packet(json_query_get_shared_cache_info,
381                      &RNBRemote::HandlePacket_jGetSharedCacheInfo, NULL,
382                      "jGetSharedCacheInfo", "Replies with JSON data about the "
383                                             "location and uuid of the shared "
384                                             "cache in the inferior process."));
385   t.push_back(Packet(start_noack_mode, &RNBRemote::HandlePacket_QStartNoAckMode,
386                      NULL, "QStartNoAckMode",
387                      "Request that " DEBUGSERVER_PROGRAM_NAME
388                      " stop acking remote protocol packets"));
389   t.push_back(Packet(prefix_reg_packets_with_tid,
390                      &RNBRemote::HandlePacket_QThreadSuffixSupported, NULL,
391                      "QThreadSuffixSupported",
392                      "Check if thread specific packets (register packets 'g', "
393                      "'G', 'p', and 'P') support having the thread ID appended "
394                      "to the end of the command"));
395   t.push_back(Packet(set_logging_mode, &RNBRemote::HandlePacket_QSetLogging,
396                      NULL, "QSetLogging:", "Check if register packets ('g', "
397                                            "'G', 'p', and 'P' support having "
398                                            "the thread ID prefix"));
399   t.push_back(Packet(
400       set_max_packet_size, &RNBRemote::HandlePacket_QSetMaxPacketSize, NULL,
401       "QSetMaxPacketSize:",
402       "Tell " DEBUGSERVER_PROGRAM_NAME " the max sized packet gdb can handle"));
403   t.push_back(Packet(
404       set_max_payload_size, &RNBRemote::HandlePacket_QSetMaxPayloadSize, NULL,
405       "QSetMaxPayloadSize:", "Tell " DEBUGSERVER_PROGRAM_NAME
406                              " the max sized payload gdb can handle"));
407   t.push_back(
408       Packet(set_environment_variable, &RNBRemote::HandlePacket_QEnvironment,
409              NULL, "QEnvironment:",
410              "Add an environment variable to the inferior's environment"));
411   t.push_back(
412       Packet(set_environment_variable_hex,
413              &RNBRemote::HandlePacket_QEnvironmentHexEncoded, NULL,
414              "QEnvironmentHexEncoded:",
415              "Add an environment variable to the inferior's environment"));
416   t.push_back(Packet(set_launch_arch, &RNBRemote::HandlePacket_QLaunchArch,
417                      NULL, "QLaunchArch:", "Set the architecture to use when "
418                                            "launching a process for hosts that "
419                                            "can run multiple architecture "
420                                            "slices from universal files."));
421   t.push_back(Packet(set_disable_aslr, &RNBRemote::HandlePacket_QSetDisableASLR,
422                      NULL, "QSetDisableASLR:",
423                      "Set whether to disable ASLR when launching the process "
424                      "with the set argv ('A') packet"));
425   t.push_back(Packet(set_stdin, &RNBRemote::HandlePacket_QSetSTDIO, NULL,
426                      "QSetSTDIN:", "Set the standard input for a process to be "
427                                    "launched with the 'A' packet"));
428   t.push_back(Packet(set_stdout, &RNBRemote::HandlePacket_QSetSTDIO, NULL,
429                      "QSetSTDOUT:", "Set the standard output for a process to "
430                                     "be launched with the 'A' packet"));
431   t.push_back(Packet(set_stderr, &RNBRemote::HandlePacket_QSetSTDIO, NULL,
432                      "QSetSTDERR:", "Set the standard error for a process to "
433                                     "be launched with the 'A' packet"));
434   t.push_back(Packet(set_working_dir, &RNBRemote::HandlePacket_QSetWorkingDir,
435                      NULL, "QSetWorkingDir:", "Set the working directory for a "
436                                               "process to be launched with the "
437                                               "'A' packet"));
438   t.push_back(Packet(set_list_threads_in_stop_reply,
439                      &RNBRemote::HandlePacket_QListThreadsInStopReply, NULL,
440                      "QListThreadsInStopReply",
441                      "Set if the 'threads' key should be added to the stop "
442                      "reply packets with a list of all thread IDs."));
443   t.push_back(Packet(
444       sync_thread_state, &RNBRemote::HandlePacket_QSyncThreadState, NULL,
445       "QSyncThreadState:", "Do whatever is necessary to make sure 'thread' is "
446                            "in a safe state to call functions on."));
447   //  t.push_back (Packet (pass_signals_to_inferior,
448   //  &RNBRemote::HandlePacket_UNIMPLEMENTED, NULL, "QPassSignals:", "Specify
449   //  which signals are passed to the inferior"));
450   t.push_back(Packet(allocate_memory, &RNBRemote::HandlePacket_AllocateMemory,
451                      NULL, "_M", "Allocate memory in the inferior process."));
452   t.push_back(Packet(deallocate_memory,
453                      &RNBRemote::HandlePacket_DeallocateMemory, NULL, "_m",
454                      "Deallocate memory in the inferior process."));
455   t.push_back(Packet(
456       save_register_state, &RNBRemote::HandlePacket_SaveRegisterState, NULL,
457       "QSaveRegisterState", "Save the register state for the current thread "
458                             "and return a decimal save ID."));
459   t.push_back(Packet(restore_register_state,
460                      &RNBRemote::HandlePacket_RestoreRegisterState, NULL,
461                      "QRestoreRegisterState:",
462                      "Restore the register state given a save ID previously "
463                      "returned from a call to QSaveRegisterState."));
464   t.push_back(Packet(
465       memory_region_info, &RNBRemote::HandlePacket_MemoryRegionInfo, NULL,
466       "qMemoryRegionInfo", "Return size and attributes of a memory region that "
467                            "contains the given address"));
468   t.push_back(Packet(get_profile_data, &RNBRemote::HandlePacket_GetProfileData,
469                      NULL, "qGetProfileData",
470                      "Return profiling data of the current target."));
471   t.push_back(Packet(set_enable_profiling,
472                      &RNBRemote::HandlePacket_SetEnableAsyncProfiling, NULL,
473                      "QSetEnableAsyncProfiling",
474                      "Enable or disable the profiling of current target."));
475   t.push_back(Packet(enable_compression,
476                      &RNBRemote::HandlePacket_QEnableCompression, NULL,
477                      "QEnableCompression:",
478                      "Enable compression for the remainder of the connection"));
479   t.push_back(Packet(watchpoint_support_info,
480                      &RNBRemote::HandlePacket_WatchpointSupportInfo, NULL,
481                      "qWatchpointSupportInfo",
482                      "Return the number of supported hardware watchpoints"));
483   t.push_back(Packet(set_process_event,
484                      &RNBRemote::HandlePacket_QSetProcessEvent, NULL,
485                      "QSetProcessEvent:", "Set a process event, to be passed "
486                                           "to the process, can be set before "
487                                           "the process is started, or after."));
488   t.push_back(
489       Packet(set_detach_on_error, &RNBRemote::HandlePacket_QSetDetachOnError,
490              NULL, "QSetDetachOnError:",
491              "Set whether debugserver will detach (1) or kill (0) from the "
492              "process it is controlling if it loses connection to lldb."));
493   t.push_back(Packet(
494       speed_test, &RNBRemote::HandlePacket_qSpeedTest, NULL, "qSpeedTest:",
495       "Test the maximum speed at which packet can be sent/received."));
496   t.push_back(Packet(query_transfer, &RNBRemote::HandlePacket_qXfer, NULL,
497                      "qXfer:", "Support the qXfer packet."));
498 }
499 
500 void RNBRemote::FlushSTDIO() {
501   if (m_ctx.HasValidProcessID()) {
502     nub_process_t pid = m_ctx.ProcessID();
503     char buf[256];
504     nub_size_t count;
505     do {
506       count = DNBProcessGetAvailableSTDOUT(pid, buf, sizeof(buf));
507       if (count > 0) {
508         SendSTDOUTPacket(buf, count);
509       }
510     } while (count > 0);
511 
512     do {
513       count = DNBProcessGetAvailableSTDERR(pid, buf, sizeof(buf));
514       if (count > 0) {
515         SendSTDERRPacket(buf, count);
516       }
517     } while (count > 0);
518   }
519 }
520 
521 void RNBRemote::SendAsyncProfileData() {
522   if (m_ctx.HasValidProcessID()) {
523     nub_process_t pid = m_ctx.ProcessID();
524     char buf[1024];
525     nub_size_t count;
526     do {
527       count = DNBProcessGetAvailableProfileData(pid, buf, sizeof(buf));
528       if (count > 0) {
529         SendAsyncProfileDataPacket(buf, count);
530       }
531     } while (count > 0);
532   }
533 }
534 
535 rnb_err_t RNBRemote::SendHexEncodedBytePacket(const char *header,
536                                               const void *buf, size_t buf_len,
537                                               const char *footer) {
538   std::ostringstream packet_sstrm;
539   // Append the header cstr if there was one
540   if (header && header[0])
541     packet_sstrm << header;
542   nub_size_t i;
543   const uint8_t *ubuf8 = (const uint8_t *)buf;
544   for (i = 0; i < buf_len; i++) {
545     packet_sstrm << RAWHEX8(ubuf8[i]);
546   }
547   // Append the footer cstr if there was one
548   if (footer && footer[0])
549     packet_sstrm << footer;
550 
551   return SendPacket(packet_sstrm.str());
552 }
553 
554 rnb_err_t RNBRemote::SendSTDOUTPacket(char *buf, nub_size_t buf_size) {
555   if (buf_size == 0)
556     return rnb_success;
557   return SendHexEncodedBytePacket("O", buf, buf_size, NULL);
558 }
559 
560 rnb_err_t RNBRemote::SendSTDERRPacket(char *buf, nub_size_t buf_size) {
561   if (buf_size == 0)
562     return rnb_success;
563   return SendHexEncodedBytePacket("O", buf, buf_size, NULL);
564 }
565 
566 // This makes use of asynchronous bit 'A' in the gdb remote protocol.
567 rnb_err_t RNBRemote::SendAsyncProfileDataPacket(char *buf,
568                                                 nub_size_t buf_size) {
569   if (buf_size == 0)
570     return rnb_success;
571 
572   std::string packet("A");
573   packet.append(buf, buf_size);
574   return SendPacket(packet);
575 }
576 
577 rnb_err_t
578 RNBRemote::SendAsyncJSONPacket(const JSONGenerator::Dictionary &dictionary) {
579   std::ostringstream stream;
580   // We're choosing something that is easy to spot if we somehow get one
581   // of these coming out at the wrong time (i.e. when the remote side
582   // is not waiting for a process control completion response).
583   stream << "JSON-async:";
584   dictionary.Dump(stream);
585   const std::string payload = binary_encode_string(stream.str());
586   return SendPacket(payload);
587 }
588 
589 // Given a std::string packet contents to send, possibly encode/compress it.
590 // If compression is enabled, the returned std::string will be in one of two
591 // forms:
592 //
593 //    N<original packet contents uncompressed>
594 //    C<size of original decompressed packet>:<packet compressed with the
595 //    requested compression scheme>
596 //
597 // If compression is not requested, the original packet contents are returned
598 
599 std::string RNBRemote::CompressString(const std::string &orig) {
600   std::string compressed;
601   compression_types compression_type = GetCompressionType();
602   if (compression_type != compression_types::none) {
603     bool compress_this_packet = false;
604 
605     if (orig.size() > m_compression_minsize) {
606       compress_this_packet = true;
607     }
608 
609     if (compress_this_packet) {
610       const size_t encoded_data_buf_size = orig.size() + 128;
611       std::vector<uint8_t> encoded_data(encoded_data_buf_size);
612       size_t compressed_size = 0;
613 
614       // Allocate a scratch buffer for libcompression the first
615       // time we see a different compression type; reuse it in
616       // all compression_encode_buffer calls so it doesn't need
617       // to allocate / free its own scratch buffer each time.
618       // This buffer will only be freed when compression type
619       // changes; otherwise it will persist until debugserver
620       // exit.
621 
622       static compression_types g_libcompress_scratchbuf_type = compression_types::none;
623       static void *g_libcompress_scratchbuf = nullptr;
624 
625       if (g_libcompress_scratchbuf_type != compression_type) {
626         if (g_libcompress_scratchbuf) {
627           free (g_libcompress_scratchbuf);
628           g_libcompress_scratchbuf = nullptr;
629         }
630         size_t scratchbuf_size = 0;
631         switch (compression_type) {
632           case compression_types::lz4:
633             scratchbuf_size = compression_encode_scratch_buffer_size (COMPRESSION_LZ4_RAW);
634             break;
635           case compression_types::zlib_deflate:
636             scratchbuf_size = compression_encode_scratch_buffer_size (COMPRESSION_ZLIB);
637             break;
638           case compression_types::lzma:
639             scratchbuf_size = compression_encode_scratch_buffer_size (COMPRESSION_LZMA);
640             break;
641           case compression_types::lzfse:
642             scratchbuf_size = compression_encode_scratch_buffer_size (COMPRESSION_LZFSE);
643             break;
644           default:
645             break;
646         }
647         if (scratchbuf_size > 0) {
648           g_libcompress_scratchbuf = (void*) malloc (scratchbuf_size);
649           g_libcompress_scratchbuf_type = compression_type;
650         }
651       }
652 
653       if (compression_type == compression_types::lz4) {
654         compressed_size = compression_encode_buffer(
655             encoded_data.data(), encoded_data_buf_size,
656             (const uint8_t *)orig.c_str(), orig.size(),
657             g_libcompress_scratchbuf,
658             COMPRESSION_LZ4_RAW);
659       }
660       if (compression_type == compression_types::zlib_deflate) {
661         compressed_size = compression_encode_buffer(
662             encoded_data.data(), encoded_data_buf_size,
663             (const uint8_t *)orig.c_str(), orig.size(),
664             g_libcompress_scratchbuf,
665             COMPRESSION_ZLIB);
666       }
667       if (compression_type == compression_types::lzma) {
668         compressed_size = compression_encode_buffer(
669             encoded_data.data(), encoded_data_buf_size,
670             (const uint8_t *)orig.c_str(), orig.size(),
671             g_libcompress_scratchbuf,
672             COMPRESSION_LZMA);
673       }
674       if (compression_type == compression_types::lzfse) {
675         compressed_size = compression_encode_buffer(
676             encoded_data.data(), encoded_data_buf_size,
677             (const uint8_t *)orig.c_str(), orig.size(),
678             g_libcompress_scratchbuf,
679             COMPRESSION_LZFSE);
680       }
681 
682       if (compressed_size > 0) {
683         compressed.clear();
684         compressed.reserve(compressed_size);
685         compressed = "C";
686         char numbuf[16];
687         snprintf(numbuf, sizeof(numbuf), "%zu:", orig.size());
688         numbuf[sizeof(numbuf) - 1] = '\0';
689         compressed.append(numbuf);
690 
691         for (size_t i = 0; i < compressed_size; i++) {
692           uint8_t byte = encoded_data[i];
693           if (byte == '#' || byte == '$' || byte == '}' || byte == '*' ||
694               byte == '\0') {
695             compressed.push_back(0x7d);
696             compressed.push_back(byte ^ 0x20);
697           } else {
698             compressed.push_back(byte);
699           }
700         }
701       } else {
702         compressed = "N" + orig;
703       }
704     } else {
705       compressed = "N" + orig;
706     }
707   } else {
708     compressed = orig;
709   }
710 
711   return compressed;
712 }
713 
714 rnb_err_t RNBRemote::SendPacket(const std::string &s) {
715   DNBLogThreadedIf(LOG_RNB_MAX, "%8d RNBRemote::%s (%s) called",
716                    (uint32_t)m_comm.Timer().ElapsedMicroSeconds(true),
717                    __FUNCTION__, s.c_str());
718 
719   std::string s_compressed = CompressString(s);
720 
721   std::string sendpacket = "$" + s_compressed + "#";
722   int cksum = 0;
723   char hexbuf[5];
724 
725   if (m_noack_mode) {
726     sendpacket += "00";
727   } else {
728     for (size_t i = 0; i != s_compressed.size(); ++i)
729       cksum += s_compressed[i];
730     snprintf(hexbuf, sizeof hexbuf, "%02x", cksum & 0xff);
731     sendpacket += hexbuf;
732   }
733 
734   rnb_err_t err = m_comm.Write(sendpacket.c_str(), sendpacket.size());
735   if (err != rnb_success)
736     return err;
737 
738   if (m_noack_mode)
739     return rnb_success;
740 
741   std::string reply;
742   RNBRemote::Packet packet;
743   err = GetPacket(reply, packet, true);
744 
745   if (err != rnb_success) {
746     DNBLogThreadedIf(LOG_RNB_REMOTE,
747                      "%8d RNBRemote::%s (%s) got error trying to get reply...",
748                      (uint32_t)m_comm.Timer().ElapsedMicroSeconds(true),
749                      __FUNCTION__, sendpacket.c_str());
750     return err;
751   }
752 
753   DNBLogThreadedIf(LOG_RNB_MAX, "%8d RNBRemote::%s (%s) got reply: '%s'",
754                    (uint32_t)m_comm.Timer().ElapsedMicroSeconds(true),
755                    __FUNCTION__, sendpacket.c_str(), reply.c_str());
756 
757   if (packet.type == ack)
758     return rnb_success;
759 
760   // Should we try to resend the packet at this layer?
761   //  if (packet.command == nack)
762   return rnb_err;
763 }
764 
765 /* Get a packet via gdb remote protocol.
766  Strip off the prefix/suffix, verify the checksum to make sure
767  a valid packet was received, send an ACK if they match.  */
768 
769 rnb_err_t RNBRemote::GetPacketPayload(std::string &return_packet) {
770   // DNBLogThreadedIf (LOG_RNB_MAX, "%8u RNBRemote::%s called",
771   // (uint32_t)m_comm.Timer().ElapsedMicroSeconds(true), __FUNCTION__);
772 
773   PThreadMutex::Locker locker(m_mutex);
774   if (m_rx_packets.empty()) {
775     // Only reset the remote command available event if we have no more packets
776     m_ctx.Events().ResetEvents(RNBContext::event_read_packet_available);
777     // DNBLogThreadedIf (LOG_RNB_MAX, "%8u RNBRemote::%s error: no packets
778     // available...", (uint32_t)m_comm.Timer().ElapsedMicroSeconds(true),
779     // __FUNCTION__);
780     return rnb_err;
781   }
782 
783   // DNBLogThreadedIf (LOG_RNB_MAX, "%8u RNBRemote::%s has %u queued packets",
784   // (uint32_t)m_comm.Timer().ElapsedMicroSeconds(true), __FUNCTION__,
785   // m_rx_packets.size());
786   return_packet.swap(m_rx_packets.front());
787   m_rx_packets.pop_front();
788   locker.Reset(); // Release our lock on the mutex
789 
790   if (m_rx_packets.empty()) {
791     // Reset the remote command available event if we have no more packets
792     m_ctx.Events().ResetEvents(RNBContext::event_read_packet_available);
793   }
794 
795   // DNBLogThreadedIf (LOG_RNB_MEDIUM, "%8u RNBRemote::%s: '%s'",
796   // (uint32_t)m_comm.Timer().ElapsedMicroSeconds(true), __FUNCTION__,
797   // return_packet.c_str());
798 
799   switch (return_packet[0]) {
800   case '+':
801   case '-':
802   case '\x03':
803     break;
804 
805   case '$': {
806     long packet_checksum = 0;
807     if (!m_noack_mode) {
808       for (size_t i = return_packet.size() - 2; i < return_packet.size(); ++i) {
809         char checksum_char = tolower(return_packet[i]);
810         if (!isxdigit(checksum_char)) {
811           m_comm.Write("-", 1);
812           DNBLogThreadedIf(LOG_RNB_REMOTE, "%8u RNBRemote::%s error: packet "
813                                            "with invalid checksum characters: "
814                                            "%s",
815                            (uint32_t)m_comm.Timer().ElapsedMicroSeconds(true),
816                            __FUNCTION__, return_packet.c_str());
817           return rnb_err;
818         }
819       }
820       packet_checksum =
821           strtol(&return_packet[return_packet.size() - 2], NULL, 16);
822     }
823 
824     return_packet.erase(0, 1);                     // Strip the leading '$'
825     return_packet.erase(return_packet.size() - 3); // Strip the #XX checksum
826 
827     if (!m_noack_mode) {
828       // Compute the checksum
829       int computed_checksum = 0;
830       for (std::string::iterator it = return_packet.begin();
831            it != return_packet.end(); ++it) {
832         computed_checksum += *it;
833       }
834 
835       if (packet_checksum == (computed_checksum & 0xff)) {
836         // DNBLogThreadedIf (LOG_RNB_MEDIUM, "%8u RNBRemote::%s sending ACK for
837         // '%s'", (uint32_t)m_comm.Timer().ElapsedMicroSeconds(true),
838         // __FUNCTION__, return_packet.c_str());
839         m_comm.Write("+", 1);
840       } else {
841         DNBLogThreadedIf(
842             LOG_RNB_MEDIUM, "%8u RNBRemote::%s sending ACK for '%s' (error: "
843                             "packet checksum mismatch  (0x%2.2lx != 0x%2.2x))",
844             (uint32_t)m_comm.Timer().ElapsedMicroSeconds(true), __FUNCTION__,
845             return_packet.c_str(), packet_checksum, computed_checksum);
846         m_comm.Write("-", 1);
847         return rnb_err;
848       }
849     }
850   } break;
851 
852   default:
853     DNBLogThreadedIf(LOG_RNB_REMOTE,
854                      "%8u RNBRemote::%s tossing unexpected packet???? %s",
855                      (uint32_t)m_comm.Timer().ElapsedMicroSeconds(true),
856                      __FUNCTION__, return_packet.c_str());
857     if (!m_noack_mode)
858       m_comm.Write("-", 1);
859     return rnb_err;
860   }
861 
862   return rnb_success;
863 }
864 
865 rnb_err_t RNBRemote::HandlePacket_UNIMPLEMENTED(const char *p) {
866   DNBLogThreadedIf(LOG_RNB_MAX, "%8u RNBRemote::%s(\"%s\")",
867                    (uint32_t)m_comm.Timer().ElapsedMicroSeconds(true),
868                    __FUNCTION__, p ? p : "NULL");
869   return SendPacket("");
870 }
871 
872 rnb_err_t RNBRemote::HandlePacket_ILLFORMED(const char *file, int line,
873                                             const char *p,
874                                             const char *description) {
875   DNBLogThreadedIf(LOG_RNB_PACKETS, "%8u %s:%i ILLFORMED: '%s' (%s)",
876                    (uint32_t)m_comm.Timer().ElapsedMicroSeconds(true), file,
877                    line, __FUNCTION__, p);
878   return SendPacket("E03");
879 }
880 
881 rnb_err_t RNBRemote::GetPacket(std::string &packet_payload,
882                                RNBRemote::Packet &packet_info, bool wait) {
883   std::string payload;
884   rnb_err_t err = GetPacketPayload(payload);
885   if (err != rnb_success) {
886     PThreadEvent &events = m_ctx.Events();
887     nub_event_t set_events = events.GetEventBits();
888     // TODO: add timeout version of GetPacket?? We would then need to pass
889     // that timeout value along to DNBProcessTimedWaitForEvent.
890     if (!wait || ((set_events & RNBContext::event_read_thread_running) == 0))
891       return err;
892 
893     const nub_event_t events_to_wait_for =
894         RNBContext::event_read_packet_available |
895         RNBContext::event_read_thread_exiting;
896 
897     while ((set_events = events.WaitForSetEvents(events_to_wait_for)) != 0) {
898       if (set_events & RNBContext::event_read_packet_available) {
899         // Try the queue again now that we got an event
900         err = GetPacketPayload(payload);
901         if (err == rnb_success)
902           break;
903       }
904 
905       if (set_events & RNBContext::event_read_thread_exiting)
906         err = rnb_not_connected;
907 
908       if (err == rnb_not_connected)
909         return err;
910     }
911     while (err == rnb_err)
912       ;
913 
914     if (set_events == 0)
915       err = rnb_not_connected;
916   }
917 
918   if (err == rnb_success) {
919     Packet::iterator it;
920     for (it = m_packets.begin(); it != m_packets.end(); ++it) {
921       if (payload.compare(0, it->abbrev.size(), it->abbrev) == 0)
922         break;
923     }
924 
925     // A packet we don't have an entry for. This can happen when we
926     // get a packet that we don't know about or support. We just reply
927     // accordingly and go on.
928     if (it == m_packets.end()) {
929       DNBLogThreadedIf(LOG_RNB_PACKETS, "unimplemented packet: '%s'",
930                        payload.c_str());
931       HandlePacket_UNIMPLEMENTED(payload.c_str());
932       return rnb_err;
933     } else {
934       packet_info = *it;
935       packet_payload = payload;
936     }
937   }
938   return err;
939 }
940 
941 rnb_err_t RNBRemote::HandleAsyncPacket(PacketEnum *type) {
942   DNBLogThreadedIf(LOG_RNB_REMOTE, "%8u RNBRemote::%s",
943                    (uint32_t)m_comm.Timer().ElapsedMicroSeconds(true),
944                    __FUNCTION__);
945   static DNBTimer g_packetTimer(true);
946   rnb_err_t err = rnb_err;
947   std::string packet_data;
948   RNBRemote::Packet packet_info;
949   err = GetPacket(packet_data, packet_info, false);
950 
951   if (err == rnb_success) {
952     if (!packet_data.empty() && isprint(packet_data[0]))
953       DNBLogThreadedIf(LOG_RNB_REMOTE | LOG_RNB_PACKETS,
954                        "HandleAsyncPacket (\"%s\");", packet_data.c_str());
955     else
956       DNBLogThreadedIf(LOG_RNB_REMOTE | LOG_RNB_PACKETS,
957                        "HandleAsyncPacket (%s);",
958                        packet_info.printable_name.c_str());
959 
960     HandlePacketCallback packet_callback = packet_info.async;
961     if (packet_callback != NULL) {
962       if (type != NULL)
963         *type = packet_info.type;
964       return (this->*packet_callback)(packet_data.c_str());
965     }
966   }
967 
968   return err;
969 }
970 
971 rnb_err_t RNBRemote::HandleReceivedPacket(PacketEnum *type) {
972   static DNBTimer g_packetTimer(true);
973 
974   //  DNBLogThreadedIf (LOG_RNB_REMOTE, "%8u RNBRemote::%s",
975   //  (uint32_t)m_comm.Timer().ElapsedMicroSeconds(true), __FUNCTION__);
976   rnb_err_t err = rnb_err;
977   std::string packet_data;
978   RNBRemote::Packet packet_info;
979   err = GetPacket(packet_data, packet_info, false);
980 
981   if (err == rnb_success) {
982     DNBLogThreadedIf(LOG_RNB_REMOTE, "HandleReceivedPacket (\"%s\");",
983                      packet_data.c_str());
984     HandlePacketCallback packet_callback = packet_info.normal;
985     if (packet_callback != NULL) {
986       if (type != NULL)
987         *type = packet_info.type;
988       return (this->*packet_callback)(packet_data.c_str());
989     } else {
990       // Do not fall through to end of this function, if we have valid
991       // packet_info and it has a NULL callback, then we need to respect
992       // that it may not want any response or anything to be done.
993       return err;
994     }
995   }
996   return rnb_err;
997 }
998 
999 void RNBRemote::CommDataReceived(const std::string &new_data) {
1000   //  DNBLogThreadedIf (LOG_RNB_REMOTE, "%8d RNBRemote::%s called",
1001   //  (uint32_t)m_comm.Timer().ElapsedMicroSeconds(true), __FUNCTION__);
1002   {
1003     // Put the packet data into the buffer in a thread safe fashion
1004     PThreadMutex::Locker locker(m_mutex);
1005 
1006     std::string data;
1007     // See if we have any left over data from a previous call to this
1008     // function?
1009     if (!m_rx_partial_data.empty()) {
1010       // We do, so lets start with that data
1011       data.swap(m_rx_partial_data);
1012     }
1013     // Append the new incoming data
1014     data += new_data;
1015 
1016     // Parse up the packets into gdb remote packets
1017     size_t idx = 0;
1018     const size_t data_size = data.size();
1019 
1020     while (idx < data_size) {
1021       // end_idx must be one past the last valid packet byte. Start
1022       // it off with an invalid value that is the same as the current
1023       // index.
1024       size_t end_idx = idx;
1025 
1026       switch (data[idx]) {
1027       case '+':            // Look for ack
1028       case '-':            // Look for cancel
1029       case '\x03':         // ^C to halt target
1030         end_idx = idx + 1; // The command is one byte long...
1031         break;
1032 
1033       case '$':
1034         // Look for a standard gdb packet?
1035         end_idx = data.find('#', idx + 1);
1036         if (end_idx == std::string::npos || end_idx + 3 > data_size) {
1037           end_idx = std::string::npos;
1038         } else {
1039           // Add two for the checksum bytes and 1 to point to the
1040           // byte just past the end of this packet
1041           end_idx += 3;
1042         }
1043         break;
1044 
1045       default:
1046         break;
1047       }
1048 
1049       if (end_idx == std::string::npos) {
1050         // Not all data may be here for the packet yet, save it for
1051         // next time through this function.
1052         m_rx_partial_data += data.substr(idx);
1053         // DNBLogThreadedIf (LOG_RNB_MAX, "%8d RNBRemote::%s saving data for
1054         // later[%u, npos):
1055         // '%s'",(uint32_t)m_comm.Timer().ElapsedMicroSeconds(true),
1056         // __FUNCTION__, idx, m_rx_partial_data.c_str());
1057         idx = end_idx;
1058       } else if (idx < end_idx) {
1059         m_packets_recvd++;
1060         // Hack to get rid of initial '+' ACK???
1061         if (m_packets_recvd == 1 && (end_idx == idx + 1) && data[idx] == '+') {
1062           // DNBLogThreadedIf (LOG_RNB_REMOTE, "%8d RNBRemote::%s throwing first
1063           // ACK away....[%u, npos):
1064           // '+'",(uint32_t)m_comm.Timer().ElapsedMicroSeconds(true),
1065           // __FUNCTION__, idx);
1066         } else {
1067           // We have a valid packet...
1068           m_rx_packets.push_back(data.substr(idx, end_idx - idx));
1069           DNBLogThreadedIf(LOG_RNB_PACKETS, "getpkt: %s",
1070                            m_rx_packets.back().c_str());
1071         }
1072         idx = end_idx;
1073       } else {
1074         DNBLogThreadedIf(LOG_RNB_MAX,
1075                          "%8d RNBRemote::%s tossing junk byte at %c",
1076                          (uint32_t)m_comm.Timer().ElapsedMicroSeconds(true),
1077                          __FUNCTION__, data[idx]);
1078         idx = idx + 1;
1079       }
1080     }
1081   }
1082 
1083   if (!m_rx_packets.empty()) {
1084     // Let the main thread know we have received a packet
1085 
1086     // DNBLogThreadedIf (LOG_RNB_EVENTS, "%8d RNBRemote::%s   called
1087     // events.SetEvent(RNBContext::event_read_packet_available)",
1088     // (uint32_t)m_comm.Timer().ElapsedMicroSeconds(true), __FUNCTION__);
1089     PThreadEvent &events = m_ctx.Events();
1090     events.SetEvents(RNBContext::event_read_packet_available);
1091   }
1092 }
1093 
1094 rnb_err_t RNBRemote::GetCommData() {
1095   //  DNBLogThreadedIf (LOG_RNB_REMOTE, "%8d RNBRemote::%s called",
1096   //  (uint32_t)m_comm.Timer().ElapsedMicroSeconds(true), __FUNCTION__);
1097   std::string comm_data;
1098   rnb_err_t err = m_comm.Read(comm_data);
1099   if (err == rnb_success) {
1100     if (!comm_data.empty())
1101       CommDataReceived(comm_data);
1102   }
1103   return err;
1104 }
1105 
1106 void RNBRemote::StartReadRemoteDataThread() {
1107   DNBLogThreadedIf(LOG_RNB_REMOTE, "%8u RNBRemote::%s called",
1108                    (uint32_t)m_comm.Timer().ElapsedMicroSeconds(true),
1109                    __FUNCTION__);
1110   PThreadEvent &events = m_ctx.Events();
1111   if ((events.GetEventBits() & RNBContext::event_read_thread_running) == 0) {
1112     events.ResetEvents(RNBContext::event_read_thread_exiting);
1113     int err = ::pthread_create(&m_rx_pthread, NULL,
1114                                ThreadFunctionReadRemoteData, this);
1115     if (err == 0) {
1116       // Our thread was successfully kicked off, wait for it to
1117       // set the started event so we can safely continue
1118       events.WaitForSetEvents(RNBContext::event_read_thread_running);
1119     } else {
1120       events.ResetEvents(RNBContext::event_read_thread_running);
1121       events.SetEvents(RNBContext::event_read_thread_exiting);
1122     }
1123   }
1124 }
1125 
1126 void RNBRemote::StopReadRemoteDataThread() {
1127   DNBLogThreadedIf(LOG_RNB_REMOTE, "%8u RNBRemote::%s called",
1128                    (uint32_t)m_comm.Timer().ElapsedMicroSeconds(true),
1129                    __FUNCTION__);
1130   PThreadEvent &events = m_ctx.Events();
1131   if ((events.GetEventBits() & RNBContext::event_read_thread_running) ==
1132       RNBContext::event_read_thread_running) {
1133     DNBLog("debugserver about to shut down packet communications to lldb.");
1134     m_comm.Disconnect(true);
1135     struct timespec timeout_abstime;
1136     DNBTimer::OffsetTimeOfDay(&timeout_abstime, 2, 0);
1137 
1138     // Wait for 2 seconds for the remote data thread to exit
1139     if (events.WaitForSetEvents(RNBContext::event_read_thread_exiting,
1140                                 &timeout_abstime) == 0) {
1141       // Kill the remote data thread???
1142     }
1143   }
1144 }
1145 
1146 void *RNBRemote::ThreadFunctionReadRemoteData(void *arg) {
1147   // Keep a shared pointer reference so this doesn't go away on us before the
1148   // thread is killed.
1149   DNBLogThreadedIf(LOG_RNB_REMOTE, "RNBRemote::%s (%p): thread starting...",
1150                    __FUNCTION__, arg);
1151   RNBRemoteSP remoteSP(g_remoteSP);
1152   if (remoteSP.get() != NULL) {
1153 
1154 #if defined(__APPLE__)
1155     pthread_setname_np("read gdb-remote packets thread");
1156 #if defined(__arm__) || defined(__arm64__) || defined(__aarch64__)
1157     struct sched_param thread_param;
1158     int thread_sched_policy;
1159     if (pthread_getschedparam(pthread_self(), &thread_sched_policy,
1160                               &thread_param) == 0) {
1161       thread_param.sched_priority = 47;
1162       pthread_setschedparam(pthread_self(), thread_sched_policy, &thread_param);
1163     }
1164 #endif
1165 #endif
1166 
1167     RNBRemote *remote = remoteSP.get();
1168     PThreadEvent &events = remote->Context().Events();
1169     events.SetEvents(RNBContext::event_read_thread_running);
1170     // START: main receive remote command thread loop
1171     bool done = false;
1172     while (!done) {
1173       rnb_err_t err = remote->GetCommData();
1174 
1175       switch (err) {
1176       case rnb_success:
1177         break;
1178 
1179       case rnb_err:
1180         DNBLogThreadedIf(LOG_RNB_REMOTE,
1181                          "RNBSocket::GetCommData returned error %u", err);
1182         done = true;
1183         break;
1184 
1185       case rnb_not_connected:
1186         DNBLogThreadedIf(LOG_RNB_REMOTE,
1187                          "RNBSocket::GetCommData returned not connected...");
1188         done = true;
1189         break;
1190       }
1191     }
1192     // START: main receive remote command thread loop
1193     events.ResetEvents(RNBContext::event_read_thread_running);
1194     events.SetEvents(RNBContext::event_read_thread_exiting);
1195   }
1196   DNBLogThreadedIf(LOG_RNB_REMOTE, "RNBRemote::%s (%p): thread exiting...",
1197                    __FUNCTION__, arg);
1198   return NULL;
1199 }
1200 
1201 // If we fail to get back a valid CPU type for the remote process,
1202 // make a best guess for the CPU type based on the currently running
1203 // debugserver binary -- the debugger may not handle the case of an
1204 // un-specified process CPU type correctly.
1205 
1206 static cpu_type_t best_guess_cpu_type() {
1207 #if defined(__arm__) || defined(__arm64__) || defined(__aarch64__)
1208   if (sizeof(char *) == 8) {
1209     return CPU_TYPE_ARM64;
1210   } else {
1211 #if defined (__ARM64_ARCH_8_32__)
1212     return CPU_TYPE_ARM64_32;
1213 #endif
1214     return CPU_TYPE_ARM;
1215   }
1216 #elif defined(__i386__) || defined(__x86_64__)
1217   if (sizeof(char *) == 8) {
1218     return CPU_TYPE_X86_64;
1219   } else {
1220     return CPU_TYPE_I386;
1221   }
1222 #endif
1223   return 0;
1224 }
1225 
1226 /* Read the bytes in STR which are GDB Remote Protocol binary encoded bytes
1227  (8-bit bytes).
1228  This encoding uses 0x7d ('}') as an escape character for
1229  0x7d ('}'), 0x23 ('#'), 0x24 ('$'), 0x2a ('*').
1230  LEN is the number of bytes to be processed.  If a character is escaped,
1231  it is 2 characters for LEN.  A LEN of -1 means decode-until-nul-byte
1232  (end of string).  */
1233 
1234 std::vector<uint8_t> decode_binary_data(const char *str, size_t len) {
1235   std::vector<uint8_t> bytes;
1236   if (len == 0) {
1237     return bytes;
1238   }
1239   if (len == (size_t)-1)
1240     len = strlen(str);
1241 
1242   while (len--) {
1243     unsigned char c = *str++;
1244     if (c == 0x7d && len > 0) {
1245       len--;
1246       c = *str++ ^ 0x20;
1247     }
1248     bytes.push_back(c);
1249   }
1250   return bytes;
1251 }
1252 
1253 // Quote any meta characters in a std::string as per the binary
1254 // packet convention in the gdb-remote protocol.
1255 
1256 static std::string binary_encode_string(const std::string &s) {
1257   std::string output;
1258   const size_t s_size = s.size();
1259   const char *s_chars = s.c_str();
1260 
1261   for (size_t i = 0; i < s_size; i++) {
1262     unsigned char ch = *(s_chars + i);
1263     if (ch == '#' || ch == '$' || ch == '}' || ch == '*') {
1264       output.push_back('}'); // 0x7d
1265       output.push_back(ch ^ 0x20);
1266     } else {
1267       output.push_back(ch);
1268     }
1269   }
1270   return output;
1271 }
1272 
1273 // If the value side of a key-value pair in JSON is a string,
1274 // and that string has a " character in it, the " character must
1275 // be escaped.
1276 
1277 std::string json_string_quote_metachars(const std::string &s) {
1278   if (s.find('"') == std::string::npos)
1279     return s;
1280 
1281   std::string output;
1282   const size_t s_size = s.size();
1283   const char *s_chars = s.c_str();
1284   for (size_t i = 0; i < s_size; i++) {
1285     unsigned char ch = *(s_chars + i);
1286     if (ch == '"') {
1287       output.push_back('\\');
1288     }
1289     output.push_back(ch);
1290   }
1291   return output;
1292 }
1293 
1294 typedef struct register_map_entry {
1295   uint32_t debugserver_regnum; // debugserver register number
1296   uint32_t offset; // Offset in bytes into the register context data with no
1297                    // padding between register values
1298   DNBRegisterInfo nub_info; // debugnub register info
1299   std::vector<uint32_t> value_regnums;
1300   std::vector<uint32_t> invalidate_regnums;
1301 } register_map_entry_t;
1302 
1303 // If the notion of registers differs from what is handed out by the
1304 // architecture, then flavors can be defined here.
1305 
1306 static std::vector<register_map_entry_t> g_dynamic_register_map;
1307 static register_map_entry_t *g_reg_entries = NULL;
1308 static size_t g_num_reg_entries = 0;
1309 
1310 void RNBRemote::Initialize() { DNBInitialize(); }
1311 
1312 bool RNBRemote::InitializeRegisters(bool force) {
1313   pid_t pid = m_ctx.ProcessID();
1314   if (pid == INVALID_NUB_PROCESS)
1315     return false;
1316 
1317   DNBLogThreadedIf(
1318       LOG_RNB_PROC,
1319       "RNBRemote::%s() getting native registers from DNB interface",
1320       __FUNCTION__);
1321   // Discover the registers by querying the DNB interface and letting it
1322   // state the registers that it would like to export. This allows the
1323   // registers to be discovered using multiple qRegisterInfo calls to get
1324   // all register information after the architecture for the process is
1325   // determined.
1326   if (force) {
1327     g_dynamic_register_map.clear();
1328     g_reg_entries = NULL;
1329     g_num_reg_entries = 0;
1330   }
1331 
1332   if (g_dynamic_register_map.empty()) {
1333     nub_size_t num_reg_sets = 0;
1334     const DNBRegisterSetInfo *reg_sets = DNBGetRegisterSetInfo(&num_reg_sets);
1335 
1336     assert(num_reg_sets > 0 && reg_sets != NULL);
1337 
1338     uint32_t regnum = 0;
1339     uint32_t reg_data_offset = 0;
1340     typedef std::map<std::string, uint32_t> NameToRegNum;
1341     NameToRegNum name_to_regnum;
1342     for (nub_size_t set = 0; set < num_reg_sets; ++set) {
1343       if (reg_sets[set].registers == NULL)
1344         continue;
1345 
1346       for (uint32_t reg = 0; reg < reg_sets[set].num_registers; ++reg) {
1347         register_map_entry_t reg_entry = {
1348             regnum++, // register number starts at zero and goes up with no gaps
1349             reg_data_offset, // Offset into register context data, no gaps
1350                              // between registers
1351             reg_sets[set].registers[reg], // DNBRegisterInfo
1352             {},
1353             {},
1354         };
1355 
1356         name_to_regnum[reg_entry.nub_info.name] = reg_entry.debugserver_regnum;
1357 
1358         if (reg_entry.nub_info.value_regs == NULL) {
1359           reg_data_offset += reg_entry.nub_info.size;
1360         }
1361 
1362         g_dynamic_register_map.push_back(reg_entry);
1363       }
1364     }
1365 
1366     // Now we must find any registers whose values are in other registers and
1367     // fix up
1368     // the offsets since we removed all gaps...
1369     for (auto &reg_entry : g_dynamic_register_map) {
1370       if (reg_entry.nub_info.value_regs) {
1371         uint32_t new_offset = UINT32_MAX;
1372         for (size_t i = 0; reg_entry.nub_info.value_regs[i] != NULL; ++i) {
1373           const char *name = reg_entry.nub_info.value_regs[i];
1374           auto pos = name_to_regnum.find(name);
1375           if (pos != name_to_regnum.end()) {
1376             regnum = pos->second;
1377             reg_entry.value_regnums.push_back(regnum);
1378             if (regnum < g_dynamic_register_map.size()) {
1379               // The offset for value_regs registers is the offset within the
1380               // register with the lowest offset
1381               const uint32_t reg_offset =
1382                   g_dynamic_register_map[regnum].offset +
1383                   reg_entry.nub_info.offset;
1384               if (new_offset > reg_offset)
1385                 new_offset = reg_offset;
1386             }
1387           }
1388         }
1389 
1390         if (new_offset != UINT32_MAX) {
1391           reg_entry.offset = new_offset;
1392         } else {
1393           DNBLogThreaded("no offset was calculated entry for register %s",
1394                          reg_entry.nub_info.name);
1395           reg_entry.offset = UINT32_MAX;
1396         }
1397       }
1398 
1399       if (reg_entry.nub_info.update_regs) {
1400         for (size_t i = 0; reg_entry.nub_info.update_regs[i] != NULL; ++i) {
1401           const char *name = reg_entry.nub_info.update_regs[i];
1402           auto pos = name_to_regnum.find(name);
1403           if (pos != name_to_regnum.end()) {
1404             regnum = pos->second;
1405             reg_entry.invalidate_regnums.push_back(regnum);
1406           }
1407         }
1408       }
1409     }
1410 
1411     //        for (auto &reg_entry: g_dynamic_register_map)
1412     //        {
1413     //            DNBLogThreaded("%4i: size = %3u, pseudo = %i, name = %s",
1414     //                           reg_entry.offset,
1415     //                           reg_entry.nub_info.size,
1416     //                           reg_entry.nub_info.value_regs != NULL,
1417     //                           reg_entry.nub_info.name);
1418     //        }
1419 
1420     g_reg_entries = g_dynamic_register_map.data();
1421     g_num_reg_entries = g_dynamic_register_map.size();
1422   }
1423   return true;
1424 }
1425 
1426 /* The inferior has stopped executing; send a packet
1427  to gdb to let it know.  */
1428 
1429 void RNBRemote::NotifyThatProcessStopped(void) {
1430   RNBRemote::HandlePacket_last_signal(NULL);
1431   return;
1432 }
1433 
1434 /* 'A arglen,argnum,arg,...'
1435  Update the inferior context CTX with the program name and arg
1436  list.
1437  The documentation for this packet is underwhelming but my best reading
1438  of this is that it is a series of (len, position #, arg)'s, one for
1439  each argument with "arg" hex encoded (two 0-9a-f chars?).
1440  Why we need BOTH a "len" and a hex encoded "arg" is beyond me - either
1441  is sufficient to get around the "," position separator escape issue.
1442 
1443  e.g. our best guess for a valid 'A' packet for "gdb -q a.out" is
1444 
1445  6,0,676462,4,1,2d71,10,2,612e6f7574
1446 
1447  Note that "argnum" and "arglen" are numbers in base 10.  Again, that's
1448  not documented either way but I'm assuming it's so.  */
1449 
1450 rnb_err_t RNBRemote::HandlePacket_A(const char *p) {
1451   if (p == NULL || *p == '\0') {
1452     return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
1453                                   "Null packet for 'A' pkt");
1454   }
1455   p++;
1456   if (*p == '\0' || !isdigit(*p)) {
1457     return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
1458                                   "arglen not specified on 'A' pkt");
1459   }
1460 
1461   /* I promise I don't modify it anywhere in this function.  strtoul()'s
1462    2nd arg has to be non-const which makes it problematic to step
1463    through the string easily.  */
1464   char *buf = const_cast<char *>(p);
1465 
1466   RNBContext &ctx = Context();
1467 
1468   while (*buf != '\0') {
1469     unsigned long arglen, argnum;
1470     std::string arg;
1471     char *c;
1472 
1473     errno = 0;
1474     arglen = strtoul(buf, &c, 10);
1475     if (errno != 0 && arglen == 0) {
1476       return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
1477                                     "arglen not a number on 'A' pkt");
1478     }
1479     if (*c != ',') {
1480       return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
1481                                     "arglen not followed by comma on 'A' pkt");
1482     }
1483     buf = c + 1;
1484 
1485     errno = 0;
1486     argnum = strtoul(buf, &c, 10);
1487     if (errno != 0 && argnum == 0) {
1488       return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
1489                                     "argnum not a number on 'A' pkt");
1490     }
1491     if (*c != ',') {
1492       return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
1493                                     "arglen not followed by comma on 'A' pkt");
1494     }
1495     buf = c + 1;
1496 
1497     c = buf;
1498     buf = buf + arglen;
1499     while (c < buf && *c != '\0' && c + 1 < buf && *(c + 1) != '\0') {
1500       char smallbuf[3];
1501       smallbuf[0] = *c;
1502       smallbuf[1] = *(c + 1);
1503       smallbuf[2] = '\0';
1504 
1505       errno = 0;
1506       int ch = static_cast<int>(strtoul(smallbuf, NULL, 16));
1507       if (errno != 0 && ch == 0) {
1508         return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
1509                                       "non-hex char in arg on 'A' pkt");
1510       }
1511 
1512       arg.push_back(ch);
1513       c += 2;
1514     }
1515 
1516     ctx.PushArgument(arg.c_str());
1517     if (*buf == ',')
1518       buf++;
1519   }
1520   SendPacket("OK");
1521 
1522   return rnb_success;
1523 }
1524 
1525 /* 'H c t'
1526  Set the thread for subsequent actions; 'c' for step/continue ops,
1527  'g' for other ops.  -1 means all threads, 0 means any thread.  */
1528 
1529 rnb_err_t RNBRemote::HandlePacket_H(const char *p) {
1530   p++; // skip 'H'
1531   if (*p != 'c' && *p != 'g') {
1532     return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
1533                                   "Missing 'c' or 'g' type in H packet");
1534   }
1535 
1536   if (!m_ctx.HasValidProcessID()) {
1537     // We allow gdb to connect to a server that hasn't started running
1538     // the target yet.  gdb still wants to ask questions about it and
1539     // freaks out if it gets an error.  So just return OK here.
1540   }
1541 
1542   errno = 0;
1543   nub_thread_t tid = strtoul(p + 1, NULL, 16);
1544   if (errno != 0 && tid == 0) {
1545     return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
1546                                   "Invalid thread number in H packet");
1547   }
1548   if (*p == 'c')
1549     SetContinueThread(tid);
1550   if (*p == 'g')
1551     SetCurrentThread(tid);
1552 
1553   return SendPacket("OK");
1554 }
1555 
1556 rnb_err_t RNBRemote::HandlePacket_qLaunchSuccess(const char *p) {
1557   if (m_ctx.HasValidProcessID() || m_ctx.LaunchStatus().Status() == 0)
1558     return SendPacket("OK");
1559   std::ostringstream ret_str;
1560   std::string status_str;
1561   std::string error_quoted = binary_encode_string
1562                (m_ctx.LaunchStatusAsString(status_str));
1563   ret_str << "E" << error_quoted;
1564 
1565   return SendPacket(ret_str.str());
1566 }
1567 
1568 rnb_err_t RNBRemote::HandlePacket_qShlibInfoAddr(const char *p) {
1569   if (m_ctx.HasValidProcessID()) {
1570     nub_addr_t shlib_info_addr =
1571         DNBProcessGetSharedLibraryInfoAddress(m_ctx.ProcessID());
1572     if (shlib_info_addr != INVALID_NUB_ADDRESS) {
1573       std::ostringstream ostrm;
1574       ostrm << RAW_HEXBASE << shlib_info_addr;
1575       return SendPacket(ostrm.str());
1576     }
1577   }
1578   return SendPacket("E44");
1579 }
1580 
1581 rnb_err_t RNBRemote::HandlePacket_qStepPacketSupported(const char *p) {
1582   // Normally the "s" packet is mandatory, yet in gdb when using ARM, they
1583   // get around the need for this packet by implementing software single
1584   // stepping from gdb. Current versions of debugserver do support the "s"
1585   // packet, yet some older versions do not. We need a way to tell if this
1586   // packet is supported so we can disable software single stepping in gdb
1587   // for remote targets (so the "s" packet will get used).
1588   return SendPacket("OK");
1589 }
1590 
1591 rnb_err_t RNBRemote::HandlePacket_qSyncThreadStateSupported(const char *p) {
1592   // We support attachOrWait meaning attach if the process exists, otherwise
1593   // wait to attach.
1594   return SendPacket("OK");
1595 }
1596 
1597 rnb_err_t RNBRemote::HandlePacket_qVAttachOrWaitSupported(const char *p) {
1598   // We support attachOrWait meaning attach if the process exists, otherwise
1599   // wait to attach.
1600   return SendPacket("OK");
1601 }
1602 
1603 rnb_err_t RNBRemote::HandlePacket_qThreadStopInfo(const char *p) {
1604   p += strlen("qThreadStopInfo");
1605   nub_thread_t tid = strtoul(p, 0, 16);
1606   return SendStopReplyPacketForThread(tid);
1607 }
1608 
1609 rnb_err_t RNBRemote::HandlePacket_qThreadInfo(const char *p) {
1610   // We allow gdb to connect to a server that hasn't started running
1611   // the target yet.  gdb still wants to ask questions about it and
1612   // freaks out if it gets an error.  So just return OK here.
1613   nub_process_t pid = m_ctx.ProcessID();
1614   if (pid == INVALID_NUB_PROCESS)
1615     return SendPacket("OK");
1616 
1617   // Only "qfThreadInfo" and "qsThreadInfo" get into this function so
1618   // we only need to check the second byte to tell which is which
1619   if (p[1] == 'f') {
1620     nub_size_t numthreads = DNBProcessGetNumThreads(pid);
1621     std::ostringstream ostrm;
1622     ostrm << "m";
1623     bool first = true;
1624     for (nub_size_t i = 0; i < numthreads; ++i) {
1625       if (first)
1626         first = false;
1627       else
1628         ostrm << ",";
1629       nub_thread_t th = DNBProcessGetThreadAtIndex(pid, i);
1630       ostrm << std::hex << th;
1631     }
1632     return SendPacket(ostrm.str());
1633   } else {
1634     return SendPacket("l");
1635   }
1636 }
1637 
1638 rnb_err_t RNBRemote::HandlePacket_qThreadExtraInfo(const char *p) {
1639   // We allow gdb to connect to a server that hasn't started running
1640   // the target yet.  gdb still wants to ask questions about it and
1641   // freaks out if it gets an error.  So just return OK here.
1642   nub_process_t pid = m_ctx.ProcessID();
1643   if (pid == INVALID_NUB_PROCESS)
1644     return SendPacket("OK");
1645 
1646   /* This is supposed to return a string like 'Runnable' or
1647    'Blocked on Mutex'.
1648    The returned string is formatted like the "A" packet - a
1649    sequence of letters encoded in as 2-hex-chars-per-letter.  */
1650   p += strlen("qThreadExtraInfo");
1651   if (*p++ != ',')
1652     return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
1653                                   "Illformed qThreadExtraInfo packet");
1654   errno = 0;
1655   nub_thread_t tid = strtoul(p, NULL, 16);
1656   if (errno != 0 && tid == 0) {
1657     return HandlePacket_ILLFORMED(
1658         __FILE__, __LINE__, p,
1659         "Invalid thread number in qThreadExtraInfo packet");
1660   }
1661 
1662   const char *threadInfo = DNBThreadGetInfo(pid, tid);
1663   if (threadInfo != NULL && threadInfo[0]) {
1664     return SendHexEncodedBytePacket(NULL, threadInfo, strlen(threadInfo), NULL);
1665   } else {
1666     // "OK" == 4f6b
1667     // Return "OK" as a ASCII hex byte stream if things go wrong
1668     return SendPacket("4f6b");
1669   }
1670 
1671   return SendPacket("");
1672 }
1673 
1674 const char *k_space_delimiters = " \t";
1675 static void skip_spaces(std::string &line) {
1676   if (!line.empty()) {
1677     size_t space_pos = line.find_first_not_of(k_space_delimiters);
1678     if (space_pos > 0)
1679       line.erase(0, space_pos);
1680   }
1681 }
1682 
1683 static std::string get_identifier(std::string &line) {
1684   std::string word;
1685   skip_spaces(line);
1686   const size_t line_size = line.size();
1687   size_t end_pos;
1688   for (end_pos = 0; end_pos < line_size; ++end_pos) {
1689     if (end_pos == 0) {
1690       if (isalpha(line[end_pos]) || line[end_pos] == '_')
1691         continue;
1692     } else if (isalnum(line[end_pos]) || line[end_pos] == '_')
1693       continue;
1694     break;
1695   }
1696   word.assign(line, 0, end_pos);
1697   line.erase(0, end_pos);
1698   return word;
1699 }
1700 
1701 static std::string get_operator(std::string &line) {
1702   std::string op;
1703   skip_spaces(line);
1704   if (!line.empty()) {
1705     if (line[0] == '=') {
1706       op = '=';
1707       line.erase(0, 1);
1708     }
1709   }
1710   return op;
1711 }
1712 
1713 static std::string get_value(std::string &line) {
1714   std::string value;
1715   skip_spaces(line);
1716   if (!line.empty()) {
1717     value.swap(line);
1718   }
1719   return value;
1720 }
1721 
1722 extern void FileLogCallback(void *baton, uint32_t flags, const char *format,
1723                             va_list args);
1724 extern void ASLLogCallback(void *baton, uint32_t flags, const char *format,
1725                            va_list args);
1726 
1727 rnb_err_t RNBRemote::HandlePacket_qRcmd(const char *p) {
1728   const char *c = p + strlen("qRcmd,");
1729   std::string line;
1730   while (c[0] && c[1]) {
1731     char smallbuf[3] = {c[0], c[1], '\0'};
1732     errno = 0;
1733     int ch = static_cast<int>(strtoul(smallbuf, NULL, 16));
1734     if (errno != 0 && ch == 0)
1735       return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
1736                                     "non-hex char in payload of qRcmd packet");
1737     line.push_back(ch);
1738     c += 2;
1739   }
1740   if (*c == '\0') {
1741     std::string command = get_identifier(line);
1742     if (command == "set") {
1743       std::string variable = get_identifier(line);
1744       std::string op = get_operator(line);
1745       std::string value = get_value(line);
1746       if (variable == "logfile") {
1747         FILE *log_file = fopen(value.c_str(), "w");
1748         if (log_file) {
1749           DNBLogSetLogCallback(FileLogCallback, log_file);
1750           return SendPacket("OK");
1751         }
1752         return SendPacket("E71");
1753       } else if (variable == "logmask") {
1754         char *end;
1755         errno = 0;
1756         uint32_t logmask =
1757             static_cast<uint32_t>(strtoul(value.c_str(), &end, 0));
1758         if (errno == 0 && end && *end == '\0') {
1759           DNBLogSetLogMask(logmask);
1760           if (!DNBLogGetLogCallback())
1761             DNBLogSetLogCallback(ASLLogCallback, NULL);
1762           return SendPacket("OK");
1763         }
1764         errno = 0;
1765         logmask = static_cast<uint32_t>(strtoul(value.c_str(), &end, 16));
1766         if (errno == 0 && end && *end == '\0') {
1767           DNBLogSetLogMask(logmask);
1768           return SendPacket("OK");
1769         }
1770         return SendPacket("E72");
1771       }
1772       return SendPacket("E70");
1773     }
1774     return SendPacket("E69");
1775   }
1776   return SendPacket("E73");
1777 }
1778 
1779 rnb_err_t RNBRemote::HandlePacket_qC(const char *p) {
1780   nub_thread_t tid;
1781   std::ostringstream rep;
1782   // If we haven't run the process yet, we tell the debugger the
1783   // pid is 0.  That way it can know to tell use to run later on.
1784   if (!m_ctx.HasValidProcessID())
1785     tid = 0;
1786   else {
1787     // Grab the current thread.
1788     tid = DNBProcessGetCurrentThread(m_ctx.ProcessID());
1789     // Make sure we set the current thread so g and p packets return
1790     // the data the gdb will expect.
1791     SetCurrentThread(tid);
1792   }
1793   rep << "QC" << std::hex << tid;
1794   return SendPacket(rep.str());
1795 }
1796 
1797 rnb_err_t RNBRemote::HandlePacket_qEcho(const char *p) {
1798   // Just send the exact same packet back that we received to
1799   // synchronize the response packets after a previous packet
1800   // timed out. This allows the debugger to get back on track
1801   // with responses after a packet timeout.
1802   return SendPacket(p);
1803 }
1804 
1805 rnb_err_t RNBRemote::HandlePacket_qGetPid(const char *p) {
1806   nub_process_t pid;
1807   std::ostringstream rep;
1808   // If we haven't run the process yet, we tell the debugger the
1809   // pid is 0.  That way it can know to tell use to run later on.
1810   if (m_ctx.HasValidProcessID())
1811     pid = m_ctx.ProcessID();
1812   else
1813     pid = 0;
1814   rep << std::hex << pid;
1815   return SendPacket(rep.str());
1816 }
1817 
1818 rnb_err_t RNBRemote::HandlePacket_qRegisterInfo(const char *p) {
1819   if (g_num_reg_entries == 0)
1820     InitializeRegisters();
1821 
1822   p += strlen("qRegisterInfo");
1823 
1824   nub_size_t num_reg_sets = 0;
1825   const DNBRegisterSetInfo *reg_set_info = DNBGetRegisterSetInfo(&num_reg_sets);
1826   uint32_t reg_num = static_cast<uint32_t>(strtoul(p, 0, 16));
1827 
1828   if (reg_num < g_num_reg_entries) {
1829     const register_map_entry_t *reg_entry = &g_reg_entries[reg_num];
1830     std::ostringstream ostrm;
1831     if (reg_entry->nub_info.name)
1832       ostrm << "name:" << reg_entry->nub_info.name << ';';
1833     if (reg_entry->nub_info.alt)
1834       ostrm << "alt-name:" << reg_entry->nub_info.alt << ';';
1835 
1836     ostrm << "bitsize:" << std::dec << reg_entry->nub_info.size * 8 << ';';
1837     ostrm << "offset:" << std::dec << reg_entry->offset << ';';
1838 
1839     switch (reg_entry->nub_info.type) {
1840     case Uint:
1841       ostrm << "encoding:uint;";
1842       break;
1843     case Sint:
1844       ostrm << "encoding:sint;";
1845       break;
1846     case IEEE754:
1847       ostrm << "encoding:ieee754;";
1848       break;
1849     case Vector:
1850       ostrm << "encoding:vector;";
1851       break;
1852     }
1853 
1854     switch (reg_entry->nub_info.format) {
1855     case Binary:
1856       ostrm << "format:binary;";
1857       break;
1858     case Decimal:
1859       ostrm << "format:decimal;";
1860       break;
1861     case Hex:
1862       ostrm << "format:hex;";
1863       break;
1864     case Float:
1865       ostrm << "format:float;";
1866       break;
1867     case VectorOfSInt8:
1868       ostrm << "format:vector-sint8;";
1869       break;
1870     case VectorOfUInt8:
1871       ostrm << "format:vector-uint8;";
1872       break;
1873     case VectorOfSInt16:
1874       ostrm << "format:vector-sint16;";
1875       break;
1876     case VectorOfUInt16:
1877       ostrm << "format:vector-uint16;";
1878       break;
1879     case VectorOfSInt32:
1880       ostrm << "format:vector-sint32;";
1881       break;
1882     case VectorOfUInt32:
1883       ostrm << "format:vector-uint32;";
1884       break;
1885     case VectorOfFloat32:
1886       ostrm << "format:vector-float32;";
1887       break;
1888     case VectorOfUInt128:
1889       ostrm << "format:vector-uint128;";
1890       break;
1891     };
1892 
1893     if (reg_set_info && reg_entry->nub_info.set < num_reg_sets)
1894       ostrm << "set:" << reg_set_info[reg_entry->nub_info.set].name << ';';
1895 
1896     if (reg_entry->nub_info.reg_ehframe != INVALID_NUB_REGNUM)
1897       ostrm << "ehframe:" << std::dec << reg_entry->nub_info.reg_ehframe << ';';
1898 
1899     if (reg_entry->nub_info.reg_dwarf != INVALID_NUB_REGNUM)
1900       ostrm << "dwarf:" << std::dec << reg_entry->nub_info.reg_dwarf << ';';
1901 
1902     switch (reg_entry->nub_info.reg_generic) {
1903     case GENERIC_REGNUM_FP:
1904       ostrm << "generic:fp;";
1905       break;
1906     case GENERIC_REGNUM_PC:
1907       ostrm << "generic:pc;";
1908       break;
1909     case GENERIC_REGNUM_SP:
1910       ostrm << "generic:sp;";
1911       break;
1912     case GENERIC_REGNUM_RA:
1913       ostrm << "generic:ra;";
1914       break;
1915     case GENERIC_REGNUM_FLAGS:
1916       ostrm << "generic:flags;";
1917       break;
1918     case GENERIC_REGNUM_ARG1:
1919       ostrm << "generic:arg1;";
1920       break;
1921     case GENERIC_REGNUM_ARG2:
1922       ostrm << "generic:arg2;";
1923       break;
1924     case GENERIC_REGNUM_ARG3:
1925       ostrm << "generic:arg3;";
1926       break;
1927     case GENERIC_REGNUM_ARG4:
1928       ostrm << "generic:arg4;";
1929       break;
1930     case GENERIC_REGNUM_ARG5:
1931       ostrm << "generic:arg5;";
1932       break;
1933     case GENERIC_REGNUM_ARG6:
1934       ostrm << "generic:arg6;";
1935       break;
1936     case GENERIC_REGNUM_ARG7:
1937       ostrm << "generic:arg7;";
1938       break;
1939     case GENERIC_REGNUM_ARG8:
1940       ostrm << "generic:arg8;";
1941       break;
1942     default:
1943       break;
1944     }
1945 
1946     if (!reg_entry->value_regnums.empty()) {
1947       ostrm << "container-regs:";
1948       for (size_t i = 0, n = reg_entry->value_regnums.size(); i < n; ++i) {
1949         if (i > 0)
1950           ostrm << ',';
1951         ostrm << RAW_HEXBASE << reg_entry->value_regnums[i];
1952       }
1953       ostrm << ';';
1954     }
1955 
1956     if (!reg_entry->invalidate_regnums.empty()) {
1957       ostrm << "invalidate-regs:";
1958       for (size_t i = 0, n = reg_entry->invalidate_regnums.size(); i < n; ++i) {
1959         if (i > 0)
1960           ostrm << ',';
1961         ostrm << RAW_HEXBASE << reg_entry->invalidate_regnums[i];
1962       }
1963       ostrm << ';';
1964     }
1965 
1966     return SendPacket(ostrm.str());
1967   }
1968   return SendPacket("E45");
1969 }
1970 
1971 /* This expects a packet formatted like
1972 
1973  QSetLogging:bitmask=LOG_ALL|LOG_RNB_REMOTE;
1974 
1975  with the "QSetLogging:" already removed from the start.  Maybe in the
1976  future this packet will include other keyvalue pairs like
1977 
1978  QSetLogging:bitmask=LOG_ALL;mode=asl;
1979  */
1980 
1981 rnb_err_t set_logging(const char *p) {
1982   int bitmask = 0;
1983   while (p && *p != '\0') {
1984     if (strncmp(p, "bitmask=", sizeof("bitmask=") - 1) == 0) {
1985       p += sizeof("bitmask=") - 1;
1986       while (p && *p != '\0' && *p != ';') {
1987         if (*p == '|')
1988           p++;
1989 
1990         // to regenerate the LOG_ entries (not including the LOG_RNB entries)
1991         // $ for logname in `grep '^#define LOG_' DNBDefs.h | egrep -v
1992         // 'LOG_HI|LOG_LO' | awk '{print $2}'`
1993         // do
1994         //   echo "                else if (strncmp (p, \"$logname\", sizeof
1995         //   (\"$logname\") - 1) == 0)"
1996         //   echo "                {"
1997         //   echo "                    p += sizeof (\"$logname\") - 1;"
1998         //   echo "                    bitmask |= $logname;"
1999         //   echo "                }"
2000         // done
2001         if (strncmp(p, "LOG_VERBOSE", sizeof("LOG_VERBOSE") - 1) == 0) {
2002           p += sizeof("LOG_VERBOSE") - 1;
2003           bitmask |= LOG_VERBOSE;
2004         } else if (strncmp(p, "LOG_PROCESS", sizeof("LOG_PROCESS") - 1) == 0) {
2005           p += sizeof("LOG_PROCESS") - 1;
2006           bitmask |= LOG_PROCESS;
2007         } else if (strncmp(p, "LOG_THREAD", sizeof("LOG_THREAD") - 1) == 0) {
2008           p += sizeof("LOG_THREAD") - 1;
2009           bitmask |= LOG_THREAD;
2010         } else if (strncmp(p, "LOG_EXCEPTIONS", sizeof("LOG_EXCEPTIONS") - 1) ==
2011                    0) {
2012           p += sizeof("LOG_EXCEPTIONS") - 1;
2013           bitmask |= LOG_EXCEPTIONS;
2014         } else if (strncmp(p, "LOG_SHLIB", sizeof("LOG_SHLIB") - 1) == 0) {
2015           p += sizeof("LOG_SHLIB") - 1;
2016           bitmask |= LOG_SHLIB;
2017         } else if (strncmp(p, "LOG_MEMORY_DATA_SHORT",
2018                            sizeof("LOG_MEMORY_DATA_SHORT") - 1) == 0) {
2019           p += sizeof("LOG_MEMORY_DATA_SHORT") - 1;
2020           bitmask |= LOG_MEMORY_DATA_SHORT;
2021         } else if (strncmp(p, "LOG_MEMORY_DATA_LONG",
2022                            sizeof("LOG_MEMORY_DATA_LONG") - 1) == 0) {
2023           p += sizeof("LOG_MEMORY_DATA_LONG") - 1;
2024           bitmask |= LOG_MEMORY_DATA_LONG;
2025         } else if (strncmp(p, "LOG_MEMORY_PROTECTIONS",
2026                            sizeof("LOG_MEMORY_PROTECTIONS") - 1) == 0) {
2027           p += sizeof("LOG_MEMORY_PROTECTIONS") - 1;
2028           bitmask |= LOG_MEMORY_PROTECTIONS;
2029         } else if (strncmp(p, "LOG_MEMORY", sizeof("LOG_MEMORY") - 1) == 0) {
2030           p += sizeof("LOG_MEMORY") - 1;
2031           bitmask |= LOG_MEMORY;
2032         } else if (strncmp(p, "LOG_BREAKPOINTS",
2033                            sizeof("LOG_BREAKPOINTS") - 1) == 0) {
2034           p += sizeof("LOG_BREAKPOINTS") - 1;
2035           bitmask |= LOG_BREAKPOINTS;
2036         } else if (strncmp(p, "LOG_EVENTS", sizeof("LOG_EVENTS") - 1) == 0) {
2037           p += sizeof("LOG_EVENTS") - 1;
2038           bitmask |= LOG_EVENTS;
2039         } else if (strncmp(p, "LOG_WATCHPOINTS",
2040                            sizeof("LOG_WATCHPOINTS") - 1) == 0) {
2041           p += sizeof("LOG_WATCHPOINTS") - 1;
2042           bitmask |= LOG_WATCHPOINTS;
2043         } else if (strncmp(p, "LOG_STEP", sizeof("LOG_STEP") - 1) == 0) {
2044           p += sizeof("LOG_STEP") - 1;
2045           bitmask |= LOG_STEP;
2046         } else if (strncmp(p, "LOG_TASK", sizeof("LOG_TASK") - 1) == 0) {
2047           p += sizeof("LOG_TASK") - 1;
2048           bitmask |= LOG_TASK;
2049         } else if (strncmp(p, "LOG_ALL", sizeof("LOG_ALL") - 1) == 0) {
2050           p += sizeof("LOG_ALL") - 1;
2051           bitmask |= LOG_ALL;
2052         } else if (strncmp(p, "LOG_DEFAULT", sizeof("LOG_DEFAULT") - 1) == 0) {
2053           p += sizeof("LOG_DEFAULT") - 1;
2054           bitmask |= LOG_DEFAULT;
2055         }
2056         // end of auto-generated entries
2057 
2058         else if (strncmp(p, "LOG_NONE", sizeof("LOG_NONE") - 1) == 0) {
2059           p += sizeof("LOG_NONE") - 1;
2060           bitmask = 0;
2061         } else if (strncmp(p, "LOG_RNB_MINIMAL",
2062                            sizeof("LOG_RNB_MINIMAL") - 1) == 0) {
2063           p += sizeof("LOG_RNB_MINIMAL") - 1;
2064           bitmask |= LOG_RNB_MINIMAL;
2065         } else if (strncmp(p, "LOG_RNB_MEDIUM", sizeof("LOG_RNB_MEDIUM") - 1) ==
2066                    0) {
2067           p += sizeof("LOG_RNB_MEDIUM") - 1;
2068           bitmask |= LOG_RNB_MEDIUM;
2069         } else if (strncmp(p, "LOG_RNB_MAX", sizeof("LOG_RNB_MAX") - 1) == 0) {
2070           p += sizeof("LOG_RNB_MAX") - 1;
2071           bitmask |= LOG_RNB_MAX;
2072         } else if (strncmp(p, "LOG_RNB_COMM", sizeof("LOG_RNB_COMM") - 1) ==
2073                    0) {
2074           p += sizeof("LOG_RNB_COMM") - 1;
2075           bitmask |= LOG_RNB_COMM;
2076         } else if (strncmp(p, "LOG_RNB_REMOTE", sizeof("LOG_RNB_REMOTE") - 1) ==
2077                    0) {
2078           p += sizeof("LOG_RNB_REMOTE") - 1;
2079           bitmask |= LOG_RNB_REMOTE;
2080         } else if (strncmp(p, "LOG_RNB_EVENTS", sizeof("LOG_RNB_EVENTS") - 1) ==
2081                    0) {
2082           p += sizeof("LOG_RNB_EVENTS") - 1;
2083           bitmask |= LOG_RNB_EVENTS;
2084         } else if (strncmp(p, "LOG_RNB_PROC", sizeof("LOG_RNB_PROC") - 1) ==
2085                    0) {
2086           p += sizeof("LOG_RNB_PROC") - 1;
2087           bitmask |= LOG_RNB_PROC;
2088         } else if (strncmp(p, "LOG_RNB_PACKETS",
2089                            sizeof("LOG_RNB_PACKETS") - 1) == 0) {
2090           p += sizeof("LOG_RNB_PACKETS") - 1;
2091           bitmask |= LOG_RNB_PACKETS;
2092         } else if (strncmp(p, "LOG_RNB_ALL", sizeof("LOG_RNB_ALL") - 1) == 0) {
2093           p += sizeof("LOG_RNB_ALL") - 1;
2094           bitmask |= LOG_RNB_ALL;
2095         } else if (strncmp(p, "LOG_RNB_DEFAULT",
2096                            sizeof("LOG_RNB_DEFAULT") - 1) == 0) {
2097           p += sizeof("LOG_RNB_DEFAULT") - 1;
2098           bitmask |= LOG_RNB_DEFAULT;
2099         } else if (strncmp(p, "LOG_DARWIN_LOG", sizeof("LOG_DARWIN_LOG") - 1) ==
2100                    0) {
2101           p += sizeof("LOG_DARWIN_LOG") - 1;
2102           bitmask |= LOG_DARWIN_LOG;
2103         } else if (strncmp(p, "LOG_RNB_NONE", sizeof("LOG_RNB_NONE") - 1) ==
2104                    0) {
2105           p += sizeof("LOG_RNB_NONE") - 1;
2106           bitmask = 0;
2107         } else {
2108           /* Unrecognized logging bit; ignore it.  */
2109           const char *c = strchr(p, '|');
2110           if (c) {
2111             p = c;
2112           } else {
2113             c = strchr(p, ';');
2114             if (c) {
2115               p = c;
2116             } else {
2117               // Improperly terminated word; just go to end of str
2118               p = strchr(p, '\0');
2119             }
2120           }
2121         }
2122       }
2123       // Did we get a properly formatted logging bitmask?
2124       if (p && *p == ';') {
2125         // Enable DNB logging.
2126         // Use the existing log callback if one was already configured.
2127         if (!DNBLogGetLogCallback()) {
2128           // Use the os_log()-based logger if available; otherwise,
2129           // fallback to ASL.
2130           auto log_callback = OsLogger::GetLogFunction();
2131           if (log_callback)
2132             DNBLogSetLogCallback(log_callback, nullptr);
2133           else
2134             DNBLogSetLogCallback(ASLLogCallback, nullptr);
2135         }
2136 
2137         // Update logging to use the configured log channel bitmask.
2138         DNBLogSetLogMask(bitmask);
2139         p++;
2140       }
2141     }
2142 // We're not going to support logging to a file for now.  All logging
2143 // goes through ASL or the previously arranged log callback.
2144 #if 0
2145         else if (strncmp (p, "mode=", sizeof ("mode=") - 1) == 0)
2146         {
2147             p += sizeof ("mode=") - 1;
2148             if (strncmp (p, "asl;", sizeof ("asl;") - 1) == 0)
2149             {
2150                 DNBLogToASL ();
2151                 p += sizeof ("asl;") - 1;
2152             }
2153             else if (strncmp (p, "file;", sizeof ("file;") - 1) == 0)
2154             {
2155                 DNBLogToFile ();
2156                 p += sizeof ("file;") - 1;
2157             }
2158             else
2159             {
2160                 // Ignore unknown argument
2161                 const char *c = strchr (p, ';');
2162                 if (c)
2163                     p = c + 1;
2164                 else
2165                     p = strchr (p, '\0');
2166             }
2167         }
2168         else if (strncmp (p, "filename=", sizeof ("filename=") - 1) == 0)
2169         {
2170             p += sizeof ("filename=") - 1;
2171             const char *c = strchr (p, ';');
2172             if (c == NULL)
2173             {
2174                 c = strchr (p, '\0');
2175                 continue;
2176             }
2177             char *fn = (char *) alloca (c - p + 1);
2178             strlcpy (fn, p, c - p);
2179             fn[c - p] = '\0';
2180 
2181             // A file name of "asl" is special and is another way to indicate
2182             // that logging should be done via ASL, not by file.
2183             if (strcmp (fn, "asl") == 0)
2184             {
2185                 DNBLogToASL ();
2186             }
2187             else
2188             {
2189                 FILE *f = fopen (fn, "w");
2190                 if (f)
2191                 {
2192                     DNBLogSetLogFile (f);
2193                     DNBEnableLogging (f, DNBLogGetLogMask ());
2194                     DNBLogToFile ();
2195                 }
2196             }
2197             p = c + 1;
2198         }
2199 #endif /* #if 0 to enforce ASL logging only.  */
2200     else {
2201       // Ignore unknown argument
2202       const char *c = strchr(p, ';');
2203       if (c)
2204         p = c + 1;
2205       else
2206         p = strchr(p, '\0');
2207     }
2208   }
2209 
2210   return rnb_success;
2211 }
2212 
2213 rnb_err_t RNBRemote::HandlePacket_QThreadSuffixSupported(const char *p) {
2214   m_thread_suffix_supported = true;
2215   return SendPacket("OK");
2216 }
2217 
2218 rnb_err_t RNBRemote::HandlePacket_QStartNoAckMode(const char *p) {
2219   // Send the OK packet first so the correct checksum is appended...
2220   rnb_err_t result = SendPacket("OK");
2221   m_noack_mode = true;
2222   return result;
2223 }
2224 
2225 rnb_err_t RNBRemote::HandlePacket_QSetLogging(const char *p) {
2226   p += sizeof("QSetLogging:") - 1;
2227   rnb_err_t result = set_logging(p);
2228   if (result == rnb_success)
2229     return SendPacket("OK");
2230   else
2231     return SendPacket("E35");
2232 }
2233 
2234 rnb_err_t RNBRemote::HandlePacket_QSetDisableASLR(const char *p) {
2235   extern int g_disable_aslr;
2236   p += sizeof("QSetDisableASLR:") - 1;
2237   switch (*p) {
2238   case '0':
2239     g_disable_aslr = 0;
2240     break;
2241   case '1':
2242     g_disable_aslr = 1;
2243     break;
2244   default:
2245     return SendPacket("E56");
2246   }
2247   return SendPacket("OK");
2248 }
2249 
2250 rnb_err_t RNBRemote::HandlePacket_QSetSTDIO(const char *p) {
2251   // Only set stdin/out/err if we don't already have a process
2252   if (!m_ctx.HasValidProcessID()) {
2253     bool success = false;
2254     // Check the seventh character since the packet will be one of:
2255     // QSetSTDIN
2256     // QSetSTDOUT
2257     // QSetSTDERR
2258     StdStringExtractor packet(p);
2259     packet.SetFilePos(7);
2260     char ch = packet.GetChar();
2261     while (packet.GetChar() != ':')
2262       /* Do nothing. */;
2263 
2264     switch (ch) {
2265     case 'I': // STDIN
2266       packet.GetHexByteString(m_ctx.GetSTDIN());
2267       success = !m_ctx.GetSTDIN().empty();
2268       break;
2269 
2270     case 'O': // STDOUT
2271       packet.GetHexByteString(m_ctx.GetSTDOUT());
2272       success = !m_ctx.GetSTDOUT().empty();
2273       break;
2274 
2275     case 'E': // STDERR
2276       packet.GetHexByteString(m_ctx.GetSTDERR());
2277       success = !m_ctx.GetSTDERR().empty();
2278       break;
2279 
2280     default:
2281       break;
2282     }
2283     if (success)
2284       return SendPacket("OK");
2285     return SendPacket("E57");
2286   }
2287   return SendPacket("E58");
2288 }
2289 
2290 rnb_err_t RNBRemote::HandlePacket_QSetWorkingDir(const char *p) {
2291   // Only set the working directory if we don't already have a process
2292   if (!m_ctx.HasValidProcessID()) {
2293     StdStringExtractor packet(p += sizeof("QSetWorkingDir:") - 1);
2294     if (packet.GetHexByteString(m_ctx.GetWorkingDir())) {
2295       struct stat working_dir_stat;
2296       if (::stat(m_ctx.GetWorkingDirPath(), &working_dir_stat) == -1) {
2297         m_ctx.GetWorkingDir().clear();
2298         return SendPacket("E61"); // Working directory doesn't exist...
2299       } else if ((working_dir_stat.st_mode & S_IFMT) == S_IFDIR) {
2300         return SendPacket("OK");
2301       } else {
2302         m_ctx.GetWorkingDir().clear();
2303         return SendPacket("E62"); // Working directory isn't a directory...
2304       }
2305     }
2306     return SendPacket("E59"); // Invalid path
2307   }
2308   return SendPacket(
2309       "E60"); // Already had a process, too late to set working dir
2310 }
2311 
2312 rnb_err_t RNBRemote::HandlePacket_QSyncThreadState(const char *p) {
2313   if (!m_ctx.HasValidProcessID()) {
2314     // We allow gdb to connect to a server that hasn't started running
2315     // the target yet.  gdb still wants to ask questions about it and
2316     // freaks out if it gets an error.  So just return OK here.
2317     return SendPacket("OK");
2318   }
2319 
2320   errno = 0;
2321   p += strlen("QSyncThreadState:");
2322   nub_thread_t tid = strtoul(p, NULL, 16);
2323   if (errno != 0 && tid == 0) {
2324     return HandlePacket_ILLFORMED(
2325         __FILE__, __LINE__, p,
2326         "Invalid thread number in QSyncThreadState packet");
2327   }
2328   if (DNBProcessSyncThreadState(m_ctx.ProcessID(), tid))
2329     return SendPacket("OK");
2330   else
2331     return SendPacket("E61");
2332 }
2333 
2334 rnb_err_t RNBRemote::HandlePacket_QSetDetachOnError(const char *p) {
2335   p += sizeof("QSetDetachOnError:") - 1;
2336   bool should_detach = true;
2337   switch (*p) {
2338   case '0':
2339     should_detach = false;
2340     break;
2341   case '1':
2342     should_detach = true;
2343     break;
2344   default:
2345     return HandlePacket_ILLFORMED(
2346         __FILE__, __LINE__, p,
2347         "Invalid value for QSetDetachOnError - should be 0 or 1");
2348     break;
2349   }
2350 
2351   m_ctx.SetDetachOnError(should_detach);
2352   return SendPacket("OK");
2353 }
2354 
2355 rnb_err_t RNBRemote::HandlePacket_QListThreadsInStopReply(const char *p) {
2356   // If this packet is received, it allows us to send an extra key/value
2357   // pair in the stop reply packets where we will list all of the thread IDs
2358   // separated by commas:
2359   //
2360   //  "threads:10a,10b,10c;"
2361   //
2362   // This will get included in the stop reply packet as something like:
2363   //
2364   //  "T11thread:10a;00:00000000;01:00010203:threads:10a,10b,10c;"
2365   //
2366   // This can save two packets on each stop: qfThreadInfo/qsThreadInfo and
2367   // speed things up a bit.
2368   //
2369   // Send the OK packet first so the correct checksum is appended...
2370   rnb_err_t result = SendPacket("OK");
2371   m_list_threads_in_stop_reply = true;
2372 
2373   return result;
2374 }
2375 
2376 rnb_err_t RNBRemote::HandlePacket_QSetMaxPayloadSize(const char *p) {
2377   /* The number of characters in a packet payload that gdb is
2378    prepared to accept.  The packet-start char, packet-end char,
2379    2 checksum chars and terminating null character are not included
2380    in this size.  */
2381   p += sizeof("QSetMaxPayloadSize:") - 1;
2382   errno = 0;
2383   uint32_t size = static_cast<uint32_t>(strtoul(p, NULL, 16));
2384   if (errno != 0 && size == 0) {
2385     return HandlePacket_ILLFORMED(
2386         __FILE__, __LINE__, p, "Invalid length in QSetMaxPayloadSize packet");
2387   }
2388   m_max_payload_size = size;
2389   return SendPacket("OK");
2390 }
2391 
2392 rnb_err_t RNBRemote::HandlePacket_QSetMaxPacketSize(const char *p) {
2393   /* This tells us the largest packet that gdb can handle.
2394    i.e. the size of gdb's packet-reading buffer.
2395    QSetMaxPayloadSize is preferred because it is less ambiguous.  */
2396   p += sizeof("QSetMaxPacketSize:") - 1;
2397   errno = 0;
2398   uint32_t size = static_cast<uint32_t>(strtoul(p, NULL, 16));
2399   if (errno != 0 && size == 0) {
2400     return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
2401                                   "Invalid length in QSetMaxPacketSize packet");
2402   }
2403   m_max_payload_size = size - 5;
2404   return SendPacket("OK");
2405 }
2406 
2407 rnb_err_t RNBRemote::HandlePacket_QEnvironment(const char *p) {
2408   /* This sets the environment for the target program.  The packet is of the
2409    form:
2410 
2411    QEnvironment:VARIABLE=VALUE
2412 
2413    */
2414 
2415   DNBLogThreadedIf(
2416       LOG_RNB_REMOTE, "%8u RNBRemote::%s Handling QEnvironment: \"%s\"",
2417       (uint32_t)m_comm.Timer().ElapsedMicroSeconds(true), __FUNCTION__, p);
2418 
2419   p += sizeof("QEnvironment:") - 1;
2420   RNBContext &ctx = Context();
2421 
2422   ctx.PushEnvironment(p);
2423   return SendPacket("OK");
2424 }
2425 
2426 rnb_err_t RNBRemote::HandlePacket_QEnvironmentHexEncoded(const char *p) {
2427   /* This sets the environment for the target program.  The packet is of the
2428      form:
2429 
2430       QEnvironmentHexEncoded:VARIABLE=VALUE
2431 
2432       The VARIABLE=VALUE part is sent hex-encoded so characters like '#' with
2433      special
2434       meaning in the remote protocol won't break it.
2435   */
2436 
2437   DNBLogThreadedIf(LOG_RNB_REMOTE,
2438                    "%8u RNBRemote::%s Handling QEnvironmentHexEncoded: \"%s\"",
2439                    (uint32_t)m_comm.Timer().ElapsedMicroSeconds(true),
2440                    __FUNCTION__, p);
2441 
2442   p += sizeof("QEnvironmentHexEncoded:") - 1;
2443 
2444   std::string arg;
2445   const char *c;
2446   c = p;
2447   while (*c != '\0') {
2448     if (*(c + 1) == '\0') {
2449       return HandlePacket_ILLFORMED(
2450           __FILE__, __LINE__, p,
2451           "non-hex char in arg on 'QEnvironmentHexEncoded' pkt");
2452     }
2453     char smallbuf[3];
2454     smallbuf[0] = *c;
2455     smallbuf[1] = *(c + 1);
2456     smallbuf[2] = '\0';
2457     errno = 0;
2458     int ch = static_cast<int>(strtoul(smallbuf, NULL, 16));
2459     if (errno != 0 && ch == 0) {
2460       return HandlePacket_ILLFORMED(
2461           __FILE__, __LINE__, p,
2462           "non-hex char in arg on 'QEnvironmentHexEncoded' pkt");
2463     }
2464     arg.push_back(ch);
2465     c += 2;
2466   }
2467 
2468   RNBContext &ctx = Context();
2469   if (arg.length() > 0)
2470     ctx.PushEnvironment(arg.c_str());
2471 
2472   return SendPacket("OK");
2473 }
2474 
2475 rnb_err_t RNBRemote::HandlePacket_QLaunchArch(const char *p) {
2476   p += sizeof("QLaunchArch:") - 1;
2477   if (DNBSetArchitecture(p))
2478     return SendPacket("OK");
2479   return SendPacket("E63");
2480 }
2481 
2482 rnb_err_t RNBRemote::HandlePacket_QSetProcessEvent(const char *p) {
2483   p += sizeof("QSetProcessEvent:") - 1;
2484   // If the process is running, then send the event to the process, otherwise
2485   // store it in the context.
2486   if (Context().HasValidProcessID()) {
2487     if (DNBProcessSendEvent(Context().ProcessID(), p))
2488       return SendPacket("OK");
2489     else
2490       return SendPacket("E80");
2491   } else {
2492     Context().PushProcessEvent(p);
2493   }
2494   return SendPacket("OK");
2495 }
2496 
2497 void append_hex_value(std::ostream &ostrm, const void *buf, size_t buf_size,
2498                       bool swap) {
2499   int i;
2500   const uint8_t *p = (const uint8_t *)buf;
2501   if (swap) {
2502     for (i = static_cast<int>(buf_size) - 1; i >= 0; i--)
2503       ostrm << RAWHEX8(p[i]);
2504   } else {
2505     for (size_t i = 0; i < buf_size; i++)
2506       ostrm << RAWHEX8(p[i]);
2507   }
2508 }
2509 
2510 std::string cstring_to_asciihex_string(const char *str) {
2511   std::string hex_str;
2512   hex_str.reserve (strlen (str) * 2);
2513   while (str && *str) {
2514     uint8_t c = *str++;
2515     char hexbuf[5];
2516     snprintf (hexbuf, sizeof(hexbuf), "%02x", c);
2517     hex_str += hexbuf;
2518   }
2519   return hex_str;
2520 }
2521 
2522 void append_hexified_string(std::ostream &ostrm, const std::string &string) {
2523   size_t string_size = string.size();
2524   const char *string_buf = string.c_str();
2525   for (size_t i = 0; i < string_size; i++) {
2526     ostrm << RAWHEX8(*(string_buf + i));
2527   }
2528 }
2529 
2530 void register_value_in_hex_fixed_width(std::ostream &ostrm, nub_process_t pid,
2531                                        nub_thread_t tid,
2532                                        const register_map_entry_t *reg,
2533                                        const DNBRegisterValue *reg_value_ptr) {
2534   if (reg != NULL) {
2535     DNBRegisterValue reg_value;
2536     if (reg_value_ptr == NULL) {
2537       if (DNBThreadGetRegisterValueByID(pid, tid, reg->nub_info.set,
2538                                         reg->nub_info.reg, &reg_value))
2539         reg_value_ptr = &reg_value;
2540     }
2541 
2542     if (reg_value_ptr) {
2543       append_hex_value(ostrm, reg_value_ptr->value.v_uint8, reg->nub_info.size,
2544                        false);
2545     } else {
2546       // If we fail to read a register value, check if it has a default
2547       // fail value. If it does, return this instead in case some of
2548       // the registers are not available on the current system.
2549       if (reg->nub_info.size > 0) {
2550         std::basic_string<uint8_t> zeros(reg->nub_info.size, '\0');
2551         append_hex_value(ostrm, zeros.data(), zeros.size(), false);
2552       }
2553     }
2554   }
2555 }
2556 
2557 void debugserver_regnum_with_fixed_width_hex_register_value(
2558     std::ostream &ostrm, nub_process_t pid, nub_thread_t tid,
2559     const register_map_entry_t *reg, const DNBRegisterValue *reg_value_ptr) {
2560   // Output the register number as 'NN:VVVVVVVV;' where NN is a 2 bytes HEX
2561   // gdb register number, and VVVVVVVV is the correct number of hex bytes
2562   // as ASCII for the register value.
2563   if (reg != NULL) {
2564     ostrm << RAWHEX8(reg->debugserver_regnum) << ':';
2565     register_value_in_hex_fixed_width(ostrm, pid, tid, reg, reg_value_ptr);
2566     ostrm << ';';
2567   }
2568 }
2569 
2570 void RNBRemote::DispatchQueueOffsets::GetThreadQueueInfo(
2571     nub_process_t pid, nub_addr_t dispatch_qaddr, nub_addr_t &dispatch_queue_t,
2572     std::string &queue_name, uint64_t &queue_width,
2573     uint64_t &queue_serialnum) const {
2574   queue_name.clear();
2575   queue_width = 0;
2576   queue_serialnum = 0;
2577 
2578   if (IsValid() && dispatch_qaddr != INVALID_NUB_ADDRESS &&
2579       dispatch_qaddr != 0) {
2580     dispatch_queue_t = DNBProcessMemoryReadPointer(pid, dispatch_qaddr);
2581     if (dispatch_queue_t) {
2582       queue_width = DNBProcessMemoryReadInteger(
2583           pid, dispatch_queue_t + dqo_width, dqo_width_size, 0);
2584       queue_serialnum = DNBProcessMemoryReadInteger(
2585           pid, dispatch_queue_t + dqo_serialnum, dqo_serialnum_size, 0);
2586 
2587       if (dqo_version >= 4) {
2588         // libdispatch versions 4+, pointer to dispatch name is in the
2589         // queue structure.
2590         nub_addr_t pointer_to_label_address = dispatch_queue_t + dqo_label;
2591         nub_addr_t label_addr =
2592             DNBProcessMemoryReadPointer(pid, pointer_to_label_address);
2593         if (label_addr)
2594           queue_name = DNBProcessMemoryReadCString(pid, label_addr);
2595       } else {
2596         // libdispatch versions 1-3, dispatch name is a fixed width char array
2597         // in the queue structure.
2598         queue_name = DNBProcessMemoryReadCStringFixed(
2599             pid, dispatch_queue_t + dqo_label, dqo_label_size);
2600       }
2601     }
2602   }
2603 }
2604 
2605 struct StackMemory {
2606   uint8_t bytes[2 * sizeof(nub_addr_t)];
2607   nub_size_t length;
2608 };
2609 typedef std::map<nub_addr_t, StackMemory> StackMemoryMap;
2610 
2611 static void ReadStackMemory(nub_process_t pid, nub_thread_t tid,
2612                             StackMemoryMap &stack_mmap,
2613                             uint32_t backtrace_limit = 256) {
2614   DNBRegisterValue reg_value;
2615   if (DNBThreadGetRegisterValueByID(pid, tid, REGISTER_SET_GENERIC,
2616                                     GENERIC_REGNUM_FP, &reg_value)) {
2617     uint32_t frame_count = 0;
2618     uint64_t fp = 0;
2619     if (reg_value.info.size == 4)
2620       fp = reg_value.value.uint32;
2621     else
2622       fp = reg_value.value.uint64;
2623     while (fp != 0) {
2624       // Make sure we never recurse more than 256 times so we don't recurse too
2625       // far or
2626       // store up too much memory in the expedited cache
2627       if (++frame_count > backtrace_limit)
2628         break;
2629 
2630       const nub_size_t read_size = reg_value.info.size * 2;
2631       StackMemory stack_memory;
2632       stack_memory.length = read_size;
2633       if (DNBProcessMemoryRead(pid, fp, read_size, stack_memory.bytes) !=
2634           read_size)
2635         break;
2636       // Make sure we don't try to put the same stack memory in more than once
2637       if (stack_mmap.find(fp) != stack_mmap.end())
2638         break;
2639       // Put the entry into the cache
2640       stack_mmap[fp] = stack_memory;
2641       // Dereference the frame pointer to get to the previous frame pointer
2642       if (reg_value.info.size == 4)
2643         fp = ((uint32_t *)stack_memory.bytes)[0];
2644       else
2645         fp = ((uint64_t *)stack_memory.bytes)[0];
2646     }
2647   }
2648 }
2649 
2650 rnb_err_t RNBRemote::SendStopReplyPacketForThread(nub_thread_t tid) {
2651   const nub_process_t pid = m_ctx.ProcessID();
2652   if (pid == INVALID_NUB_PROCESS)
2653     return SendPacket("E50");
2654 
2655   struct DNBThreadStopInfo tid_stop_info;
2656 
2657   /* Fill the remaining space in this packet with as many registers
2658    as we can stuff in there.  */
2659 
2660   if (DNBThreadGetStopReason(pid, tid, &tid_stop_info)) {
2661     const bool did_exec = tid_stop_info.reason == eStopTypeExec;
2662     if (did_exec) {
2663       RNBRemote::InitializeRegisters(true);
2664 
2665       // Reset any symbols that need resetting when we exec
2666       m_dispatch_queue_offsets_addr = INVALID_NUB_ADDRESS;
2667       m_dispatch_queue_offsets.Clear();
2668     }
2669 
2670     std::ostringstream ostrm;
2671     // Output the T packet with the thread
2672     ostrm << 'T';
2673     int signum = tid_stop_info.details.signal.signo;
2674     DNBLogThreadedIf(
2675         LOG_RNB_PROC, "%8d %s got signal signo = %u, exc_type = %u",
2676         (uint32_t)m_comm.Timer().ElapsedMicroSeconds(true), __FUNCTION__,
2677         signum, tid_stop_info.details.exception.type);
2678 
2679     // Translate any mach exceptions to gdb versions, unless they are
2680     // common exceptions like a breakpoint or a soft signal.
2681     switch (tid_stop_info.details.exception.type) {
2682     default:
2683       signum = 0;
2684       break;
2685     case EXC_BREAKPOINT:
2686       signum = SIGTRAP;
2687       break;
2688     case EXC_BAD_ACCESS:
2689       signum = TARGET_EXC_BAD_ACCESS;
2690       break;
2691     case EXC_BAD_INSTRUCTION:
2692       signum = TARGET_EXC_BAD_INSTRUCTION;
2693       break;
2694     case EXC_ARITHMETIC:
2695       signum = TARGET_EXC_ARITHMETIC;
2696       break;
2697     case EXC_EMULATION:
2698       signum = TARGET_EXC_EMULATION;
2699       break;
2700     case EXC_SOFTWARE:
2701       if (tid_stop_info.details.exception.data_count == 2 &&
2702           tid_stop_info.details.exception.data[0] == EXC_SOFT_SIGNAL)
2703         signum = static_cast<int>(tid_stop_info.details.exception.data[1]);
2704       else
2705         signum = TARGET_EXC_SOFTWARE;
2706       break;
2707     }
2708 
2709     ostrm << RAWHEX8(signum & 0xff);
2710 
2711     ostrm << std::hex << "thread:" << tid << ';';
2712 
2713     const char *thread_name = DNBThreadGetName(pid, tid);
2714     if (thread_name && thread_name[0]) {
2715       size_t thread_name_len = strlen(thread_name);
2716 
2717       if (::strcspn(thread_name, "$#+-;:") == thread_name_len)
2718         ostrm << std::hex << "name:" << thread_name << ';';
2719       else {
2720         // the thread name contains special chars, send as hex bytes
2721         ostrm << std::hex << "hexname:";
2722         const uint8_t *u_thread_name = (const uint8_t *)thread_name;
2723         for (size_t i = 0; i < thread_name_len; i++)
2724           ostrm << RAWHEX8(u_thread_name[i]);
2725         ostrm << ';';
2726       }
2727     }
2728 
2729     // If a 'QListThreadsInStopReply' was sent to enable this feature, we
2730     // will send all thread IDs back in the "threads" key whose value is
2731     // a list of hex thread IDs separated by commas:
2732     //  "threads:10a,10b,10c;"
2733     // This will save the debugger from having to send a pair of qfThreadInfo
2734     // and qsThreadInfo packets, but it also might take a lot of room in the
2735     // stop reply packet, so it must be enabled only on systems where there
2736     // are no limits on packet lengths.
2737     if (m_list_threads_in_stop_reply) {
2738       const nub_size_t numthreads = DNBProcessGetNumThreads(pid);
2739       if (numthreads > 0) {
2740         std::vector<uint64_t> pc_values;
2741         ostrm << std::hex << "threads:";
2742         for (nub_size_t i = 0; i < numthreads; ++i) {
2743           nub_thread_t th = DNBProcessGetThreadAtIndex(pid, i);
2744           if (i > 0)
2745             ostrm << ',';
2746           ostrm << std::hex << th;
2747           DNBRegisterValue pc_regval;
2748           if (DNBThreadGetRegisterValueByID(pid, th, REGISTER_SET_GENERIC,
2749                                             GENERIC_REGNUM_PC, &pc_regval)) {
2750             uint64_t pc = INVALID_NUB_ADDRESS;
2751             if (pc_regval.value.uint64 != INVALID_NUB_ADDRESS) {
2752               if (pc_regval.info.size == 4) {
2753                 pc = pc_regval.value.uint32;
2754               } else if (pc_regval.info.size == 8) {
2755                 pc = pc_regval.value.uint64;
2756               }
2757               if (pc != INVALID_NUB_ADDRESS) {
2758                 pc_values.push_back(pc);
2759               }
2760             }
2761           }
2762         }
2763         ostrm << ';';
2764 
2765         // If we failed to get any of the thread pc values, the size of our
2766         // vector will not
2767         // be the same as the # of threads.  Don't provide any expedited thread
2768         // pc values in
2769         // that case.  This should not happen.
2770         if (pc_values.size() == numthreads) {
2771           ostrm << std::hex << "thread-pcs:";
2772           for (nub_size_t i = 0; i < numthreads; ++i) {
2773             if (i > 0)
2774               ostrm << ',';
2775             ostrm << std::hex << pc_values[i];
2776           }
2777           ostrm << ';';
2778         }
2779       }
2780 
2781       // Include JSON info that describes the stop reason for any threads
2782       // that actually have stop reasons. We use the new "jstopinfo" key
2783       // whose values is hex ascii JSON that contains the thread IDs
2784       // thread stop info only for threads that have stop reasons. Only send
2785       // this if we have more than one thread otherwise this packet has all
2786       // the info it needs.
2787       if (numthreads > 1) {
2788         const bool threads_with_valid_stop_info_only = true;
2789         JSONGenerator::ObjectSP threads_info_sp =
2790             GetJSONThreadsInfo(threads_with_valid_stop_info_only);
2791         if (threads_info_sp) {
2792           ostrm << std::hex << "jstopinfo:";
2793           std::ostringstream json_strm;
2794           threads_info_sp->Dump(json_strm);
2795           append_hexified_string(ostrm, json_strm.str());
2796           ostrm << ';';
2797         }
2798       }
2799     }
2800 
2801     if (g_num_reg_entries == 0)
2802       InitializeRegisters();
2803 
2804     if (g_reg_entries != NULL) {
2805       DNBRegisterValue reg_value;
2806       for (uint32_t reg = 0; reg < g_num_reg_entries; reg++) {
2807         // Expedite all registers in the first register set that aren't
2808         // contained in other registers
2809         if (g_reg_entries[reg].nub_info.set == 1 &&
2810             g_reg_entries[reg].nub_info.value_regs == NULL) {
2811           if (!DNBThreadGetRegisterValueByID(
2812                   pid, tid, g_reg_entries[reg].nub_info.set,
2813                   g_reg_entries[reg].nub_info.reg, &reg_value))
2814             continue;
2815 
2816           debugserver_regnum_with_fixed_width_hex_register_value(
2817               ostrm, pid, tid, &g_reg_entries[reg], &reg_value);
2818         }
2819       }
2820     }
2821 
2822     if (did_exec) {
2823       ostrm << "reason:exec;";
2824     } else if (tid_stop_info.details.exception.type) {
2825       ostrm << "metype:" << std::hex << tid_stop_info.details.exception.type
2826             << ';';
2827       ostrm << "mecount:" << std::hex
2828             << tid_stop_info.details.exception.data_count << ';';
2829       for (nub_size_t i = 0; i < tid_stop_info.details.exception.data_count;
2830            ++i)
2831         ostrm << "medata:" << std::hex
2832               << tid_stop_info.details.exception.data[i] << ';';
2833     }
2834 
2835     // Add expedited stack memory so stack backtracing doesn't need to read
2836     // anything from the
2837     // frame pointer chain.
2838     StackMemoryMap stack_mmap;
2839     ReadStackMemory(pid, tid, stack_mmap, 2);
2840     if (!stack_mmap.empty()) {
2841       for (const auto &stack_memory : stack_mmap) {
2842         ostrm << "memory:" << HEXBASE << stack_memory.first << '=';
2843         append_hex_value(ostrm, stack_memory.second.bytes,
2844                          stack_memory.second.length, false);
2845         ostrm << ';';
2846       }
2847     }
2848 
2849     return SendPacket(ostrm.str());
2850   }
2851   return SendPacket("E51");
2852 }
2853 
2854 /* '?'
2855  The stop reply packet - tell gdb what the status of the inferior is.
2856  Often called the questionmark_packet.  */
2857 
2858 rnb_err_t RNBRemote::HandlePacket_last_signal(const char *unused) {
2859   if (!m_ctx.HasValidProcessID()) {
2860     // Inferior is not yet specified/running
2861     return SendPacket("E02");
2862   }
2863 
2864   nub_process_t pid = m_ctx.ProcessID();
2865   nub_state_t pid_state = DNBProcessGetState(pid);
2866 
2867   switch (pid_state) {
2868   case eStateAttaching:
2869   case eStateLaunching:
2870   case eStateRunning:
2871   case eStateStepping:
2872   case eStateDetached:
2873     return rnb_success; // Ignore
2874 
2875   case eStateSuspended:
2876   case eStateStopped:
2877   case eStateCrashed: {
2878     nub_thread_t tid = DNBProcessGetCurrentThread(pid);
2879     // Make sure we set the current thread so g and p packets return
2880     // the data the gdb will expect.
2881     SetCurrentThread(tid);
2882 
2883     SendStopReplyPacketForThread(tid);
2884   } break;
2885 
2886   case eStateInvalid:
2887   case eStateUnloaded:
2888   case eStateExited: {
2889     char pid_exited_packet[16] = "";
2890     int pid_status = 0;
2891     // Process exited with exit status
2892     if (!DNBProcessGetExitStatus(pid, &pid_status))
2893       pid_status = 0;
2894 
2895     if (pid_status) {
2896       if (WIFEXITED(pid_status))
2897         snprintf(pid_exited_packet, sizeof(pid_exited_packet), "W%02x",
2898                  WEXITSTATUS(pid_status));
2899       else if (WIFSIGNALED(pid_status))
2900         snprintf(pid_exited_packet, sizeof(pid_exited_packet), "X%02x",
2901                  WTERMSIG(pid_status));
2902       else if (WIFSTOPPED(pid_status))
2903         snprintf(pid_exited_packet, sizeof(pid_exited_packet), "S%02x",
2904                  WSTOPSIG(pid_status));
2905     }
2906 
2907     // If we have an empty exit packet, lets fill one in to be safe.
2908     if (!pid_exited_packet[0]) {
2909       strlcpy(pid_exited_packet, "W00", sizeof(pid_exited_packet) - 1);
2910       pid_exited_packet[sizeof(pid_exited_packet) - 1] = '\0';
2911     }
2912 
2913     const char *exit_info = DNBProcessGetExitInfo(pid);
2914     if (exit_info != NULL && *exit_info != '\0') {
2915       std::ostringstream exit_packet;
2916       exit_packet << pid_exited_packet;
2917       exit_packet << ';';
2918       exit_packet << RAW_HEXBASE << "description";
2919       exit_packet << ':';
2920       for (size_t i = 0; exit_info[i] != '\0'; i++)
2921         exit_packet << RAWHEX8(exit_info[i]);
2922       exit_packet << ';';
2923       return SendPacket(exit_packet.str());
2924     } else
2925       return SendPacket(pid_exited_packet);
2926   } break;
2927   }
2928   return rnb_success;
2929 }
2930 
2931 rnb_err_t RNBRemote::HandlePacket_M(const char *p) {
2932   if (p == NULL || p[0] == '\0' || strlen(p) < 3) {
2933     return HandlePacket_ILLFORMED(__FILE__, __LINE__, p, "Too short M packet");
2934   }
2935 
2936   char *c;
2937   p++;
2938   errno = 0;
2939   nub_addr_t addr = strtoull(p, &c, 16);
2940   if (errno != 0 && addr == 0) {
2941     return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
2942                                   "Invalid address in M packet");
2943   }
2944   if (*c != ',') {
2945     return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
2946                                   "Comma sep missing in M packet");
2947   }
2948 
2949   /* Advance 'p' to the length part of the packet.  */
2950   p += (c - p) + 1;
2951 
2952   errno = 0;
2953   unsigned long length = strtoul(p, &c, 16);
2954   if (errno != 0 && length == 0) {
2955     return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
2956                                   "Invalid length in M packet");
2957   }
2958   if (length == 0) {
2959     return SendPacket("OK");
2960   }
2961 
2962   if (*c != ':') {
2963     return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
2964                                   "Missing colon in M packet");
2965   }
2966   /* Advance 'p' to the data part of the packet.  */
2967   p += (c - p) + 1;
2968 
2969   size_t datalen = strlen(p);
2970   if (datalen & 0x1) {
2971     return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
2972                                   "Uneven # of hex chars for data in M packet");
2973   }
2974   if (datalen == 0) {
2975     return SendPacket("OK");
2976   }
2977 
2978   uint8_t *buf = (uint8_t *)alloca(datalen / 2);
2979   uint8_t *i = buf;
2980 
2981   while (*p != '\0' && *(p + 1) != '\0') {
2982     char hexbuf[3];
2983     hexbuf[0] = *p;
2984     hexbuf[1] = *(p + 1);
2985     hexbuf[2] = '\0';
2986     errno = 0;
2987     uint8_t byte = strtoul(hexbuf, NULL, 16);
2988     if (errno != 0 && byte == 0) {
2989       return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
2990                                     "Invalid hex byte in M packet");
2991     }
2992     *i++ = byte;
2993     p += 2;
2994   }
2995 
2996   nub_size_t wrote =
2997       DNBProcessMemoryWrite(m_ctx.ProcessID(), addr, length, buf);
2998   if (wrote != length)
2999     return SendPacket("E09");
3000   else
3001     return SendPacket("OK");
3002 }
3003 
3004 rnb_err_t RNBRemote::HandlePacket_m(const char *p) {
3005   if (p == NULL || p[0] == '\0' || strlen(p) < 3) {
3006     return HandlePacket_ILLFORMED(__FILE__, __LINE__, p, "Too short m packet");
3007   }
3008 
3009   char *c;
3010   p++;
3011   errno = 0;
3012   nub_addr_t addr = strtoull(p, &c, 16);
3013   if (errno != 0 && addr == 0) {
3014     return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
3015                                   "Invalid address in m packet");
3016   }
3017   if (*c != ',') {
3018     return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
3019                                   "Comma sep missing in m packet");
3020   }
3021 
3022   /* Advance 'p' to the length part of the packet.  */
3023   p += (c - p) + 1;
3024 
3025   errno = 0;
3026   auto length = strtoul(p, NULL, 16);
3027   if (errno != 0 && length == 0) {
3028     return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
3029                                   "Invalid length in m packet");
3030   }
3031   if (length == 0) {
3032     return SendPacket("");
3033   }
3034 
3035   std::string buf(length, '\0');
3036   if (buf.empty()) {
3037     return SendPacket("E78");
3038   }
3039   nub_size_t bytes_read =
3040       DNBProcessMemoryRead(m_ctx.ProcessID(), addr, buf.size(), &buf[0]);
3041   if (bytes_read == 0) {
3042     return SendPacket("E08");
3043   }
3044 
3045   // "The reply may contain fewer bytes than requested if the server was able
3046   //  to read only part of the region of memory."
3047   length = bytes_read;
3048 
3049   std::ostringstream ostrm;
3050   for (unsigned long i = 0; i < length; i++)
3051     ostrm << RAWHEX8(buf[i]);
3052   return SendPacket(ostrm.str());
3053 }
3054 
3055 // Read memory, sent it up as binary data.
3056 // Usage:  xADDR,LEN
3057 // ADDR and LEN are both base 16.
3058 
3059 // Responds with 'OK' for zero-length request
3060 // or
3061 //
3062 // DATA
3063 //
3064 // where DATA is the binary data payload.
3065 
3066 rnb_err_t RNBRemote::HandlePacket_x(const char *p) {
3067   if (p == NULL || p[0] == '\0' || strlen(p) < 3) {
3068     return HandlePacket_ILLFORMED(__FILE__, __LINE__, p, "Too short X packet");
3069   }
3070 
3071   char *c;
3072   p++;
3073   errno = 0;
3074   nub_addr_t addr = strtoull(p, &c, 16);
3075   if (errno != 0) {
3076     return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
3077                                   "Invalid address in X packet");
3078   }
3079   if (*c != ',') {
3080     return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
3081                                   "Comma sep missing in X packet");
3082   }
3083 
3084   /* Advance 'p' to the number of bytes to be read.  */
3085   p += (c - p) + 1;
3086 
3087   errno = 0;
3088   auto length = strtoul(p, NULL, 16);
3089   if (errno != 0) {
3090     return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
3091                                   "Invalid length in x packet");
3092   }
3093 
3094   // zero length read means this is a test of whether that packet is implemented
3095   // or not.
3096   if (length == 0) {
3097     return SendPacket("OK");
3098   }
3099 
3100   std::vector<uint8_t> buf(length);
3101 
3102   if (buf.capacity() != length) {
3103     return SendPacket("E79");
3104   }
3105   nub_size_t bytes_read =
3106       DNBProcessMemoryRead(m_ctx.ProcessID(), addr, buf.size(), &buf[0]);
3107   if (bytes_read == 0) {
3108     return SendPacket("E80");
3109   }
3110 
3111   std::vector<uint8_t> buf_quoted;
3112   buf_quoted.reserve(bytes_read + 30);
3113   for (nub_size_t i = 0; i < bytes_read; i++) {
3114     if (buf[i] == '#' || buf[i] == '$' || buf[i] == '}' || buf[i] == '*') {
3115       buf_quoted.push_back(0x7d);
3116       buf_quoted.push_back(buf[i] ^ 0x20);
3117     } else {
3118       buf_quoted.push_back(buf[i]);
3119     }
3120   }
3121   length = buf_quoted.size();
3122 
3123   std::ostringstream ostrm;
3124   for (unsigned long i = 0; i < length; i++)
3125     ostrm << buf_quoted[i];
3126 
3127   return SendPacket(ostrm.str());
3128 }
3129 
3130 rnb_err_t RNBRemote::HandlePacket_X(const char *p) {
3131   if (p == NULL || p[0] == '\0' || strlen(p) < 3) {
3132     return HandlePacket_ILLFORMED(__FILE__, __LINE__, p, "Too short X packet");
3133   }
3134 
3135   char *c;
3136   p++;
3137   errno = 0;
3138   nub_addr_t addr = strtoull(p, &c, 16);
3139   if (errno != 0 && addr == 0) {
3140     return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
3141                                   "Invalid address in X packet");
3142   }
3143   if (*c != ',') {
3144     return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
3145                                   "Comma sep missing in X packet");
3146   }
3147 
3148   /* Advance 'p' to the length part of the packet.  NB this is the length of the
3149      packet
3150      including any escaped chars.  The data payload may be a little bit smaller
3151      after
3152      decoding.  */
3153   p += (c - p) + 1;
3154 
3155   errno = 0;
3156   auto length = strtoul(p, NULL, 16);
3157   if (errno != 0 && length == 0) {
3158     return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
3159                                   "Invalid length in X packet");
3160   }
3161 
3162   // I think gdb sends a zero length write request to test whether this
3163   // packet is accepted.
3164   if (length == 0) {
3165     return SendPacket("OK");
3166   }
3167 
3168   std::vector<uint8_t> data = decode_binary_data(c, -1);
3169   std::vector<uint8_t>::const_iterator it;
3170   uint8_t *buf = (uint8_t *)alloca(data.size());
3171   uint8_t *i = buf;
3172   for (it = data.begin(); it != data.end(); ++it) {
3173     *i++ = *it;
3174   }
3175 
3176   nub_size_t wrote =
3177       DNBProcessMemoryWrite(m_ctx.ProcessID(), addr, data.size(), buf);
3178   if (wrote != data.size())
3179     return SendPacket("E08");
3180   return SendPacket("OK");
3181 }
3182 
3183 /* 'g' -- read registers
3184  Get the contents of the registers for the current thread,
3185  send them to gdb.
3186  Should the setting of the Hg packet determine which thread's registers
3187  are returned?  */
3188 
3189 rnb_err_t RNBRemote::HandlePacket_g(const char *p) {
3190   std::ostringstream ostrm;
3191   if (!m_ctx.HasValidProcessID()) {
3192     return SendPacket("E11");
3193   }
3194 
3195   if (g_num_reg_entries == 0)
3196     InitializeRegisters();
3197 
3198   nub_process_t pid = m_ctx.ProcessID();
3199   nub_thread_t tid = ExtractThreadIDFromThreadSuffix(p + 1);
3200   if (tid == INVALID_NUB_THREAD)
3201     return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
3202                                   "No thread specified in p packet");
3203 
3204   // Get the register context size first by calling with NULL buffer
3205   nub_size_t reg_ctx_size = DNBThreadGetRegisterContext(pid, tid, NULL, 0);
3206   if (reg_ctx_size) {
3207     // Now allocate enough space for the entire register context
3208     std::vector<uint8_t> reg_ctx;
3209     reg_ctx.resize(reg_ctx_size);
3210     // Now read the register context
3211     reg_ctx_size =
3212         DNBThreadGetRegisterContext(pid, tid, &reg_ctx[0], reg_ctx.size());
3213     if (reg_ctx_size) {
3214       append_hex_value(ostrm, reg_ctx.data(), reg_ctx.size(), false);
3215       return SendPacket(ostrm.str());
3216     }
3217   }
3218   return SendPacket("E74");
3219 }
3220 
3221 /* 'G XXX...' -- write registers
3222  How is the thread for these specified, beyond "the current thread"?
3223  Does gdb actually use the Hg packet to set this?  */
3224 
3225 rnb_err_t RNBRemote::HandlePacket_G(const char *p) {
3226   if (!m_ctx.HasValidProcessID()) {
3227     return SendPacket("E11");
3228   }
3229 
3230   if (g_num_reg_entries == 0)
3231     InitializeRegisters();
3232 
3233   StdStringExtractor packet(p);
3234   packet.SetFilePos(1); // Skip the 'G'
3235 
3236   nub_process_t pid = m_ctx.ProcessID();
3237   nub_thread_t tid = ExtractThreadIDFromThreadSuffix(p);
3238   if (tid == INVALID_NUB_THREAD)
3239     return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
3240                                   "No thread specified in p packet");
3241 
3242   // Get the register context size first by calling with NULL buffer
3243   nub_size_t reg_ctx_size = DNBThreadGetRegisterContext(pid, tid, NULL, 0);
3244   if (reg_ctx_size) {
3245     // Now allocate enough space for the entire register context
3246     std::vector<uint8_t> reg_ctx;
3247     reg_ctx.resize(reg_ctx_size);
3248 
3249     const nub_size_t bytes_extracted =
3250         packet.GetHexBytes(&reg_ctx[0], reg_ctx.size(), 0xcc);
3251     if (bytes_extracted == reg_ctx.size()) {
3252       // Now write the register context
3253       reg_ctx_size =
3254           DNBThreadSetRegisterContext(pid, tid, reg_ctx.data(), reg_ctx.size());
3255       if (reg_ctx_size == reg_ctx.size())
3256         return SendPacket("OK");
3257       else
3258         return SendPacket("E55");
3259     } else {
3260       DNBLogError("RNBRemote::HandlePacket_G(%s): extracted %llu of %llu "
3261                   "bytes, size mismatch\n",
3262                   p, (uint64_t)bytes_extracted, (uint64_t)reg_ctx_size);
3263       return SendPacket("E64");
3264     }
3265   }
3266   return SendPacket("E65");
3267 }
3268 
3269 static bool RNBRemoteShouldCancelCallback(void *not_used) {
3270   RNBRemoteSP remoteSP(g_remoteSP);
3271   if (remoteSP.get() != NULL) {
3272     RNBRemote *remote = remoteSP.get();
3273     return !remote->Comm().IsConnected();
3274   }
3275   return true;
3276 }
3277 
3278 // FORMAT: _MXXXXXX,PPP
3279 //      XXXXXX: big endian hex chars
3280 //      PPP: permissions can be any combo of r w x chars
3281 //
3282 // RESPONSE: XXXXXX
3283 //      XXXXXX: hex address of the newly allocated memory
3284 //      EXX: error code
3285 //
3286 // EXAMPLES:
3287 //      _M123000,rw
3288 //      _M123000,rwx
3289 //      _M123000,xw
3290 
3291 rnb_err_t RNBRemote::HandlePacket_AllocateMemory(const char *p) {
3292   StdStringExtractor packet(p);
3293   packet.SetFilePos(2); // Skip the "_M"
3294 
3295   nub_addr_t size = packet.GetHexMaxU64(StdStringExtractor::BigEndian, 0);
3296   if (size != 0) {
3297     if (packet.GetChar() == ',') {
3298       uint32_t permissions = 0;
3299       char ch;
3300       bool success = true;
3301       while (success && (ch = packet.GetChar()) != '\0') {
3302         switch (ch) {
3303         case 'r':
3304           permissions |= eMemoryPermissionsReadable;
3305           break;
3306         case 'w':
3307           permissions |= eMemoryPermissionsWritable;
3308           break;
3309         case 'x':
3310           permissions |= eMemoryPermissionsExecutable;
3311           break;
3312         default:
3313           success = false;
3314           break;
3315         }
3316       }
3317 
3318       if (success) {
3319         nub_addr_t addr =
3320             DNBProcessMemoryAllocate(m_ctx.ProcessID(), size, permissions);
3321         if (addr != INVALID_NUB_ADDRESS) {
3322           std::ostringstream ostrm;
3323           ostrm << RAW_HEXBASE << addr;
3324           return SendPacket(ostrm.str());
3325         }
3326       }
3327     }
3328   }
3329   return SendPacket("E53");
3330 }
3331 
3332 // FORMAT: _mXXXXXX
3333 //      XXXXXX: address that was previously allocated
3334 //
3335 // RESPONSE: XXXXXX
3336 //      OK: address was deallocated
3337 //      EXX: error code
3338 //
3339 // EXAMPLES:
3340 //      _m123000
3341 
3342 rnb_err_t RNBRemote::HandlePacket_DeallocateMemory(const char *p) {
3343   StdStringExtractor packet(p);
3344   packet.SetFilePos(2); // Skip the "_m"
3345   nub_addr_t addr =
3346       packet.GetHexMaxU64(StdStringExtractor::BigEndian, INVALID_NUB_ADDRESS);
3347 
3348   if (addr != INVALID_NUB_ADDRESS) {
3349     if (DNBProcessMemoryDeallocate(m_ctx.ProcessID(), addr))
3350       return SendPacket("OK");
3351   }
3352   return SendPacket("E54");
3353 }
3354 
3355 // FORMAT: QSaveRegisterState;thread:TTTT;  (when thread suffix is supported)
3356 // FORMAT: QSaveRegisterState               (when thread suffix is NOT
3357 // supported)
3358 //      TTTT: thread ID in hex
3359 //
3360 // RESPONSE:
3361 //      SAVEID: Where SAVEID is a decimal number that represents the save ID
3362 //              that can be passed back into a "QRestoreRegisterState" packet
3363 //      EXX: error code
3364 //
3365 // EXAMPLES:
3366 //      QSaveRegisterState;thread:1E34;     (when thread suffix is supported)
3367 //      QSaveRegisterState                  (when thread suffix is NOT
3368 //      supported)
3369 
3370 rnb_err_t RNBRemote::HandlePacket_SaveRegisterState(const char *p) {
3371   nub_process_t pid = m_ctx.ProcessID();
3372   nub_thread_t tid = ExtractThreadIDFromThreadSuffix(p);
3373   if (tid == INVALID_NUB_THREAD) {
3374     if (m_thread_suffix_supported)
3375       return HandlePacket_ILLFORMED(
3376           __FILE__, __LINE__, p,
3377           "No thread specified in QSaveRegisterState packet");
3378     else
3379       return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
3380                                     "No thread was is set with the Hg packet");
3381   }
3382 
3383   // Get the register context size first by calling with NULL buffer
3384   const uint32_t save_id = DNBThreadSaveRegisterState(pid, tid);
3385   if (save_id != 0) {
3386     char response[64];
3387     snprintf(response, sizeof(response), "%u", save_id);
3388     return SendPacket(response);
3389   } else {
3390     return SendPacket("E75");
3391   }
3392 }
3393 // FORMAT: QRestoreRegisterState:SAVEID;thread:TTTT;  (when thread suffix is
3394 // supported)
3395 // FORMAT: QRestoreRegisterState:SAVEID               (when thread suffix is NOT
3396 // supported)
3397 //      TTTT: thread ID in hex
3398 //      SAVEID: a decimal number that represents the save ID that was
3399 //              returned from a call to "QSaveRegisterState"
3400 //
3401 // RESPONSE:
3402 //      OK: successfully restored registers for the specified thread
3403 //      EXX: error code
3404 //
3405 // EXAMPLES:
3406 //      QRestoreRegisterState:1;thread:1E34;     (when thread suffix is
3407 //      supported)
3408 //      QRestoreRegisterState:1                  (when thread suffix is NOT
3409 //      supported)
3410 
3411 rnb_err_t RNBRemote::HandlePacket_RestoreRegisterState(const char *p) {
3412   nub_process_t pid = m_ctx.ProcessID();
3413   nub_thread_t tid = ExtractThreadIDFromThreadSuffix(p);
3414   if (tid == INVALID_NUB_THREAD) {
3415     if (m_thread_suffix_supported)
3416       return HandlePacket_ILLFORMED(
3417           __FILE__, __LINE__, p,
3418           "No thread specified in QSaveRegisterState packet");
3419     else
3420       return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
3421                                     "No thread was is set with the Hg packet");
3422   }
3423 
3424   StdStringExtractor packet(p);
3425   packet.SetFilePos(
3426       strlen("QRestoreRegisterState:")); // Skip the "QRestoreRegisterState:"
3427   const uint32_t save_id = packet.GetU32(0);
3428 
3429   if (save_id != 0) {
3430     // Get the register context size first by calling with NULL buffer
3431     if (DNBThreadRestoreRegisterState(pid, tid, save_id))
3432       return SendPacket("OK");
3433     else
3434       return SendPacket("E77");
3435   }
3436   return SendPacket("E76");
3437 }
3438 
3439 static bool GetProcessNameFrom_vAttach(const char *&p,
3440                                        std::string &attach_name) {
3441   bool return_val = true;
3442   while (*p != '\0') {
3443     char smallbuf[3];
3444     smallbuf[0] = *p;
3445     smallbuf[1] = *(p + 1);
3446     smallbuf[2] = '\0';
3447 
3448     errno = 0;
3449     int ch = static_cast<int>(strtoul(smallbuf, NULL, 16));
3450     if (errno != 0 && ch == 0) {
3451       return_val = false;
3452       break;
3453     }
3454 
3455     attach_name.push_back(ch);
3456     p += 2;
3457   }
3458   return return_val;
3459 }
3460 
3461 rnb_err_t RNBRemote::HandlePacket_qSupported(const char *p) {
3462   uint32_t max_packet_size = 128 * 1024; // 128KBytes is a reasonable max packet
3463                                          // size--debugger can always use less
3464   char buf[256];
3465   snprintf(buf, sizeof(buf),
3466            "qXfer:features:read+;PacketSize=%x;qEcho+;native-signals+",
3467            max_packet_size);
3468 
3469   bool enable_compression = false;
3470   (void)enable_compression;
3471 
3472 #if (defined (TARGET_OS_WATCH) && TARGET_OS_WATCH == 1) \
3473     || (defined (TARGET_OS_IOS) && TARGET_OS_IOS == 1) \
3474     || (defined (TARGET_OS_TV) && TARGET_OS_TV == 1) \
3475     || (defined (TARGET_OS_BRIDGE) && TARGET_OS_BRIDGE == 1)
3476   enable_compression = true;
3477 #endif
3478 
3479   if (enable_compression) {
3480     strcat(buf, ";SupportedCompressions=lzfse,zlib-deflate,lz4,lzma;"
3481                 "DefaultCompressionMinSize=");
3482     char numbuf[16];
3483     snprintf(numbuf, sizeof(numbuf), "%zu", m_compression_minsize);
3484     numbuf[sizeof(numbuf) - 1] = '\0';
3485     strcat(buf, numbuf);
3486   }
3487 
3488   return SendPacket(buf);
3489 }
3490 
3491 static bool process_does_not_exist (nub_process_t pid) {
3492   std::vector<struct kinfo_proc> proc_infos;
3493   DNBGetAllInfos (proc_infos);
3494   const size_t infos_size = proc_infos.size();
3495   for (size_t i = 0; i < infos_size; i++)
3496     if (proc_infos[i].kp_proc.p_pid == pid)
3497       return false;
3498 
3499   return true; // process does not exist
3500 }
3501 
3502 // my_uid and process_uid are only initialized if this function
3503 // returns true -- that there was a uid mismatch -- and those
3504 // id's may want to be used in the error message.
3505 //
3506 // NOTE: this should only be called after process_does_not_exist().
3507 // This sysctl will return uninitialized data if we ask for a pid
3508 // that doesn't exist.  The alternative would be to fetch all
3509 // processes and step through to find the one we're looking for
3510 // (as process_does_not_exist() does).
3511 static bool attach_failed_due_to_uid_mismatch (nub_process_t pid,
3512                                                uid_t &my_uid,
3513                                                uid_t &process_uid) {
3514   struct kinfo_proc kinfo;
3515   int mib[] = {CTL_KERN, KERN_PROC, KERN_PROC_PID, pid};
3516   size_t len = sizeof(struct kinfo_proc);
3517   if (sysctl(mib, sizeof(mib) / sizeof(mib[0]), &kinfo, &len, NULL, 0) != 0) {
3518     return false; // pid doesn't exist? can't check uid mismatch - it was fine
3519   }
3520   my_uid = geteuid();
3521   if (my_uid == 0)
3522     return false; // if we're root, attach didn't fail because of uid mismatch
3523   process_uid = kinfo.kp_eproc.e_ucred.cr_uid;
3524 
3525   // If my uid != the process' uid, then the attach probably failed because
3526   // of that.
3527   if (my_uid != process_uid)
3528     return true;
3529   else
3530     return false;
3531 }
3532 
3533 // NOTE: this should only be called after process_does_not_exist().
3534 // This sysctl will return uninitialized data if we ask for a pid
3535 // that doesn't exist.  The alternative would be to fetch all
3536 // processes and step through to find the one we're looking for
3537 // (as process_does_not_exist() does).
3538 static bool process_is_already_being_debugged (nub_process_t pid) {
3539   struct kinfo_proc kinfo;
3540   int mib[] = {CTL_KERN, KERN_PROC, KERN_PROC_PID, pid};
3541   size_t len = sizeof(struct kinfo_proc);
3542   if (sysctl(mib, sizeof(mib) / sizeof(mib[0]), &kinfo, &len, NULL, 0) != 0) {
3543     return false; // pid doesn't exist? well, it's not being debugged...
3544   }
3545   if (kinfo.kp_proc.p_flag & P_TRACED)
3546     return true; // is being debugged already
3547   else
3548     return false;
3549 }
3550 
3551 // Test if this current login session has a connection to the
3552 // window server (if it does not have that access, it cannot ask
3553 // for debug permission by popping up a dialog box and attach
3554 // may fail outright).
3555 static bool login_session_has_gui_access () {
3556   // I believe this API only works on macOS.
3557 #if TARGET_OS_OSX == 0
3558   return true;
3559 #else
3560   auditinfo_addr_t info;
3561   getaudit_addr(&info, sizeof(info));
3562   if (info.ai_flags & AU_SESSION_FLAG_HAS_GRAPHIC_ACCESS)
3563     return true;
3564   else
3565     return false;
3566 #endif
3567 }
3568 
3569 // Checking for
3570 //
3571 //  {
3572 //    'class' : 'rule',
3573 //    'comment' : 'For use by Apple.  WARNING: administrators are advised
3574 //              not to modify this right.',
3575 //    'k-of-n' : '1',
3576 //    'rule' : [
3577 //      'is-admin',
3578 //      'is-developer',
3579 //      'authenticate-developer'
3580 //    ]
3581 //  }
3582 //
3583 // $ security authorizationdb read system.privilege.taskport.debug
3584 
3585 static bool developer_mode_enabled () {
3586   // This API only exists on macOS.
3587 #if TARGET_OS_OSX == 0
3588   return true;
3589 #else
3590  CFDictionaryRef currentRightDict = NULL;
3591  const char *debug_right = "system.privilege.taskport.debug";
3592  // caller must free dictionary initialized by the following
3593  OSStatus status = AuthorizationRightGet(debug_right, &currentRightDict);
3594  if (status != errAuthorizationSuccess) {
3595    // could not check authorization
3596    return true;
3597  }
3598 
3599  bool devmode_enabled = true;
3600 
3601  if (!CFDictionaryContainsKey(currentRightDict, CFSTR("k-of-n"))) {
3602    devmode_enabled = false;
3603  } else {
3604    CFNumberRef item = (CFNumberRef) CFDictionaryGetValue(currentRightDict, CFSTR("k-of-n"));
3605    if (item && CFGetTypeID(item) == CFNumberGetTypeID()) {
3606       int64_t num = 0;
3607       ::CFNumberGetValue(item, kCFNumberSInt64Type, &num);
3608       if (num != 1) {
3609         devmode_enabled = false;
3610       }
3611    } else {
3612      devmode_enabled = false;
3613    }
3614  }
3615 
3616  if (!CFDictionaryContainsKey(currentRightDict, CFSTR("class"))) {
3617    devmode_enabled = false;
3618  } else {
3619    CFStringRef item = (CFStringRef) CFDictionaryGetValue(currentRightDict, CFSTR("class"));
3620    if (item && CFGetTypeID(item) == CFStringGetTypeID()) {
3621      char tmpbuf[128];
3622      if (CFStringGetCString (item, tmpbuf, sizeof(tmpbuf), CFStringGetSystemEncoding())) {
3623        tmpbuf[sizeof (tmpbuf) - 1] = '\0';
3624        if (strcmp (tmpbuf, "rule") != 0) {
3625          devmode_enabled = false;
3626        }
3627      } else {
3628        devmode_enabled = false;
3629      }
3630    } else {
3631      devmode_enabled = false;
3632    }
3633  }
3634 
3635  if (!CFDictionaryContainsKey(currentRightDict, CFSTR("rule"))) {
3636    devmode_enabled = false;
3637  } else {
3638    CFArrayRef item = (CFArrayRef) CFDictionaryGetValue(currentRightDict, CFSTR("rule"));
3639    if (item && CFGetTypeID(item) == CFArrayGetTypeID()) {
3640      int count = ::CFArrayGetCount(item);
3641       CFRange range = CFRangeMake (0, count);
3642      if (!::CFArrayContainsValue (item, range, CFSTR("is-admin")))
3643        devmode_enabled = false;
3644      if (!::CFArrayContainsValue (item, range, CFSTR("is-developer")))
3645        devmode_enabled = false;
3646      if (!::CFArrayContainsValue (item, range, CFSTR("authenticate-developer")))
3647        devmode_enabled = false;
3648    } else {
3649      devmode_enabled = false;
3650    }
3651  }
3652  ::CFRelease(currentRightDict);
3653 
3654  return devmode_enabled;
3655 #endif // TARGET_OS_OSX
3656 }
3657 
3658 /*
3659  vAttach;pid
3660 
3661  Attach to a new process with the specified process ID. pid is a hexadecimal
3662  integer
3663  identifying the process. If the stub is currently controlling a process, it is
3664  killed. The attached process is stopped.This packet is only available in
3665  extended
3666  mode (see extended mode).
3667 
3668  Reply:
3669  "ENN"                      for an error
3670  "Any Stop Reply Packet"     for success
3671  */
3672 
3673 rnb_err_t RNBRemote::HandlePacket_v(const char *p) {
3674   if (strcmp(p, "vCont;c") == 0) {
3675     // Simple continue
3676     return RNBRemote::HandlePacket_c("c");
3677   } else if (strcmp(p, "vCont;s") == 0) {
3678     // Simple step
3679     return RNBRemote::HandlePacket_s("s");
3680   } else if (strstr(p, "vCont") == p) {
3681     DNBThreadResumeActions thread_actions;
3682     char *c = const_cast<char *>(p += strlen("vCont"));
3683     char *c_end = c + strlen(c);
3684     if (*c == '?')
3685       return SendPacket("vCont;c;C;s;S");
3686 
3687     while (c < c_end && *c == ';') {
3688       ++c; // Skip the semi-colon
3689       DNBThreadResumeAction thread_action;
3690       thread_action.tid = INVALID_NUB_THREAD;
3691       thread_action.state = eStateInvalid;
3692       thread_action.signal = 0;
3693       thread_action.addr = INVALID_NUB_ADDRESS;
3694 
3695       char action = *c++;
3696 
3697       switch (action) {
3698       case 'C':
3699         errno = 0;
3700         thread_action.signal = static_cast<int>(strtoul(c, &c, 16));
3701         if (errno != 0)
3702           return HandlePacket_ILLFORMED(
3703               __FILE__, __LINE__, p, "Could not parse signal in vCont packet");
3704       // Fall through to next case...
3705         [[clang::fallthrough]];
3706       case 'c':
3707         // Continue
3708         thread_action.state = eStateRunning;
3709         break;
3710 
3711       case 'S':
3712         errno = 0;
3713         thread_action.signal = static_cast<int>(strtoul(c, &c, 16));
3714         if (errno != 0)
3715           return HandlePacket_ILLFORMED(
3716               __FILE__, __LINE__, p, "Could not parse signal in vCont packet");
3717       // Fall through to next case...
3718         [[clang::fallthrough]];
3719       case 's':
3720         // Step
3721         thread_action.state = eStateStepping;
3722         break;
3723 
3724       default:
3725         HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
3726                                "Unsupported action in vCont packet");
3727         break;
3728       }
3729       if (*c == ':') {
3730         errno = 0;
3731         thread_action.tid = strtoul(++c, &c, 16);
3732         if (errno != 0)
3733           return HandlePacket_ILLFORMED(
3734               __FILE__, __LINE__, p,
3735               "Could not parse thread number in vCont packet");
3736       }
3737 
3738       thread_actions.Append(thread_action);
3739     }
3740 
3741     // If a default action for all other threads wasn't mentioned
3742     // then we should stop the threads
3743     thread_actions.SetDefaultThreadActionIfNeeded(eStateStopped, 0);
3744     DNBProcessResume(m_ctx.ProcessID(), thread_actions.GetFirst(),
3745                      thread_actions.GetSize());
3746     return rnb_success;
3747   } else if (strstr(p, "vAttach") == p) {
3748     nub_process_t attach_pid =
3749         INVALID_NUB_PROCESS; // attach_pid will be set to 0 if the attach fails
3750     nub_process_t pid_attaching_to =
3751         INVALID_NUB_PROCESS; // pid_attaching_to is the original pid specified
3752     char err_str[1024] = {'\0'};
3753     std::string attach_name;
3754 
3755     if (DNBDebugserverIsTranslated()) {
3756       DNBLogError("debugserver is x86_64 binary running in translation, attach "
3757                   "failed.");
3758       std::string return_message = "E96;";
3759       return_message +=
3760           cstring_to_asciihex_string("debugserver is x86_64 binary running in "
3761                                      "translation, attached failed.");
3762       SendPacket(return_message.c_str());
3763       return rnb_err;
3764     }
3765 
3766     if (strstr(p, "vAttachWait;") == p) {
3767       p += strlen("vAttachWait;");
3768       if (!GetProcessNameFrom_vAttach(p, attach_name)) {
3769         return HandlePacket_ILLFORMED(
3770             __FILE__, __LINE__, p, "non-hex char in arg on 'vAttachWait' pkt");
3771       }
3772       DNBLog("[LaunchAttach] START %d vAttachWait for process name '%s'",
3773              getpid(), attach_name.c_str());
3774       const bool ignore_existing = true;
3775       attach_pid = DNBProcessAttachWait(
3776           &m_ctx, attach_name.c_str(), ignore_existing, NULL, 1000, err_str,
3777           sizeof(err_str), RNBRemoteShouldCancelCallback);
3778 
3779     } else if (strstr(p, "vAttachOrWait;") == p) {
3780       p += strlen("vAttachOrWait;");
3781       if (!GetProcessNameFrom_vAttach(p, attach_name)) {
3782         return HandlePacket_ILLFORMED(
3783             __FILE__, __LINE__, p,
3784             "non-hex char in arg on 'vAttachOrWait' pkt");
3785       }
3786       const bool ignore_existing = false;
3787       DNBLog("[LaunchAttach] START %d vAttachWaitOrWait for process name "
3788              "'%s'",
3789              getpid(), attach_name.c_str());
3790       attach_pid = DNBProcessAttachWait(
3791           &m_ctx, attach_name.c_str(), ignore_existing, NULL, 1000, err_str,
3792           sizeof(err_str), RNBRemoteShouldCancelCallback);
3793     } else if (strstr(p, "vAttachName;") == p) {
3794       p += strlen("vAttachName;");
3795       if (!GetProcessNameFrom_vAttach(p, attach_name)) {
3796         return HandlePacket_ILLFORMED(
3797             __FILE__, __LINE__, p, "non-hex char in arg on 'vAttachName' pkt");
3798       }
3799 
3800       DNBLog("[LaunchAttach] START %d vAttachName attach to process name "
3801              "'%s'",
3802              getpid(), attach_name.c_str());
3803       attach_pid = DNBProcessAttachByName(attach_name.c_str(), NULL,
3804                                           Context().GetUnmaskSignals(), err_str,
3805                                           sizeof(err_str));
3806 
3807     } else if (strstr(p, "vAttach;") == p) {
3808       p += strlen("vAttach;");
3809       char *end = NULL;
3810       pid_attaching_to = static_cast<int>(
3811           strtoul(p, &end, 16)); // PID will be in hex, so use base 16 to decode
3812       if (p != end && *end == '\0') {
3813         // Wait at most 30 second for attach
3814         struct timespec attach_timeout_abstime;
3815         DNBTimer::OffsetTimeOfDay(&attach_timeout_abstime, 30, 0);
3816         DNBLog("[LaunchAttach] START %d vAttach to pid %d", getpid(),
3817                pid_attaching_to);
3818         attach_pid = DNBProcessAttach(pid_attaching_to, &attach_timeout_abstime,
3819                                       false, err_str, sizeof(err_str));
3820       }
3821     } else {
3822       return HandlePacket_UNIMPLEMENTED(p);
3823     }
3824 
3825     if (attach_pid != INVALID_NUB_PROCESS) {
3826       if (m_ctx.ProcessID() != attach_pid)
3827         m_ctx.SetProcessID(attach_pid);
3828       DNBLog("Successfully attached to pid %d", attach_pid);
3829       // Send a stop reply packet to indicate we successfully attached!
3830       NotifyThatProcessStopped();
3831       return rnb_success;
3832     } else {
3833       DNBLogError("Attach failed");
3834       m_ctx.LaunchStatus().SetError(-1, DNBError::Generic);
3835       if (err_str[0])
3836         m_ctx.LaunchStatus().SetErrorString(err_str);
3837       else
3838         m_ctx.LaunchStatus().SetErrorString("attach failed");
3839 
3840       if (pid_attaching_to == INVALID_NUB_PROCESS && !attach_name.empty()) {
3841         pid_attaching_to = DNBProcessGetPIDByName(attach_name.c_str());
3842       }
3843 
3844       // attach_pid is INVALID_NUB_PROCESS - we did not succeed in attaching
3845       // if the original request, pid_attaching_to, is available, see if we
3846       // can figure out why we couldn't attach.  Return an informative error
3847       // string to lldb.
3848 
3849       if (pid_attaching_to != INVALID_NUB_PROCESS) {
3850         // The order of these checks is important.
3851         if (process_does_not_exist (pid_attaching_to)) {
3852           DNBLogError("Tried to attach to pid that doesn't exist");
3853           std::string return_message = "E96;";
3854           return_message += cstring_to_asciihex_string("no such process.");
3855           return SendPacket(return_message.c_str());
3856         }
3857         if (process_is_already_being_debugged (pid_attaching_to)) {
3858           DNBLogError("Tried to attach to process already being debugged");
3859           std::string return_message = "E96;";
3860           return_message += cstring_to_asciihex_string("tried to attach to "
3861                                            "process already being debugged");
3862           return SendPacket(return_message.c_str());
3863         }
3864         uid_t my_uid, process_uid;
3865         if (attach_failed_due_to_uid_mismatch (pid_attaching_to,
3866                                                my_uid, process_uid)) {
3867           std::string my_username = "uid " + std::to_string (my_uid);
3868           std::string process_username = "uid " + std::to_string (process_uid);
3869           struct passwd *pw = getpwuid (my_uid);
3870           if (pw && pw->pw_name) {
3871             my_username = pw->pw_name;
3872           }
3873           pw = getpwuid (process_uid);
3874           if (pw && pw->pw_name) {
3875             process_username = pw->pw_name;
3876           }
3877           DNBLogError("Tried to attach to process with uid mismatch");
3878           std::string return_message = "E96;";
3879           std::string msg = "tried to attach to process as user '"
3880                             + my_username + "' and process is running "
3881                             "as user '" + process_username + "'";
3882           return_message += cstring_to_asciihex_string(msg.c_str());
3883           return SendPacket(return_message.c_str());
3884         }
3885         if (!login_session_has_gui_access() && !developer_mode_enabled()) {
3886           DNBLogError("Developer mode is not enabled and this is a "
3887                       "non-interactive session");
3888           std::string return_message = "E96;";
3889           return_message += cstring_to_asciihex_string("developer mode is "
3890                                            "not enabled on this machine "
3891                                            "and this is a non-interactive "
3892                                            "debug session.");
3893           return SendPacket(return_message.c_str());
3894         }
3895         if (!login_session_has_gui_access()) {
3896           DNBLogError("This is a non-interactive session");
3897           std::string return_message = "E96;";
3898           return_message += cstring_to_asciihex_string("this is a "
3899                                            "non-interactive debug session, "
3900                                            "cannot get permission to debug "
3901                                            "processes.");
3902           return SendPacket(return_message.c_str());
3903         }
3904       }
3905 
3906       std::string error_explainer = "attach failed";
3907       if (err_str[0] != '\0') {
3908         // This is not a super helpful message for end users
3909         if (strcmp (err_str, "unable to start the exception thread") == 0) {
3910           snprintf (err_str, sizeof (err_str) - 1,
3911                     "Not allowed to attach to process.  Look in the console "
3912                     "messages (Console.app), near the debugserver entries, "
3913                     "when the attach failed.  The subsystem that denied "
3914                     "the attach permission will likely have logged an "
3915                     "informative message about why it was denied.");
3916           err_str[sizeof (err_str) - 1] = '\0';
3917         }
3918         error_explainer += " (";
3919         error_explainer += err_str;
3920         error_explainer += ")";
3921       }
3922       std::string default_return_msg = "E96;";
3923       default_return_msg += cstring_to_asciihex_string
3924                               (error_explainer.c_str());
3925       SendPacket (default_return_msg.c_str());
3926       DNBLogError("Attach failed: \"%s\".", err_str);
3927       return rnb_err;
3928     }
3929   }
3930 
3931   // All other failures come through here
3932   return HandlePacket_UNIMPLEMENTED(p);
3933 }
3934 
3935 /* 'T XX' -- status of thread
3936  Check if the specified thread is alive.
3937  The thread number is in hex?  */
3938 
3939 rnb_err_t RNBRemote::HandlePacket_T(const char *p) {
3940   p++;
3941   if (p == NULL || *p == '\0') {
3942     return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
3943                                   "No thread specified in T packet");
3944   }
3945   if (!m_ctx.HasValidProcessID()) {
3946     return SendPacket("E15");
3947   }
3948   errno = 0;
3949   nub_thread_t tid = strtoul(p, NULL, 16);
3950   if (errno != 0 && tid == 0) {
3951     return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
3952                                   "Could not parse thread number in T packet");
3953   }
3954 
3955   nub_state_t state = DNBThreadGetState(m_ctx.ProcessID(), tid);
3956   if (state == eStateInvalid || state == eStateExited ||
3957       state == eStateCrashed) {
3958     return SendPacket("E16");
3959   }
3960 
3961   return SendPacket("OK");
3962 }
3963 
3964 rnb_err_t RNBRemote::HandlePacket_z(const char *p) {
3965   if (p == NULL || *p == '\0')
3966     return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
3967                                   "No thread specified in z packet");
3968 
3969   if (!m_ctx.HasValidProcessID())
3970     return SendPacket("E15");
3971 
3972   char packet_cmd = *p++;
3973   char break_type = *p++;
3974 
3975   if (*p++ != ',')
3976     return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
3977                                   "Comma separator missing in z packet");
3978 
3979   char *c = NULL;
3980   nub_process_t pid = m_ctx.ProcessID();
3981   errno = 0;
3982   nub_addr_t addr = strtoull(p, &c, 16);
3983   if (errno != 0 && addr == 0)
3984     return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
3985                                   "Invalid address in z packet");
3986   p = c;
3987   if (*p++ != ',')
3988     return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
3989                                   "Comma separator missing in z packet");
3990 
3991   errno = 0;
3992   auto byte_size = strtoul(p, &c, 16);
3993   if (errno != 0 && byte_size == 0)
3994     return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
3995                                   "Invalid length in z packet");
3996 
3997   if (packet_cmd == 'Z') {
3998     // set
3999     switch (break_type) {
4000     case '0': // set software breakpoint
4001     case '1': // set hardware breakpoint
4002     {
4003       // gdb can send multiple Z packets for the same address and
4004       // these calls must be ref counted.
4005       bool hardware = (break_type == '1');
4006 
4007       if (DNBBreakpointSet(pid, addr, byte_size, hardware)) {
4008         // We successfully created a breakpoint, now lets full out
4009         // a ref count structure with the breakID and add it to our
4010         // map.
4011         return SendPacket("OK");
4012       } else {
4013         // We failed to set the software breakpoint
4014         return SendPacket("E09");
4015       }
4016     } break;
4017 
4018     case '2': // set write watchpoint
4019     case '3': // set read watchpoint
4020     case '4': // set access watchpoint
4021     {
4022       bool hardware = true;
4023       uint32_t watch_flags = 0;
4024       if (break_type == '2')
4025         watch_flags = WATCH_TYPE_WRITE;
4026       else if (break_type == '3')
4027         watch_flags = WATCH_TYPE_READ;
4028       else
4029         watch_flags = WATCH_TYPE_READ | WATCH_TYPE_WRITE;
4030 
4031       if (DNBWatchpointSet(pid, addr, byte_size, watch_flags, hardware)) {
4032         return SendPacket("OK");
4033       } else {
4034         // We failed to set the watchpoint
4035         return SendPacket("E09");
4036       }
4037     } break;
4038 
4039     default:
4040       break;
4041     }
4042   } else if (packet_cmd == 'z') {
4043     // remove
4044     switch (break_type) {
4045     case '0': // remove software breakpoint
4046     case '1': // remove hardware breakpoint
4047       if (DNBBreakpointClear(pid, addr)) {
4048         return SendPacket("OK");
4049       } else {
4050         return SendPacket("E08");
4051       }
4052       break;
4053 
4054     case '2': // remove write watchpoint
4055     case '3': // remove read watchpoint
4056     case '4': // remove access watchpoint
4057       if (DNBWatchpointClear(pid, addr)) {
4058         return SendPacket("OK");
4059       } else {
4060         return SendPacket("E08");
4061       }
4062       break;
4063 
4064     default:
4065       break;
4066     }
4067   }
4068   return HandlePacket_UNIMPLEMENTED(p);
4069 }
4070 
4071 // Extract the thread number from the thread suffix that might be appended to
4072 // thread specific packets. This will only be enabled if
4073 // m_thread_suffix_supported
4074 // is true.
4075 nub_thread_t RNBRemote::ExtractThreadIDFromThreadSuffix(const char *p) {
4076   if (m_thread_suffix_supported) {
4077     nub_thread_t tid = INVALID_NUB_THREAD;
4078     if (p) {
4079       const char *tid_cstr = strstr(p, "thread:");
4080       if (tid_cstr) {
4081         tid_cstr += strlen("thread:");
4082         tid = strtoul(tid_cstr, NULL, 16);
4083       }
4084     }
4085     return tid;
4086   }
4087   return GetCurrentThread();
4088 }
4089 
4090 /* 'p XX'
4091  print the contents of register X */
4092 
4093 rnb_err_t RNBRemote::HandlePacket_p(const char *p) {
4094   if (g_num_reg_entries == 0)
4095     InitializeRegisters();
4096 
4097   if (p == NULL || *p == '\0') {
4098     return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
4099                                   "No thread specified in p packet");
4100   }
4101   if (!m_ctx.HasValidProcessID()) {
4102     return SendPacket("E15");
4103   }
4104   nub_process_t pid = m_ctx.ProcessID();
4105   errno = 0;
4106   char *tid_cstr = NULL;
4107   uint32_t reg = static_cast<uint32_t>(strtoul(p + 1, &tid_cstr, 16));
4108   if (errno != 0 && reg == 0) {
4109     return HandlePacket_ILLFORMED(
4110         __FILE__, __LINE__, p, "Could not parse register number in p packet");
4111   }
4112 
4113   nub_thread_t tid = ExtractThreadIDFromThreadSuffix(tid_cstr);
4114   if (tid == INVALID_NUB_THREAD)
4115     return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
4116                                   "No thread specified in p packet");
4117 
4118   const register_map_entry_t *reg_entry;
4119 
4120   if (reg < g_num_reg_entries)
4121     reg_entry = &g_reg_entries[reg];
4122   else
4123     reg_entry = NULL;
4124 
4125   std::ostringstream ostrm;
4126   if (reg_entry == NULL) {
4127     DNBLogError(
4128         "RNBRemote::HandlePacket_p(%s): unknown register number %u requested\n",
4129         p, reg);
4130     ostrm << "00000000";
4131   } else if (reg_entry->nub_info.reg == (uint32_t)-1) {
4132     if (reg_entry->nub_info.size > 0) {
4133       std::basic_string<uint8_t> zeros(reg_entry->nub_info.size, '\0');
4134       append_hex_value(ostrm, zeros.data(), zeros.size(), false);
4135     }
4136   } else {
4137     register_value_in_hex_fixed_width(ostrm, pid, tid, reg_entry, NULL);
4138   }
4139   return SendPacket(ostrm.str());
4140 }
4141 
4142 /* 'Pnn=rrrrr'
4143  Set register number n to value r.
4144  n and r are hex strings.  */
4145 
4146 rnb_err_t RNBRemote::HandlePacket_P(const char *p) {
4147   if (g_num_reg_entries == 0)
4148     InitializeRegisters();
4149 
4150   if (p == NULL || *p == '\0') {
4151     return HandlePacket_ILLFORMED(__FILE__, __LINE__, p, "Empty P packet");
4152   }
4153   if (!m_ctx.HasValidProcessID()) {
4154     return SendPacket("E28");
4155   }
4156 
4157   nub_process_t pid = m_ctx.ProcessID();
4158 
4159   StdStringExtractor packet(p);
4160 
4161   const char cmd_char = packet.GetChar();
4162   // Register ID is always in big endian
4163   const uint32_t reg = packet.GetHexMaxU32(false, UINT32_MAX);
4164   const char equal_char = packet.GetChar();
4165 
4166   if (cmd_char != 'P')
4167     return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
4168                                   "Improperly formed P packet");
4169 
4170   if (reg == UINT32_MAX)
4171     return SendPacket("E29");
4172 
4173   if (equal_char != '=')
4174     return SendPacket("E30");
4175 
4176   const register_map_entry_t *reg_entry;
4177 
4178   if (reg >= g_num_reg_entries)
4179     return SendPacket("E47");
4180 
4181   reg_entry = &g_reg_entries[reg];
4182 
4183   if (reg_entry->nub_info.set == (uint32_t)-1 &&
4184       reg_entry->nub_info.reg == (uint32_t)-1) {
4185     DNBLogError(
4186         "RNBRemote::HandlePacket_P(%s): unknown register number %u requested\n",
4187         p, reg);
4188     return SendPacket("E48");
4189   }
4190 
4191   DNBRegisterValue reg_value;
4192   reg_value.info = reg_entry->nub_info;
4193   packet.GetHexBytes(reg_value.value.v_sint8, reg_entry->nub_info.size, 0xcc);
4194 
4195   nub_thread_t tid = ExtractThreadIDFromThreadSuffix(p);
4196   if (tid == INVALID_NUB_THREAD)
4197     return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
4198                                   "No thread specified in p packet");
4199 
4200   if (!DNBThreadSetRegisterValueByID(pid, tid, reg_entry->nub_info.set,
4201                                      reg_entry->nub_info.reg, &reg_value)) {
4202     return SendPacket("E32");
4203   }
4204   return SendPacket("OK");
4205 }
4206 
4207 /* 'c [addr]'
4208  Continue, optionally from a specified address. */
4209 
4210 rnb_err_t RNBRemote::HandlePacket_c(const char *p) {
4211   const nub_process_t pid = m_ctx.ProcessID();
4212 
4213   if (pid == INVALID_NUB_PROCESS)
4214     return SendPacket("E23");
4215 
4216   DNBThreadResumeAction action = {INVALID_NUB_THREAD, eStateRunning, 0,
4217                                   INVALID_NUB_ADDRESS};
4218 
4219   if (*(p + 1) != '\0') {
4220     action.tid = GetContinueThread();
4221     errno = 0;
4222     action.addr = strtoull(p + 1, NULL, 16);
4223     if (errno != 0 && action.addr == 0)
4224       return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
4225                                     "Could not parse address in c packet");
4226   }
4227 
4228   DNBThreadResumeActions thread_actions;
4229   thread_actions.Append(action);
4230   thread_actions.SetDefaultThreadActionIfNeeded(eStateRunning, 0);
4231   if (!DNBProcessResume(pid, thread_actions.GetFirst(),
4232                         thread_actions.GetSize()))
4233     return SendPacket("E25");
4234   // Don't send an "OK" packet; response is the stopped/exited message.
4235   return rnb_success;
4236 }
4237 
4238 rnb_err_t RNBRemote::HandlePacket_MemoryRegionInfo(const char *p) {
4239   /* This packet will find memory attributes (e.g. readable, writable,
4240      executable, stack, jitted code)
4241      for the memory region containing a given address and return that
4242      information.
4243 
4244      Users of this packet must be prepared for three results:
4245 
4246          Region information is returned
4247          Region information is unavailable for this address because the address
4248      is in unmapped memory
4249          Region lookup cannot be performed on this platform or process is not
4250      yet launched
4251          This packet isn't implemented
4252 
4253      Examples of use:
4254         qMemoryRegionInfo:3a55140
4255         start:3a50000,size:100000,permissions:rwx
4256 
4257         qMemoryRegionInfo:0
4258         error:address in unmapped region
4259 
4260         qMemoryRegionInfo:3a551140   (on a different platform)
4261         error:region lookup cannot be performed
4262 
4263         qMemoryRegionInfo
4264         OK                   // this packet is implemented by the remote nub
4265   */
4266 
4267   p += sizeof("qMemoryRegionInfo") - 1;
4268   if (*p == '\0')
4269     return SendPacket("OK");
4270   if (*p++ != ':')
4271     return SendPacket("E67");
4272   if (*p == '0' && (*(p + 1) == 'x' || *(p + 1) == 'X'))
4273     p += 2;
4274 
4275   errno = 0;
4276   uint64_t address = strtoul(p, NULL, 16);
4277   if (errno != 0 && address == 0) {
4278     return HandlePacket_ILLFORMED(
4279         __FILE__, __LINE__, p, "Invalid address in qMemoryRegionInfo packet");
4280   }
4281 
4282   DNBRegionInfo region_info;
4283   DNBProcessMemoryRegionInfo(m_ctx.ProcessID(), address, &region_info);
4284   std::ostringstream ostrm;
4285 
4286   // start:3a50000,size:100000,permissions:rwx
4287   ostrm << "start:" << std::hex << region_info.addr << ';';
4288 
4289   if (region_info.size > 0)
4290     ostrm << "size:" << std::hex << region_info.size << ';';
4291 
4292   if (region_info.permissions) {
4293     ostrm << "permissions:";
4294 
4295     if (region_info.permissions & eMemoryPermissionsReadable)
4296       ostrm << 'r';
4297     if (region_info.permissions & eMemoryPermissionsWritable)
4298       ostrm << 'w';
4299     if (region_info.permissions & eMemoryPermissionsExecutable)
4300       ostrm << 'x';
4301     ostrm << ';';
4302 
4303     ostrm << "dirty-pages:";
4304     if (region_info.dirty_pages.size() > 0) {
4305       bool first = true;
4306       for (nub_addr_t addr : region_info.dirty_pages) {
4307         if (!first)
4308           ostrm << ",";
4309         first = false;
4310         ostrm << std::hex << addr;
4311       }
4312     }
4313     ostrm << ";";
4314     if (!region_info.vm_types.empty()) {
4315       ostrm << "type:";
4316       for (size_t i = 0; i < region_info.vm_types.size(); i++) {
4317         if (i)
4318           ostrm << ",";
4319         ostrm << region_info.vm_types[i];
4320       }
4321       ostrm << ";";
4322     }
4323   }
4324   return SendPacket(ostrm.str());
4325 }
4326 
4327 // qGetProfileData;scan_type:0xYYYYYYY
4328 rnb_err_t RNBRemote::HandlePacket_GetProfileData(const char *p) {
4329   nub_process_t pid = m_ctx.ProcessID();
4330   if (pid == INVALID_NUB_PROCESS)
4331     return SendPacket("OK");
4332 
4333   StdStringExtractor packet(p += sizeof("qGetProfileData"));
4334   DNBProfileDataScanType scan_type = eProfileAll;
4335   std::string name;
4336   std::string value;
4337   while (packet.GetNameColonValue(name, value)) {
4338     if (name == "scan_type") {
4339       std::istringstream iss(value);
4340       uint32_t int_value = 0;
4341       if (iss >> std::hex >> int_value) {
4342         scan_type = (DNBProfileDataScanType)int_value;
4343       }
4344     }
4345   }
4346 
4347   std::string data = DNBProcessGetProfileData(pid, scan_type);
4348   if (!data.empty()) {
4349     return SendPacket(data.c_str());
4350   } else {
4351     return SendPacket("OK");
4352   }
4353 }
4354 
4355 // QSetEnableAsyncProfiling;enable:[0|1]:interval_usec:XXXXXX;scan_type:0xYYYYYYY
4356 rnb_err_t RNBRemote::HandlePacket_SetEnableAsyncProfiling(const char *p) {
4357   nub_process_t pid = m_ctx.ProcessID();
4358   if (pid == INVALID_NUB_PROCESS)
4359     return SendPacket("OK");
4360 
4361   StdStringExtractor packet(p += sizeof("QSetEnableAsyncProfiling"));
4362   bool enable = false;
4363   uint64_t interval_usec = 0;
4364   DNBProfileDataScanType scan_type = eProfileAll;
4365   std::string name;
4366   std::string value;
4367   while (packet.GetNameColonValue(name, value)) {
4368     if (name == "enable") {
4369       enable = strtoul(value.c_str(), NULL, 10) > 0;
4370     } else if (name == "interval_usec") {
4371       interval_usec = strtoul(value.c_str(), NULL, 10);
4372     } else if (name == "scan_type") {
4373       std::istringstream iss(value);
4374       uint32_t int_value = 0;
4375       if (iss >> std::hex >> int_value) {
4376         scan_type = (DNBProfileDataScanType)int_value;
4377       }
4378     }
4379   }
4380 
4381   if (interval_usec == 0) {
4382     enable = false;
4383   }
4384 
4385   DNBProcessSetEnableAsyncProfiling(pid, enable, interval_usec, scan_type);
4386   return SendPacket("OK");
4387 }
4388 
4389 // QEnableCompression:type:<COMPRESSION-TYPE>;minsize:<MINIMUM PACKET SIZE TO
4390 // COMPRESS>;
4391 //
4392 // type: must be a type previously reported by the qXfer:features:
4393 // SupportedCompressions list
4394 //
4395 // minsize: is optional; by default the qXfer:features:
4396 // DefaultCompressionMinSize value is used
4397 // debugserver may have a better idea of what a good minimum packet size to
4398 // compress is than lldb.
4399 
4400 rnb_err_t RNBRemote::HandlePacket_QEnableCompression(const char *p) {
4401   p += sizeof("QEnableCompression:") - 1;
4402 
4403   size_t new_compression_minsize = m_compression_minsize;
4404   const char *new_compression_minsize_str = strstr(p, "minsize:");
4405   if (new_compression_minsize_str) {
4406     new_compression_minsize_str += strlen("minsize:");
4407     errno = 0;
4408     new_compression_minsize = strtoul(new_compression_minsize_str, NULL, 10);
4409     if (errno != 0 || new_compression_minsize == ULONG_MAX) {
4410       new_compression_minsize = m_compression_minsize;
4411     }
4412   }
4413 
4414   if (strstr(p, "type:zlib-deflate;") != nullptr) {
4415     EnableCompressionNextSendPacket(compression_types::zlib_deflate);
4416     m_compression_minsize = new_compression_minsize;
4417     return SendPacket("OK");
4418   } else if (strstr(p, "type:lz4;") != nullptr) {
4419     EnableCompressionNextSendPacket(compression_types::lz4);
4420     m_compression_minsize = new_compression_minsize;
4421     return SendPacket("OK");
4422   } else if (strstr(p, "type:lzma;") != nullptr) {
4423     EnableCompressionNextSendPacket(compression_types::lzma);
4424     m_compression_minsize = new_compression_minsize;
4425     return SendPacket("OK");
4426   } else if (strstr(p, "type:lzfse;") != nullptr) {
4427     EnableCompressionNextSendPacket(compression_types::lzfse);
4428     m_compression_minsize = new_compression_minsize;
4429     return SendPacket("OK");
4430   }
4431 
4432   return SendPacket("E88");
4433 }
4434 
4435 rnb_err_t RNBRemote::HandlePacket_qSpeedTest(const char *p) {
4436   p += strlen("qSpeedTest:response_size:");
4437   char *end = NULL;
4438   errno = 0;
4439   uint64_t response_size = ::strtoul(p, &end, 16);
4440   if (errno != 0)
4441     return HandlePacket_ILLFORMED(
4442         __FILE__, __LINE__, p,
4443         "Didn't find response_size value at right offset");
4444   else if (*end == ';') {
4445     static char g_data[4 * 1024 * 1024 + 16];
4446     strcpy(g_data, "data:");
4447     memset(g_data + 5, 'a', response_size);
4448     g_data[response_size + 5] = '\0';
4449     return SendPacket(g_data);
4450   } else {
4451     return SendPacket("E79");
4452   }
4453 }
4454 
4455 rnb_err_t RNBRemote::HandlePacket_WatchpointSupportInfo(const char *p) {
4456   /* This packet simply returns the number of supported hardware watchpoints.
4457 
4458      Examples of use:
4459         qWatchpointSupportInfo:
4460         num:4
4461 
4462         qWatchpointSupportInfo
4463         OK                   // this packet is implemented by the remote nub
4464   */
4465 
4466   p += sizeof("qWatchpointSupportInfo") - 1;
4467   if (*p == '\0')
4468     return SendPacket("OK");
4469   if (*p++ != ':')
4470     return SendPacket("E67");
4471 
4472   errno = 0;
4473   uint32_t num = DNBWatchpointGetNumSupportedHWP(m_ctx.ProcessID());
4474   std::ostringstream ostrm;
4475 
4476   // size:4
4477   ostrm << "num:" << std::dec << num << ';';
4478   return SendPacket(ostrm.str());
4479 }
4480 
4481 /* 'C sig [;addr]'
4482  Resume with signal sig, optionally at address addr.  */
4483 
4484 rnb_err_t RNBRemote::HandlePacket_C(const char *p) {
4485   const nub_process_t pid = m_ctx.ProcessID();
4486 
4487   if (pid == INVALID_NUB_PROCESS)
4488     return SendPacket("E36");
4489 
4490   DNBThreadResumeAction action = {INVALID_NUB_THREAD, eStateRunning, 0,
4491                                   INVALID_NUB_ADDRESS};
4492   int process_signo = -1;
4493   if (*(p + 1) != '\0') {
4494     action.tid = GetContinueThread();
4495     char *end = NULL;
4496     errno = 0;
4497     process_signo = static_cast<int>(strtoul(p + 1, &end, 16));
4498     if (errno != 0)
4499       return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
4500                                     "Could not parse signal in C packet");
4501     else if (*end == ';') {
4502       errno = 0;
4503       action.addr = strtoull(end + 1, NULL, 16);
4504       if (errno != 0 && action.addr == 0)
4505         return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
4506                                       "Could not parse address in C packet");
4507     }
4508   }
4509 
4510   DNBThreadResumeActions thread_actions;
4511   thread_actions.Append(action);
4512   thread_actions.SetDefaultThreadActionIfNeeded(eStateRunning, action.signal);
4513   if (!DNBProcessSignal(pid, process_signo))
4514     return SendPacket("E52");
4515   if (!DNBProcessResume(pid, thread_actions.GetFirst(),
4516                         thread_actions.GetSize()))
4517     return SendPacket("E38");
4518   /* Don't send an "OK" packet; response is the stopped/exited message.  */
4519   return rnb_success;
4520 }
4521 
4522 // 'D' packet
4523 // Detach from gdb.
4524 rnb_err_t RNBRemote::HandlePacket_D(const char *p) {
4525   if (m_ctx.HasValidProcessID()) {
4526     DNBLog("detaching from pid %u due to D packet", m_ctx.ProcessID());
4527     if (DNBProcessDetach(m_ctx.ProcessID()))
4528       SendPacket("OK");
4529     else {
4530       DNBLog("error while detaching from pid %u due to D packet",
4531              m_ctx.ProcessID());
4532       SendPacket("E");
4533     }
4534   } else {
4535     SendPacket("E");
4536   }
4537   return rnb_success;
4538 }
4539 
4540 /* 'k'
4541  Kill the inferior process.  */
4542 
4543 rnb_err_t RNBRemote::HandlePacket_k(const char *p) {
4544   DNBLog("Got a 'k' packet, killing the inferior process.");
4545   // No response to should be sent to the kill packet
4546   if (m_ctx.HasValidProcessID())
4547     DNBProcessKill(m_ctx.ProcessID());
4548   SendPacket("X09");
4549   return rnb_success;
4550 }
4551 
4552 rnb_err_t RNBRemote::HandlePacket_stop_process(const char *p) {
4553 //#define TEST_EXIT_ON_INTERRUPT // This should only be uncommented to test
4554 //exiting on interrupt
4555 #if defined(TEST_EXIT_ON_INTERRUPT)
4556   rnb_err_t err = HandlePacket_k(p);
4557   m_comm.Disconnect(true);
4558   return err;
4559 #else
4560   if (!DNBProcessInterrupt(m_ctx.ProcessID())) {
4561     // If we failed to interrupt the process, then send a stop
4562     // reply packet as the process was probably already stopped
4563     DNBLogThreaded("RNBRemote::HandlePacket_stop_process() sending extra stop "
4564                    "reply because DNBProcessInterrupt returned false");
4565     HandlePacket_last_signal(NULL);
4566   }
4567   return rnb_success;
4568 #endif
4569 }
4570 
4571 /* 's'
4572  Step the inferior process.  */
4573 
4574 rnb_err_t RNBRemote::HandlePacket_s(const char *p) {
4575   const nub_process_t pid = m_ctx.ProcessID();
4576   if (pid == INVALID_NUB_PROCESS)
4577     return SendPacket("E32");
4578 
4579   // Hardware supported stepping not supported on arm
4580   nub_thread_t tid = GetContinueThread();
4581   if (tid == 0 || tid == (nub_thread_t)-1)
4582     tid = GetCurrentThread();
4583 
4584   if (tid == INVALID_NUB_THREAD)
4585     return SendPacket("E33");
4586 
4587   DNBThreadResumeActions thread_actions;
4588   thread_actions.AppendAction(tid, eStateStepping);
4589 
4590   // Make all other threads stop when we are stepping
4591   thread_actions.SetDefaultThreadActionIfNeeded(eStateStopped, 0);
4592   if (!DNBProcessResume(pid, thread_actions.GetFirst(),
4593                         thread_actions.GetSize()))
4594     return SendPacket("E49");
4595   // Don't send an "OK" packet; response is the stopped/exited message.
4596   return rnb_success;
4597 }
4598 
4599 /* 'S sig [;addr]'
4600  Step with signal sig, optionally at address addr.  */
4601 
4602 rnb_err_t RNBRemote::HandlePacket_S(const char *p) {
4603   const nub_process_t pid = m_ctx.ProcessID();
4604   if (pid == INVALID_NUB_PROCESS)
4605     return SendPacket("E36");
4606 
4607   DNBThreadResumeAction action = {INVALID_NUB_THREAD, eStateStepping, 0,
4608                                   INVALID_NUB_ADDRESS};
4609 
4610   if (*(p + 1) != '\0') {
4611     char *end = NULL;
4612     errno = 0;
4613     action.signal = static_cast<int>(strtoul(p + 1, &end, 16));
4614     if (errno != 0)
4615       return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
4616                                     "Could not parse signal in S packet");
4617     else if (*end == ';') {
4618       errno = 0;
4619       action.addr = strtoull(end + 1, NULL, 16);
4620       if (errno != 0 && action.addr == 0) {
4621         return HandlePacket_ILLFORMED(__FILE__, __LINE__, p,
4622                                       "Could not parse address in S packet");
4623       }
4624     }
4625   }
4626 
4627   action.tid = GetContinueThread();
4628   if (action.tid == 0 || action.tid == (nub_thread_t)-1)
4629     return SendPacket("E40");
4630 
4631   nub_state_t tstate = DNBThreadGetState(pid, action.tid);
4632   if (tstate == eStateInvalid || tstate == eStateExited)
4633     return SendPacket("E37");
4634 
4635   DNBThreadResumeActions thread_actions;
4636   thread_actions.Append(action);
4637 
4638   // Make all other threads stop when we are stepping
4639   thread_actions.SetDefaultThreadActionIfNeeded(eStateStopped, 0);
4640   if (!DNBProcessResume(pid, thread_actions.GetFirst(),
4641                         thread_actions.GetSize()))
4642     return SendPacket("E39");
4643 
4644   // Don't send an "OK" packet; response is the stopped/exited message.
4645   return rnb_success;
4646 }
4647 
4648 static const char *GetArchName(const uint32_t cputype,
4649                                const uint32_t cpusubtype) {
4650   switch (cputype) {
4651   case CPU_TYPE_ARM:
4652     switch (cpusubtype) {
4653     case 5:
4654       return "armv4";
4655     case 6:
4656       return "armv6";
4657     case 7:
4658       return "armv5t";
4659     case 8:
4660       return "xscale";
4661     case 9:
4662       return "armv7";
4663     case 10:
4664       return "armv7f";
4665     case 11:
4666       return "armv7s";
4667     case 12:
4668       return "armv7k";
4669     case 14:
4670       return "armv6m";
4671     case 15:
4672       return "armv7m";
4673     case 16:
4674       return "armv7em";
4675     default:
4676       return "arm";
4677     }
4678     break;
4679   case CPU_TYPE_ARM64:
4680     return "arm64";
4681   case CPU_TYPE_ARM64_32:
4682     return "arm64_32";
4683   case CPU_TYPE_I386:
4684     return "i386";
4685   case CPU_TYPE_X86_64:
4686     switch (cpusubtype) {
4687     default:
4688       return "x86_64";
4689     case 8:
4690       return "x86_64h";
4691     }
4692     break;
4693   }
4694   return NULL;
4695 }
4696 
4697 static bool GetHostCPUType(uint32_t &cputype, uint32_t &cpusubtype,
4698                            uint32_t &is_64_bit_capable, bool &promoted_to_64) {
4699   static uint32_t g_host_cputype = 0;
4700   static uint32_t g_host_cpusubtype = 0;
4701   static uint32_t g_is_64_bit_capable = 0;
4702   static bool g_promoted_to_64 = false;
4703 
4704   if (g_host_cputype == 0) {
4705     g_promoted_to_64 = false;
4706     size_t len = sizeof(uint32_t);
4707     if (::sysctlbyname("hw.cputype", &g_host_cputype, &len, NULL, 0) == 0) {
4708       len = sizeof(uint32_t);
4709       if (::sysctlbyname("hw.cpu64bit_capable", &g_is_64_bit_capable, &len,
4710                          NULL, 0) == 0) {
4711         if (g_is_64_bit_capable && ((g_host_cputype & CPU_ARCH_ABI64) == 0)) {
4712           g_promoted_to_64 = true;
4713           g_host_cputype |= CPU_ARCH_ABI64;
4714         }
4715       }
4716 #if defined (TARGET_OS_WATCH) && TARGET_OS_WATCH == 1
4717       if (g_host_cputype == CPU_TYPE_ARM64 && sizeof (void*) == 4)
4718         g_host_cputype = CPU_TYPE_ARM64_32;
4719 #endif
4720     }
4721 
4722     len = sizeof(uint32_t);
4723     if (::sysctlbyname("hw.cpusubtype", &g_host_cpusubtype, &len, NULL, 0) ==
4724         0) {
4725       if (g_promoted_to_64 && g_host_cputype == CPU_TYPE_X86_64 &&
4726           g_host_cpusubtype == CPU_SUBTYPE_486)
4727         g_host_cpusubtype = CPU_SUBTYPE_X86_64_ALL;
4728     }
4729 #if defined (TARGET_OS_WATCH) && TARGET_OS_WATCH == 1
4730     // on arm64_32 devices, the machine's native cpu type is
4731     // CPU_TYPE_ARM64 and subtype is 2 indicating arm64e.
4732     // But we change the cputype to CPU_TYPE_ARM64_32 because
4733     // the user processes are all ILP32 processes today.
4734     // We also need to rewrite the cpusubtype so we vend
4735     // a valid cputype + cpusubtype combination.
4736     if (g_host_cputype == CPU_TYPE_ARM64_32)
4737       g_host_cpusubtype = CPU_SUBTYPE_ARM64_32_V8;
4738 #endif
4739   }
4740 
4741   cputype = g_host_cputype;
4742   cpusubtype = g_host_cpusubtype;
4743   is_64_bit_capable = g_is_64_bit_capable;
4744   promoted_to_64 = g_promoted_to_64;
4745   return g_host_cputype != 0;
4746 }
4747 
4748 static bool GetAddressingBits(uint32_t &addressing_bits) {
4749   static uint32_t g_addressing_bits = 0;
4750   static bool g_tried_addressing_bits_syscall = false;
4751   if (g_tried_addressing_bits_syscall == false) {
4752     size_t len = sizeof (uint32_t);
4753     if (::sysctlbyname("machdep.virtual_address_size",
4754           &g_addressing_bits, &len, NULL, 0) != 0) {
4755       g_addressing_bits = 0;
4756     }
4757   }
4758   g_tried_addressing_bits_syscall = true;
4759   addressing_bits = g_addressing_bits;
4760   if (addressing_bits > 0)
4761     return true;
4762   else
4763     return false;
4764 }
4765 
4766 rnb_err_t RNBRemote::HandlePacket_qHostInfo(const char *p) {
4767   std::ostringstream strm;
4768 
4769   uint32_t cputype = 0;
4770   uint32_t cpusubtype = 0;
4771   uint32_t is_64_bit_capable = 0;
4772   bool promoted_to_64 = false;
4773   if (GetHostCPUType(cputype, cpusubtype, is_64_bit_capable, promoted_to_64)) {
4774     strm << "cputype:" << std::dec << cputype << ';';
4775     strm << "cpusubtype:" << std::dec << cpusubtype << ';';
4776   }
4777 
4778   uint32_t addressing_bits = 0;
4779   if (GetAddressingBits(addressing_bits)) {
4780     strm << "addressing_bits:" << std::dec << addressing_bits << ';';
4781   }
4782 
4783   // The OS in the triple should be "ios" or "macosx" which doesn't match our
4784   // "Darwin" which gets returned from "kern.ostype", so we need to hardcode
4785   // this for now.
4786   if (cputype == CPU_TYPE_ARM || cputype == CPU_TYPE_ARM64
4787       || cputype == CPU_TYPE_ARM64_32) {
4788 #if defined(TARGET_OS_TV) && TARGET_OS_TV == 1
4789     strm << "ostype:tvos;";
4790 #elif defined(TARGET_OS_WATCH) && TARGET_OS_WATCH == 1
4791     strm << "ostype:watchos;";
4792 #elif defined(TARGET_OS_BRIDGE) && TARGET_OS_BRIDGE == 1
4793     strm << "ostype:bridgeos;";
4794 #elif defined(TARGET_OS_OSX) && TARGET_OS_OSX == 1
4795     strm << "ostype:macosx;";
4796 #else
4797     strm << "ostype:ios;";
4798 #endif
4799 
4800     // On armv7 we use "synchronous" watchpoints which means the exception is
4801     // delivered before the instruction executes.
4802     strm << "watchpoint_exceptions_received:before;";
4803   } else {
4804     strm << "ostype:macosx;";
4805     strm << "watchpoint_exceptions_received:after;";
4806   }
4807   //    char ostype[64];
4808   //    len = sizeof(ostype);
4809   //    if (::sysctlbyname("kern.ostype", &ostype, &len, NULL, 0) == 0)
4810   //    {
4811   //        len = strlen(ostype);
4812   //        std::transform (ostype, ostype + len, ostype, tolower);
4813   //        strm << "ostype:" << std::dec << ostype << ';';
4814   //    }
4815 
4816   strm << "vendor:apple;";
4817 
4818   uint64_t major, minor, patch;
4819   if (DNBGetOSVersionNumbers(&major, &minor, &patch)) {
4820     strm << "os_version:" << major << "." << minor;
4821     if (patch != UINT64_MAX)
4822       strm << "." << patch;
4823     strm << ";";
4824   }
4825 
4826   std::string maccatalyst_version = DNBGetMacCatalystVersionString();
4827   if (!maccatalyst_version.empty() &&
4828       std::all_of(maccatalyst_version.begin(), maccatalyst_version.end(),
4829                   [](char c) { return (c >= '0' && c <= '9') || c == '.'; }))
4830     strm << "maccatalyst_version:" << maccatalyst_version << ";";
4831 
4832 #if defined(__LITTLE_ENDIAN__)
4833   strm << "endian:little;";
4834 #elif defined(__BIG_ENDIAN__)
4835   strm << "endian:big;";
4836 #elif defined(__PDP_ENDIAN__)
4837   strm << "endian:pdp;";
4838 #endif
4839 
4840   if (promoted_to_64)
4841     strm << "ptrsize:8;";
4842   else
4843     strm << "ptrsize:" << std::dec << sizeof(void *) << ';';
4844 
4845 #if defined(TARGET_OS_WATCH) && TARGET_OS_WATCH == 1
4846   strm << "default_packet_timeout:10;";
4847 #endif
4848 
4849   strm << "vm-page-size:" << std::dec << vm_page_size << ";";
4850 
4851   return SendPacket(strm.str());
4852 }
4853 
4854 void XMLElementStart(std::ostringstream &s, uint32_t indent, const char *name,
4855                      bool has_attributes) {
4856   if (indent)
4857     s << INDENT_WITH_SPACES(indent);
4858   s << '<' << name;
4859   if (!has_attributes)
4860     s << '>' << std::endl;
4861 }
4862 
4863 void XMLElementStartEndAttributes(std::ostringstream &s, bool empty) {
4864   if (empty)
4865     s << '/';
4866   s << '>' << std::endl;
4867 }
4868 
4869 void XMLElementEnd(std::ostringstream &s, uint32_t indent, const char *name) {
4870   if (indent)
4871     s << INDENT_WITH_SPACES(indent);
4872   s << '<' << '/' << name << '>' << std::endl;
4873 }
4874 
4875 void XMLElementWithStringValue(std::ostringstream &s, uint32_t indent,
4876                                const char *name, const char *value,
4877                                bool close = true) {
4878   if (value) {
4879     if (indent)
4880       s << INDENT_WITH_SPACES(indent);
4881     s << '<' << name << '>' << value;
4882     if (close)
4883       XMLElementEnd(s, 0, name);
4884   }
4885 }
4886 
4887 void XMLElementWithUnsignedValue(std::ostringstream &s, uint32_t indent,
4888                                  const char *name, uint64_t value,
4889                                  bool close = true) {
4890   if (indent)
4891     s << INDENT_WITH_SPACES(indent);
4892 
4893   s << '<' << name << '>' << DECIMAL << value;
4894   if (close)
4895     XMLElementEnd(s, 0, name);
4896 }
4897 
4898 void XMLAttributeString(std::ostringstream &s, const char *name,
4899                         const char *value, const char *default_value = NULL) {
4900   if (value) {
4901     if (default_value && strcmp(value, default_value) == 0)
4902       return; // No need to emit the attribute because it matches the default
4903               // value
4904     s << ' ' << name << "=\"" << value << "\"";
4905   }
4906 }
4907 
4908 void XMLAttributeUnsignedDecimal(std::ostringstream &s, const char *name,
4909                                  uint64_t value) {
4910   s << ' ' << name << "=\"" << DECIMAL << value << "\"";
4911 }
4912 
4913 void GenerateTargetXMLRegister(std::ostringstream &s, const uint32_t reg_num,
4914                                nub_size_t num_reg_sets,
4915                                const DNBRegisterSetInfo *reg_set_info,
4916                                const register_map_entry_t &reg) {
4917   const char *default_lldb_encoding = "uint";
4918   const char *lldb_encoding = default_lldb_encoding;
4919   const char *gdb_group = "general";
4920   const char *default_gdb_type = "int";
4921   const char *gdb_type = default_gdb_type;
4922   const char *default_lldb_format = "hex";
4923   const char *lldb_format = default_lldb_format;
4924 
4925   switch (reg.nub_info.type) {
4926   case Uint:
4927     lldb_encoding = "uint";
4928     break;
4929   case Sint:
4930     lldb_encoding = "sint";
4931     break;
4932   case IEEE754:
4933     lldb_encoding = "ieee754";
4934     if (reg.nub_info.set > 0)
4935       gdb_group = "float";
4936     break;
4937   case Vector:
4938     lldb_encoding = "vector";
4939     if (reg.nub_info.set > 0)
4940       gdb_group = "vector";
4941     break;
4942   }
4943 
4944   switch (reg.nub_info.format) {
4945   case Binary:
4946     lldb_format = "binary";
4947     break;
4948   case Decimal:
4949     lldb_format = "decimal";
4950     break;
4951   case Hex:
4952     lldb_format = "hex";
4953     break;
4954   case Float:
4955     gdb_type = "float";
4956     lldb_format = "float";
4957     break;
4958   case VectorOfSInt8:
4959     gdb_type = "float";
4960     lldb_format = "vector-sint8";
4961     break;
4962   case VectorOfUInt8:
4963     gdb_type = "float";
4964     lldb_format = "vector-uint8";
4965     break;
4966   case VectorOfSInt16:
4967     gdb_type = "float";
4968     lldb_format = "vector-sint16";
4969     break;
4970   case VectorOfUInt16:
4971     gdb_type = "float";
4972     lldb_format = "vector-uint16";
4973     break;
4974   case VectorOfSInt32:
4975     gdb_type = "float";
4976     lldb_format = "vector-sint32";
4977     break;
4978   case VectorOfUInt32:
4979     gdb_type = "float";
4980     lldb_format = "vector-uint32";
4981     break;
4982   case VectorOfFloat32:
4983     gdb_type = "float";
4984     lldb_format = "vector-float32";
4985     break;
4986   case VectorOfUInt128:
4987     gdb_type = "float";
4988     lldb_format = "vector-uint128";
4989     break;
4990   };
4991 
4992   uint32_t indent = 2;
4993 
4994   XMLElementStart(s, indent, "reg", true);
4995   XMLAttributeString(s, "name", reg.nub_info.name);
4996   XMLAttributeUnsignedDecimal(s, "regnum", reg_num);
4997   XMLAttributeUnsignedDecimal(s, "offset", reg.offset);
4998   XMLAttributeUnsignedDecimal(s, "bitsize", reg.nub_info.size * 8);
4999   XMLAttributeString(s, "group", gdb_group);
5000   XMLAttributeString(s, "type", gdb_type, default_gdb_type);
5001   XMLAttributeString(s, "altname", reg.nub_info.alt);
5002   XMLAttributeString(s, "encoding", lldb_encoding, default_lldb_encoding);
5003   XMLAttributeString(s, "format", lldb_format, default_lldb_format);
5004   XMLAttributeUnsignedDecimal(s, "group_id", reg.nub_info.set);
5005   if (reg.nub_info.reg_ehframe != INVALID_NUB_REGNUM)
5006     XMLAttributeUnsignedDecimal(s, "ehframe_regnum", reg.nub_info.reg_ehframe);
5007   if (reg.nub_info.reg_dwarf != INVALID_NUB_REGNUM)
5008     XMLAttributeUnsignedDecimal(s, "dwarf_regnum", reg.nub_info.reg_dwarf);
5009 
5010   const char *lldb_generic = NULL;
5011   switch (reg.nub_info.reg_generic) {
5012   case GENERIC_REGNUM_FP:
5013     lldb_generic = "fp";
5014     break;
5015   case GENERIC_REGNUM_PC:
5016     lldb_generic = "pc";
5017     break;
5018   case GENERIC_REGNUM_SP:
5019     lldb_generic = "sp";
5020     break;
5021   case GENERIC_REGNUM_RA:
5022     lldb_generic = "ra";
5023     break;
5024   case GENERIC_REGNUM_FLAGS:
5025     lldb_generic = "flags";
5026     break;
5027   case GENERIC_REGNUM_ARG1:
5028     lldb_generic = "arg1";
5029     break;
5030   case GENERIC_REGNUM_ARG2:
5031     lldb_generic = "arg2";
5032     break;
5033   case GENERIC_REGNUM_ARG3:
5034     lldb_generic = "arg3";
5035     break;
5036   case GENERIC_REGNUM_ARG4:
5037     lldb_generic = "arg4";
5038     break;
5039   case GENERIC_REGNUM_ARG5:
5040     lldb_generic = "arg5";
5041     break;
5042   case GENERIC_REGNUM_ARG6:
5043     lldb_generic = "arg6";
5044     break;
5045   case GENERIC_REGNUM_ARG7:
5046     lldb_generic = "arg7";
5047     break;
5048   case GENERIC_REGNUM_ARG8:
5049     lldb_generic = "arg8";
5050     break;
5051   default:
5052     break;
5053   }
5054   XMLAttributeString(s, "generic", lldb_generic);
5055 
5056   bool empty = reg.value_regnums.empty() && reg.invalidate_regnums.empty();
5057   if (!empty) {
5058     if (!reg.value_regnums.empty()) {
5059       std::ostringstream regnums;
5060       bool first = true;
5061       regnums << DECIMAL;
5062       for (auto regnum : reg.value_regnums) {
5063         if (!first)
5064           regnums << ',';
5065         regnums << regnum;
5066         first = false;
5067       }
5068       XMLAttributeString(s, "value_regnums", regnums.str().c_str());
5069     }
5070 
5071     if (!reg.invalidate_regnums.empty()) {
5072       std::ostringstream regnums;
5073       bool first = true;
5074       regnums << DECIMAL;
5075       for (auto regnum : reg.invalidate_regnums) {
5076         if (!first)
5077           regnums << ',';
5078         regnums << regnum;
5079         first = false;
5080       }
5081       XMLAttributeString(s, "invalidate_regnums", regnums.str().c_str());
5082     }
5083   }
5084   XMLElementStartEndAttributes(s, true);
5085 }
5086 
5087 void GenerateTargetXMLRegisters(std::ostringstream &s) {
5088   nub_size_t num_reg_sets = 0;
5089   const DNBRegisterSetInfo *reg_sets = DNBGetRegisterSetInfo(&num_reg_sets);
5090 
5091   uint32_t cputype = DNBGetRegisterCPUType();
5092   if (cputype) {
5093     XMLElementStart(s, 0, "feature", true);
5094     std::ostringstream name_strm;
5095     name_strm << "com.apple.debugserver." << GetArchName(cputype, 0);
5096     XMLAttributeString(s, "name", name_strm.str().c_str());
5097     XMLElementStartEndAttributes(s, false);
5098     for (uint32_t reg_num = 0; reg_num < g_num_reg_entries; ++reg_num)
5099     //        for (const auto &reg: g_dynamic_register_map)
5100     {
5101       GenerateTargetXMLRegister(s, reg_num, num_reg_sets, reg_sets,
5102                                 g_reg_entries[reg_num]);
5103     }
5104     XMLElementEnd(s, 0, "feature");
5105 
5106     if (num_reg_sets > 0) {
5107       XMLElementStart(s, 0, "groups", false);
5108       for (uint32_t set = 1; set < num_reg_sets; ++set) {
5109         XMLElementStart(s, 2, "group", true);
5110         XMLAttributeUnsignedDecimal(s, "id", set);
5111         XMLAttributeString(s, "name", reg_sets[set].name);
5112         XMLElementStartEndAttributes(s, true);
5113       }
5114       XMLElementEnd(s, 0, "groups");
5115     }
5116   }
5117 }
5118 
5119 static const char *g_target_xml_header = R"(<?xml version="1.0"?>
5120 <target version="1.0">)";
5121 
5122 static const char *g_target_xml_footer = "</target>";
5123 
5124 static std::string g_target_xml;
5125 
5126 void UpdateTargetXML() {
5127   std::ostringstream s;
5128   s << g_target_xml_header << std::endl;
5129 
5130   // Set the architecture
5131   //
5132   // On raw targets (no OS, vendor info), I've seen replies like
5133   // <architecture>i386:x86-64</architecture> (for x86_64 systems - from vmware)
5134   // <architecture>arm</architecture> (for an unspecified arm device - from a Segger JLink)
5135   // For good interop, I'm not sure what's expected here.  e.g. will anyone understand
5136   // <architecture>x86_64</architecture> ? Or is i386:x86_64 the expected phrasing?
5137   //
5138   // s << "<architecture>" << arch "</architecture>" << std::endl;
5139 
5140   // Set the OSABI
5141   // s << "<osabi>abi-name</osabi>"
5142 
5143   GenerateTargetXMLRegisters(s);
5144 
5145   s << g_target_xml_footer << std::endl;
5146 
5147   // Save the XML output in case it gets retrieved in chunks
5148   g_target_xml = s.str();
5149 }
5150 
5151 rnb_err_t RNBRemote::HandlePacket_qXfer(const char *command) {
5152   const char *p = command;
5153   p += strlen("qXfer:");
5154   const char *sep = strchr(p, ':');
5155   if (sep) {
5156     std::string object(p, sep - p); // "auxv", "backtrace", "features", etc
5157     p = sep + 1;
5158     sep = strchr(p, ':');
5159     if (sep) {
5160       std::string rw(p, sep - p); // "read" or "write"
5161       p = sep + 1;
5162       sep = strchr(p, ':');
5163       if (sep) {
5164         std::string annex(p, sep - p); // "read" or "write"
5165 
5166         p = sep + 1;
5167         sep = strchr(p, ',');
5168         if (sep) {
5169           std::string offset_str(p, sep - p); // read the length as a string
5170           p = sep + 1;
5171           std::string length_str(p); // read the offset as a string
5172           char *end = nullptr;
5173           const uint64_t offset = strtoul(offset_str.c_str(), &end,
5174                                           16); // convert offset_str to a offset
5175           if (*end == '\0') {
5176             const uint64_t length = strtoul(
5177                 length_str.c_str(), &end, 16); // convert length_str to a length
5178             if (*end == '\0') {
5179               if (object == "features" && rw == "read" &&
5180                   annex == "target.xml") {
5181                 std::ostringstream xml_out;
5182 
5183                 if (offset == 0) {
5184                   InitializeRegisters(true);
5185 
5186                   UpdateTargetXML();
5187                   if (g_target_xml.empty())
5188                     return SendPacket("E83");
5189 
5190                   if (length > g_target_xml.size()) {
5191                     xml_out << 'l'; // No more data
5192                     xml_out << binary_encode_string(g_target_xml);
5193                   } else {
5194                     xml_out << 'm'; // More data needs to be read with a
5195                                     // subsequent call
5196                     xml_out << binary_encode_string(
5197                         std::string(g_target_xml, offset, length));
5198                   }
5199                 } else {
5200                   // Retrieving target XML in chunks
5201                   if (offset < g_target_xml.size()) {
5202                     std::string chunk(g_target_xml, offset, length);
5203                     if (chunk.size() < length)
5204                       xml_out << 'l'; // No more data
5205                     else
5206                       xml_out << 'm'; // More data needs to be read with a
5207                                       // subsequent call
5208                     xml_out << binary_encode_string(chunk.data());
5209                   }
5210                 }
5211                 return SendPacket(xml_out.str());
5212               }
5213               // Well formed, put not supported
5214               return HandlePacket_UNIMPLEMENTED(command);
5215             }
5216           }
5217         }
5218       } else {
5219         SendPacket("E85");
5220       }
5221     } else {
5222       SendPacket("E86");
5223     }
5224   }
5225   return SendPacket("E82");
5226 }
5227 
5228 rnb_err_t RNBRemote::HandlePacket_qGDBServerVersion(const char *p) {
5229   std::ostringstream strm;
5230 
5231 #if defined(DEBUGSERVER_PROGRAM_NAME)
5232   strm << "name:" DEBUGSERVER_PROGRAM_NAME ";";
5233 #else
5234   strm << "name:debugserver;";
5235 #endif
5236   strm << "version:" << DEBUGSERVER_VERSION_NUM << ";";
5237 
5238   return SendPacket(strm.str());
5239 }
5240 
5241 // A helper function that retrieves a single integer value from
5242 // a one-level-deep JSON dictionary of key-value pairs.  e.g.
5243 // jThreadExtendedInfo:{"plo_pthread_tsd_base_address_offset":0,"plo_pthread_tsd_base_offset":224,"plo_pthread_tsd_entry_size":8,"thread":144305}]
5244 //
5245 uint64_t get_integer_value_for_key_name_from_json(const char *key,
5246                                                   const char *json_string) {
5247   uint64_t retval = INVALID_NUB_ADDRESS;
5248   std::string key_with_quotes = "\"";
5249   key_with_quotes += key;
5250   key_with_quotes += "\"";
5251   const char *c = strstr(json_string, key_with_quotes.c_str());
5252   if (c) {
5253     c += key_with_quotes.size();
5254 
5255     while (*c != '\0' && (*c == ' ' || *c == '\t' || *c == '\n' || *c == '\r'))
5256       c++;
5257 
5258     if (*c == ':') {
5259       c++;
5260 
5261       while (*c != '\0' &&
5262              (*c == ' ' || *c == '\t' || *c == '\n' || *c == '\r'))
5263         c++;
5264 
5265       errno = 0;
5266       retval = strtoul(c, NULL, 10);
5267       if (errno != 0) {
5268         retval = INVALID_NUB_ADDRESS;
5269       }
5270     }
5271   }
5272   return retval;
5273 }
5274 
5275 // A helper function that retrieves a boolean value from
5276 // a one-level-deep JSON dictionary of key-value pairs.  e.g.
5277 // jGetLoadedDynamicLibrariesInfos:{"fetch_all_solibs":true}]
5278 
5279 // Returns true if it was able to find the key name, and sets the 'value'
5280 // argument to the value found.
5281 
5282 bool get_boolean_value_for_key_name_from_json(const char *key,
5283                                               const char *json_string,
5284                                               bool &value) {
5285   std::string key_with_quotes = "\"";
5286   key_with_quotes += key;
5287   key_with_quotes += "\"";
5288   const char *c = strstr(json_string, key_with_quotes.c_str());
5289   if (c) {
5290     c += key_with_quotes.size();
5291 
5292     while (*c != '\0' && (*c == ' ' || *c == '\t' || *c == '\n' || *c == '\r'))
5293       c++;
5294 
5295     if (*c == ':') {
5296       c++;
5297 
5298       while (*c != '\0' &&
5299              (*c == ' ' || *c == '\t' || *c == '\n' || *c == '\r'))
5300         c++;
5301 
5302       if (strncmp(c, "true", 4) == 0) {
5303         value = true;
5304         return true;
5305       } else if (strncmp(c, "false", 5) == 0) {
5306         value = false;
5307         return true;
5308       }
5309     }
5310   }
5311   return false;
5312 }
5313 
5314 // A helper function that reads an array of uint64_t's from
5315 // a one-level-deep JSON dictionary of key-value pairs.  e.g.
5316 // jGetLoadedDynamicLibrariesInfos:{"solib_addrs":[31345823,7768020384,7310483024]}]
5317 
5318 // Returns true if it was able to find the key name, false if it did not.
5319 // "ints" will have all integers found in the array appended to it.
5320 
5321 bool get_array_of_ints_value_for_key_name_from_json(
5322     const char *key, const char *json_string, std::vector<uint64_t> &ints) {
5323   std::string key_with_quotes = "\"";
5324   key_with_quotes += key;
5325   key_with_quotes += "\"";
5326   const char *c = strstr(json_string, key_with_quotes.c_str());
5327   if (c) {
5328     c += key_with_quotes.size();
5329 
5330     while (*c != '\0' && (*c == ' ' || *c == '\t' || *c == '\n' || *c == '\r'))
5331       c++;
5332 
5333     if (*c == ':') {
5334       c++;
5335 
5336       while (*c != '\0' &&
5337              (*c == ' ' || *c == '\t' || *c == '\n' || *c == '\r'))
5338         c++;
5339 
5340       if (*c == '[') {
5341         c++;
5342         while (*c != '\0' &&
5343                (*c == ' ' || *c == '\t' || *c == '\n' || *c == '\r'))
5344           c++;
5345         while (true) {
5346           if (!isdigit(*c)) {
5347             return true;
5348           }
5349 
5350           errno = 0;
5351           char *endptr;
5352           uint64_t value = strtoul(c, &endptr, 10);
5353           if (errno == 0) {
5354             ints.push_back(value);
5355           } else {
5356             break;
5357           }
5358           if (endptr == c || endptr == nullptr || *endptr == '\0') {
5359             break;
5360           }
5361           c = endptr;
5362 
5363           while (*c != '\0' &&
5364                  (*c == ' ' || *c == '\t' || *c == '\n' || *c == '\r'))
5365             c++;
5366           if (*c == ',')
5367             c++;
5368           while (*c != '\0' &&
5369                  (*c == ' ' || *c == '\t' || *c == '\n' || *c == '\r'))
5370             c++;
5371           if (*c == ']') {
5372             return true;
5373           }
5374         }
5375       }
5376     }
5377   }
5378   return false;
5379 }
5380 
5381 JSONGenerator::ObjectSP
5382 RNBRemote::GetJSONThreadsInfo(bool threads_with_valid_stop_info_only) {
5383   JSONGenerator::ArraySP threads_array_sp;
5384   if (m_ctx.HasValidProcessID()) {
5385     threads_array_sp = std::make_shared<JSONGenerator::Array>();
5386 
5387     nub_process_t pid = m_ctx.ProcessID();
5388 
5389     nub_size_t numthreads = DNBProcessGetNumThreads(pid);
5390     for (nub_size_t i = 0; i < numthreads; ++i) {
5391       nub_thread_t tid = DNBProcessGetThreadAtIndex(pid, i);
5392 
5393       struct DNBThreadStopInfo tid_stop_info;
5394 
5395       const bool stop_info_valid =
5396           DNBThreadGetStopReason(pid, tid, &tid_stop_info);
5397 
5398       // If we are doing stop info only, then we only show threads that have a
5399       // valid stop reason
5400       if (threads_with_valid_stop_info_only) {
5401         if (!stop_info_valid || tid_stop_info.reason == eStopTypeInvalid)
5402           continue;
5403       }
5404 
5405       JSONGenerator::DictionarySP thread_dict_sp(
5406           new JSONGenerator::Dictionary());
5407       thread_dict_sp->AddIntegerItem("tid", tid);
5408 
5409       std::string reason_value("none");
5410 
5411       if (stop_info_valid) {
5412         switch (tid_stop_info.reason) {
5413         case eStopTypeInvalid:
5414           break;
5415 
5416         case eStopTypeSignal:
5417           if (tid_stop_info.details.signal.signo != 0) {
5418             thread_dict_sp->AddIntegerItem("signal",
5419                                            tid_stop_info.details.signal.signo);
5420             reason_value = "signal";
5421           }
5422           break;
5423 
5424         case eStopTypeException:
5425           if (tid_stop_info.details.exception.type != 0) {
5426             reason_value = "exception";
5427             thread_dict_sp->AddIntegerItem(
5428                 "metype", tid_stop_info.details.exception.type);
5429             JSONGenerator::ArraySP medata_array_sp(new JSONGenerator::Array());
5430             for (nub_size_t i = 0;
5431                  i < tid_stop_info.details.exception.data_count; ++i) {
5432               medata_array_sp->AddItem(
5433                   JSONGenerator::IntegerSP(new JSONGenerator::Integer(
5434                       tid_stop_info.details.exception.data[i])));
5435             }
5436             thread_dict_sp->AddItem("medata", medata_array_sp);
5437           }
5438           break;
5439 
5440         case eStopTypeExec:
5441           reason_value = "exec";
5442           break;
5443         }
5444       }
5445 
5446       thread_dict_sp->AddStringItem("reason", reason_value);
5447 
5448       if (!threads_with_valid_stop_info_only) {
5449         const char *thread_name = DNBThreadGetName(pid, tid);
5450         if (thread_name && thread_name[0])
5451           thread_dict_sp->AddStringItem("name", thread_name);
5452 
5453         thread_identifier_info_data_t thread_ident_info;
5454         if (DNBThreadGetIdentifierInfo(pid, tid, &thread_ident_info)) {
5455           if (thread_ident_info.dispatch_qaddr != 0) {
5456             thread_dict_sp->AddIntegerItem("qaddr",
5457                                            thread_ident_info.dispatch_qaddr);
5458 
5459             const DispatchQueueOffsets *dispatch_queue_offsets =
5460                 GetDispatchQueueOffsets();
5461             if (dispatch_queue_offsets) {
5462               std::string queue_name;
5463               uint64_t queue_width = 0;
5464               uint64_t queue_serialnum = 0;
5465               nub_addr_t dispatch_queue_t = INVALID_NUB_ADDRESS;
5466               dispatch_queue_offsets->GetThreadQueueInfo(
5467                   pid, thread_ident_info.dispatch_qaddr, dispatch_queue_t,
5468                   queue_name, queue_width, queue_serialnum);
5469               if (dispatch_queue_t == 0 && queue_name.empty() &&
5470                   queue_serialnum == 0) {
5471                 thread_dict_sp->AddBooleanItem("associated_with_dispatch_queue",
5472                                                false);
5473               } else {
5474                 thread_dict_sp->AddBooleanItem("associated_with_dispatch_queue",
5475                                                true);
5476               }
5477               if (dispatch_queue_t != INVALID_NUB_ADDRESS &&
5478                   dispatch_queue_t != 0)
5479                 thread_dict_sp->AddIntegerItem("dispatch_queue_t",
5480                                                dispatch_queue_t);
5481               if (!queue_name.empty())
5482                 thread_dict_sp->AddStringItem("qname", queue_name);
5483               if (queue_width == 1)
5484                 thread_dict_sp->AddStringItem("qkind", "serial");
5485               else if (queue_width > 1)
5486                 thread_dict_sp->AddStringItem("qkind", "concurrent");
5487               if (queue_serialnum > 0)
5488                 thread_dict_sp->AddIntegerItem("qserialnum", queue_serialnum);
5489             }
5490           }
5491         }
5492 
5493         DNBRegisterValue reg_value;
5494 
5495         if (g_reg_entries != NULL) {
5496           JSONGenerator::DictionarySP registers_dict_sp(
5497               new JSONGenerator::Dictionary());
5498 
5499           for (uint32_t reg = 0; reg < g_num_reg_entries; reg++) {
5500             // Expedite all registers in the first register set that aren't
5501             // contained in other registers
5502             if (g_reg_entries[reg].nub_info.set == 1 &&
5503                 g_reg_entries[reg].nub_info.value_regs == NULL) {
5504               if (!DNBThreadGetRegisterValueByID(
5505                       pid, tid, g_reg_entries[reg].nub_info.set,
5506                       g_reg_entries[reg].nub_info.reg, &reg_value))
5507                 continue;
5508 
5509               std::ostringstream reg_num;
5510               reg_num << std::dec << g_reg_entries[reg].debugserver_regnum;
5511               // Encode native byte ordered bytes as hex ascii
5512               registers_dict_sp->AddBytesAsHexASCIIString(
5513                   reg_num.str(), reg_value.value.v_uint8,
5514                   g_reg_entries[reg].nub_info.size);
5515             }
5516           }
5517           thread_dict_sp->AddItem("registers", registers_dict_sp);
5518         }
5519 
5520         // Add expedited stack memory so stack backtracing doesn't need to read
5521         // anything from the
5522         // frame pointer chain.
5523         StackMemoryMap stack_mmap;
5524         ReadStackMemory(pid, tid, stack_mmap);
5525         if (!stack_mmap.empty()) {
5526           JSONGenerator::ArraySP memory_array_sp(new JSONGenerator::Array());
5527 
5528           for (const auto &stack_memory : stack_mmap) {
5529             JSONGenerator::DictionarySP stack_memory_sp(
5530                 new JSONGenerator::Dictionary());
5531             stack_memory_sp->AddIntegerItem("address", stack_memory.first);
5532             stack_memory_sp->AddBytesAsHexASCIIString(
5533                 "bytes", stack_memory.second.bytes, stack_memory.second.length);
5534             memory_array_sp->AddItem(stack_memory_sp);
5535           }
5536           thread_dict_sp->AddItem("memory", memory_array_sp);
5537         }
5538       }
5539 
5540       threads_array_sp->AddItem(thread_dict_sp);
5541     }
5542   }
5543   return threads_array_sp;
5544 }
5545 
5546 rnb_err_t RNBRemote::HandlePacket_jThreadsInfo(const char *p) {
5547   JSONGenerator::ObjectSP threads_info_sp;
5548   std::ostringstream json;
5549   std::ostringstream reply_strm;
5550   // If we haven't run the process yet, return an error.
5551   if (m_ctx.HasValidProcessID()) {
5552     const bool threads_with_valid_stop_info_only = false;
5553     JSONGenerator::ObjectSP threads_info_sp =
5554         GetJSONThreadsInfo(threads_with_valid_stop_info_only);
5555 
5556     if (threads_info_sp) {
5557       std::ostringstream strm;
5558       threads_info_sp->Dump(strm);
5559       std::string binary_packet = binary_encode_string(strm.str());
5560       if (!binary_packet.empty())
5561         return SendPacket(binary_packet.c_str());
5562     }
5563   }
5564   return SendPacket("E85");
5565 }
5566 
5567 rnb_err_t RNBRemote::HandlePacket_jThreadExtendedInfo(const char *p) {
5568   nub_process_t pid;
5569   std::ostringstream json;
5570   // If we haven't run the process yet, return an error.
5571   if (!m_ctx.HasValidProcessID()) {
5572     return SendPacket("E81");
5573   }
5574 
5575   pid = m_ctx.ProcessID();
5576 
5577   const char thread_extended_info_str[] = {"jThreadExtendedInfo:{"};
5578   if (strncmp(p, thread_extended_info_str,
5579               sizeof(thread_extended_info_str) - 1) == 0) {
5580     p += strlen(thread_extended_info_str);
5581 
5582     uint64_t tid = get_integer_value_for_key_name_from_json("thread", p);
5583     uint64_t plo_pthread_tsd_base_address_offset =
5584         get_integer_value_for_key_name_from_json(
5585             "plo_pthread_tsd_base_address_offset", p);
5586     uint64_t plo_pthread_tsd_base_offset =
5587         get_integer_value_for_key_name_from_json("plo_pthread_tsd_base_offset",
5588                                                  p);
5589     uint64_t plo_pthread_tsd_entry_size =
5590         get_integer_value_for_key_name_from_json("plo_pthread_tsd_entry_size",
5591                                                  p);
5592     uint64_t dti_qos_class_index =
5593         get_integer_value_for_key_name_from_json("dti_qos_class_index", p);
5594 
5595     if (tid != INVALID_NUB_ADDRESS) {
5596       nub_addr_t pthread_t_value = DNBGetPThreadT(pid, tid);
5597 
5598       uint64_t tsd_address = INVALID_NUB_ADDRESS;
5599       if (plo_pthread_tsd_entry_size != INVALID_NUB_ADDRESS &&
5600           plo_pthread_tsd_base_offset != INVALID_NUB_ADDRESS &&
5601           plo_pthread_tsd_entry_size != INVALID_NUB_ADDRESS) {
5602         tsd_address = DNBGetTSDAddressForThread(
5603             pid, tid, plo_pthread_tsd_base_address_offset,
5604             plo_pthread_tsd_base_offset, plo_pthread_tsd_entry_size);
5605       }
5606 
5607       bool timed_out = false;
5608       Genealogy::ThreadActivitySP thread_activity_sp;
5609 
5610       // If the pthread_t value is invalid, or if we were able to fetch the
5611       // thread's TSD base
5612       // and got an invalid value back, then we have a thread in early startup
5613       // or shutdown and
5614       // it's possible that gathering the genealogy information for this thread
5615       // go badly.
5616       // Ideally fetching this info for a thread in these odd states shouldn't
5617       // matter - but
5618       // we've seen some problems with these new SPI and threads in edge-casey
5619       // states.
5620 
5621       double genealogy_fetch_time = 0;
5622       if (pthread_t_value != INVALID_NUB_ADDRESS &&
5623           tsd_address != INVALID_NUB_ADDRESS) {
5624         DNBTimer timer(false);
5625         thread_activity_sp = DNBGetGenealogyInfoForThread(pid, tid, timed_out);
5626         genealogy_fetch_time = timer.ElapsedMicroSeconds(false) / 1000000.0;
5627       }
5628 
5629       std::unordered_set<uint32_t>
5630           process_info_indexes; // an array of the process info #'s seen
5631 
5632       json << "{";
5633 
5634       bool need_to_print_comma = false;
5635 
5636       if (thread_activity_sp && !timed_out) {
5637         const Genealogy::Activity *activity =
5638             &thread_activity_sp->current_activity;
5639         bool need_vouchers_comma_sep = false;
5640         json << "\"activity_query_timed_out\":false,";
5641         if (genealogy_fetch_time != 0) {
5642           //  If we append the floating point value with << we'll get it in
5643           //  scientific
5644           //  notation.
5645           char floating_point_ascii_buffer[64];
5646           floating_point_ascii_buffer[0] = '\0';
5647           snprintf(floating_point_ascii_buffer,
5648                    sizeof(floating_point_ascii_buffer), "%f",
5649                    genealogy_fetch_time);
5650           if (strlen(floating_point_ascii_buffer) > 0) {
5651             if (need_to_print_comma)
5652               json << ",";
5653             need_to_print_comma = true;
5654             json << "\"activity_query_duration\":"
5655                  << floating_point_ascii_buffer;
5656           }
5657         }
5658         if (activity->activity_id != 0) {
5659           if (need_to_print_comma)
5660             json << ",";
5661           need_to_print_comma = true;
5662           need_vouchers_comma_sep = true;
5663           json << "\"activity\":{";
5664           json << "\"start\":" << activity->activity_start << ",";
5665           json << "\"id\":" << activity->activity_id << ",";
5666           json << "\"parent_id\":" << activity->parent_id << ",";
5667           json << "\"name\":\""
5668                << json_string_quote_metachars(activity->activity_name) << "\",";
5669           json << "\"reason\":\""
5670                << json_string_quote_metachars(activity->reason) << "\"";
5671           json << "}";
5672         }
5673         if (thread_activity_sp->messages.size() > 0) {
5674           need_to_print_comma = true;
5675           if (need_vouchers_comma_sep)
5676             json << ",";
5677           need_vouchers_comma_sep = true;
5678           json << "\"trace_messages\":[";
5679           bool printed_one_message = false;
5680           for (auto iter = thread_activity_sp->messages.begin();
5681                iter != thread_activity_sp->messages.end(); ++iter) {
5682             if (printed_one_message)
5683               json << ",";
5684             else
5685               printed_one_message = true;
5686             json << "{";
5687             json << "\"timestamp\":" << iter->timestamp << ",";
5688             json << "\"activity_id\":" << iter->activity_id << ",";
5689             json << "\"trace_id\":" << iter->trace_id << ",";
5690             json << "\"thread\":" << iter->thread << ",";
5691             json << "\"type\":" << (int)iter->type << ",";
5692             json << "\"process_info_index\":" << iter->process_info_index
5693                  << ",";
5694             process_info_indexes.insert(iter->process_info_index);
5695             json << "\"message\":\""
5696                  << json_string_quote_metachars(iter->message) << "\"";
5697             json << "}";
5698           }
5699           json << "]";
5700         }
5701         if (thread_activity_sp->breadcrumbs.size() == 1) {
5702           need_to_print_comma = true;
5703           if (need_vouchers_comma_sep)
5704             json << ",";
5705           need_vouchers_comma_sep = true;
5706           json << "\"breadcrumb\":{";
5707           for (auto iter = thread_activity_sp->breadcrumbs.begin();
5708                iter != thread_activity_sp->breadcrumbs.end(); ++iter) {
5709             json << "\"breadcrumb_id\":" << iter->breadcrumb_id << ",";
5710             json << "\"activity_id\":" << iter->activity_id << ",";
5711             json << "\"timestamp\":" << iter->timestamp << ",";
5712             json << "\"name\":\"" << json_string_quote_metachars(iter->name)
5713                  << "\"";
5714           }
5715           json << "}";
5716         }
5717         if (process_info_indexes.size() > 0) {
5718           need_to_print_comma = true;
5719           if (need_vouchers_comma_sep)
5720             json << ",";
5721           need_vouchers_comma_sep = true;
5722           bool printed_one_process_info = false;
5723           for (auto iter = process_info_indexes.begin();
5724                iter != process_info_indexes.end(); ++iter) {
5725             if (printed_one_process_info)
5726               json << ",";
5727             Genealogy::ProcessExecutableInfoSP image_info_sp;
5728             uint32_t idx = *iter;
5729             image_info_sp = DNBGetGenealogyImageInfo(pid, idx);
5730             if (image_info_sp) {
5731               if (!printed_one_process_info) {
5732                 json << "\"process_infos\":[";
5733                 printed_one_process_info = true;
5734               }
5735 
5736               json << "{";
5737               char uuid_buf[37];
5738               uuid_unparse_upper(image_info_sp->image_uuid, uuid_buf);
5739               json << "\"process_info_index\":" << idx << ",";
5740               json << "\"image_path\":\""
5741                    << json_string_quote_metachars(image_info_sp->image_path)
5742                    << "\",";
5743               json << "\"image_uuid\":\"" << uuid_buf << "\"";
5744               json << "}";
5745             }
5746           }
5747           if (printed_one_process_info)
5748             json << "]";
5749         }
5750       } else {
5751         if (timed_out) {
5752           if (need_to_print_comma)
5753             json << ",";
5754           need_to_print_comma = true;
5755           json << "\"activity_query_timed_out\":true";
5756           if (genealogy_fetch_time != 0) {
5757             //  If we append the floating point value with << we'll get it in
5758             //  scientific
5759             //  notation.
5760             char floating_point_ascii_buffer[64];
5761             floating_point_ascii_buffer[0] = '\0';
5762             snprintf(floating_point_ascii_buffer,
5763                      sizeof(floating_point_ascii_buffer), "%f",
5764                      genealogy_fetch_time);
5765             if (strlen(floating_point_ascii_buffer) > 0) {
5766               json << ",";
5767               json << "\"activity_query_duration\":"
5768                    << floating_point_ascii_buffer;
5769             }
5770           }
5771         }
5772       }
5773 
5774       if (tsd_address != INVALID_NUB_ADDRESS) {
5775         if (need_to_print_comma)
5776           json << ",";
5777         need_to_print_comma = true;
5778         json << "\"tsd_address\":" << tsd_address;
5779 
5780         if (dti_qos_class_index != 0 && dti_qos_class_index != UINT64_MAX) {
5781           ThreadInfo::QoS requested_qos = DNBGetRequestedQoSForThread(
5782               pid, tid, tsd_address, dti_qos_class_index);
5783           if (requested_qos.IsValid()) {
5784             if (need_to_print_comma)
5785               json << ",";
5786             need_to_print_comma = true;
5787             json << "\"requested_qos\":{";
5788             json << "\"enum_value\":" << requested_qos.enum_value << ",";
5789             json << "\"constant_name\":\""
5790                  << json_string_quote_metachars(requested_qos.constant_name)
5791                  << "\",";
5792             json << "\"printable_name\":\""
5793                  << json_string_quote_metachars(requested_qos.printable_name)
5794                  << "\"";
5795             json << "}";
5796           }
5797         }
5798       }
5799 
5800       if (pthread_t_value != INVALID_NUB_ADDRESS) {
5801         if (need_to_print_comma)
5802           json << ",";
5803         need_to_print_comma = true;
5804         json << "\"pthread_t\":" << pthread_t_value;
5805       }
5806 
5807       nub_addr_t dispatch_queue_t_value = DNBGetDispatchQueueT(pid, tid);
5808       if (dispatch_queue_t_value != INVALID_NUB_ADDRESS) {
5809         if (need_to_print_comma)
5810           json << ",";
5811         need_to_print_comma = true;
5812         json << "\"dispatch_queue_t\":" << dispatch_queue_t_value;
5813       }
5814 
5815       json << "}";
5816       std::string json_quoted = binary_encode_string(json.str());
5817       return SendPacket(json_quoted);
5818     }
5819   }
5820   return SendPacket("OK");
5821 }
5822 
5823 //  This packet may be called in one of three ways:
5824 //
5825 //  jGetLoadedDynamicLibrariesInfos:{"image_count":40,"image_list_address":4295244704}
5826 //      Look for an array of the old dyld_all_image_infos style of binary infos
5827 //      at the image_list_address.
5828 //      This an array of {void* load_addr, void* mod_date, void* pathname}
5829 //
5830 //  jGetLoadedDynamicLibrariesInfos:{"fetch_all_solibs":true}
5831 //      Use the new style (macOS 10.12, tvOS 10, iOS 10, watchOS 3) dyld SPI to
5832 //      get a list of all the
5833 //      libraries loaded
5834 //
5835 //  jGetLoadedDynamicLibrariesInfos:{"solib_addresses":[8382824135,3258302053,830202858503]}
5836 //      Use the new style (macOS 10.12, tvOS 10, iOS 10, watchOS 3) dyld SPI to
5837 //      get the information
5838 //      about the libraries loaded at these addresses.
5839 //
5840 rnb_err_t
5841 RNBRemote::HandlePacket_jGetLoadedDynamicLibrariesInfos(const char *p) {
5842   nub_process_t pid;
5843   // If we haven't run the process yet, return an error.
5844   if (!m_ctx.HasValidProcessID()) {
5845     return SendPacket("E83");
5846   }
5847 
5848   pid = m_ctx.ProcessID();
5849 
5850   const char get_loaded_dynamic_libraries_infos_str[] = {
5851       "jGetLoadedDynamicLibrariesInfos:{"};
5852   if (strncmp(p, get_loaded_dynamic_libraries_infos_str,
5853               sizeof(get_loaded_dynamic_libraries_infos_str) - 1) == 0) {
5854     p += strlen(get_loaded_dynamic_libraries_infos_str);
5855 
5856     JSONGenerator::ObjectSP json_sp;
5857 
5858     std::vector<uint64_t> macho_addresses;
5859     bool fetch_all_solibs = false;
5860     if (get_boolean_value_for_key_name_from_json("fetch_all_solibs", p,
5861                                                  fetch_all_solibs) &&
5862         fetch_all_solibs) {
5863       json_sp = DNBGetAllLoadedLibrariesInfos(pid);
5864     } else if (get_array_of_ints_value_for_key_name_from_json(
5865                    "solib_addresses", p, macho_addresses)) {
5866       json_sp = DNBGetLibrariesInfoForAddresses(pid, macho_addresses);
5867     } else {
5868       nub_addr_t image_list_address =
5869           get_integer_value_for_key_name_from_json("image_list_address", p);
5870       nub_addr_t image_count =
5871           get_integer_value_for_key_name_from_json("image_count", p);
5872 
5873       if (image_list_address != INVALID_NUB_ADDRESS &&
5874           image_count != INVALID_NUB_ADDRESS) {
5875         json_sp = DNBGetLoadedDynamicLibrariesInfos(pid, image_list_address,
5876                                                     image_count);
5877       }
5878     }
5879 
5880     if (json_sp.get()) {
5881       std::ostringstream json_str;
5882       json_sp->Dump(json_str);
5883       if (json_str.str().size() > 0) {
5884         std::string json_str_quoted = binary_encode_string(json_str.str());
5885         return SendPacket(json_str_quoted.c_str());
5886       } else {
5887         SendPacket("E84");
5888       }
5889     }
5890   }
5891   return SendPacket("OK");
5892 }
5893 
5894 // This packet does not currently take any arguments.  So the behavior is
5895 //    jGetSharedCacheInfo:{}
5896 //         send information about the inferior's shared cache
5897 //    jGetSharedCacheInfo:
5898 //         send "OK" to indicate that this packet is supported
5899 rnb_err_t RNBRemote::HandlePacket_jGetSharedCacheInfo(const char *p) {
5900   nub_process_t pid;
5901   // If we haven't run the process yet, return an error.
5902   if (!m_ctx.HasValidProcessID()) {
5903     return SendPacket("E85");
5904   }
5905 
5906   pid = m_ctx.ProcessID();
5907 
5908   const char get_shared_cache_info_str[] = {"jGetSharedCacheInfo:{"};
5909   if (strncmp(p, get_shared_cache_info_str,
5910               sizeof(get_shared_cache_info_str) - 1) == 0) {
5911     JSONGenerator::ObjectSP json_sp = DNBGetSharedCacheInfo(pid);
5912 
5913     if (json_sp.get()) {
5914       std::ostringstream json_str;
5915       json_sp->Dump(json_str);
5916       if (json_str.str().size() > 0) {
5917         std::string json_str_quoted = binary_encode_string(json_str.str());
5918         return SendPacket(json_str_quoted.c_str());
5919       } else {
5920         SendPacket("E86");
5921       }
5922     }
5923   }
5924   return SendPacket("OK");
5925 }
5926 
5927 static bool MachHeaderIsMainExecutable(nub_process_t pid, uint32_t addr_size,
5928                                        nub_addr_t mach_header_addr,
5929                                        mach_header &mh) {
5930   DNBLogThreadedIf(LOG_RNB_PROC, "GetMachHeaderForMainExecutable(pid = %u, "
5931                                  "addr_size = %u, mach_header_addr = "
5932                                  "0x%16.16llx)",
5933                    pid, addr_size, mach_header_addr);
5934   const nub_size_t bytes_read =
5935       DNBProcessMemoryRead(pid, mach_header_addr, sizeof(mh), &mh);
5936   if (bytes_read == sizeof(mh)) {
5937     DNBLogThreadedIf(
5938         LOG_RNB_PROC, "GetMachHeaderForMainExecutable(pid = %u, addr_size = "
5939                       "%u, mach_header_addr = 0x%16.16llx): mh = {\n  magic = "
5940                       "0x%8.8x\n  cpu = 0x%8.8x\n  sub = 0x%8.8x\n  filetype = "
5941                       "%u\n  ncmds = %u\n  sizeofcmds = 0x%8.8x\n  flags = "
5942                       "0x%8.8x }",
5943         pid, addr_size, mach_header_addr, mh.magic, mh.cputype, mh.cpusubtype,
5944         mh.filetype, mh.ncmds, mh.sizeofcmds, mh.flags);
5945     if ((addr_size == 4 && mh.magic == MH_MAGIC) ||
5946         (addr_size == 8 && mh.magic == MH_MAGIC_64)) {
5947       if (mh.filetype == MH_EXECUTE) {
5948         DNBLogThreadedIf(LOG_RNB_PROC, "GetMachHeaderForMainExecutable(pid = "
5949                                        "%u, addr_size = %u, mach_header_addr = "
5950                                        "0x%16.16llx) -> this is the "
5951                                        "executable!!!",
5952                          pid, addr_size, mach_header_addr);
5953         return true;
5954       }
5955     }
5956   }
5957   return false;
5958 }
5959 
5960 static nub_addr_t GetMachHeaderForMainExecutable(const nub_process_t pid,
5961                                                  const uint32_t addr_size,
5962                                                  mach_header &mh) {
5963   struct AllImageInfos {
5964     uint32_t version;
5965     uint32_t dylib_info_count;
5966     uint64_t dylib_info_addr;
5967   };
5968 
5969   uint64_t mach_header_addr = 0;
5970 
5971   const nub_addr_t shlib_addr = DNBProcessGetSharedLibraryInfoAddress(pid);
5972   uint8_t bytes[256];
5973   nub_size_t bytes_read = 0;
5974   DNBDataRef data(bytes, sizeof(bytes), false);
5975   DNBDataRef::offset_t offset = 0;
5976   data.SetPointerSize(addr_size);
5977 
5978   // When we are sitting at __dyld_start, the kernel has placed the
5979   // address of the mach header of the main executable on the stack. If we
5980   // read the SP and dereference a pointer, we might find the mach header
5981   // for the executable. We also just make sure there is only 1 thread
5982   // since if we are at __dyld_start we shouldn't have multiple threads.
5983   if (DNBProcessGetNumThreads(pid) == 1) {
5984     nub_thread_t tid = DNBProcessGetThreadAtIndex(pid, 0);
5985     if (tid != INVALID_NUB_THREAD) {
5986       DNBRegisterValue sp_value;
5987       if (DNBThreadGetRegisterValueByID(pid, tid, REGISTER_SET_GENERIC,
5988                                         GENERIC_REGNUM_SP, &sp_value)) {
5989         uint64_t sp =
5990             addr_size == 8 ? sp_value.value.uint64 : sp_value.value.uint32;
5991         bytes_read = DNBProcessMemoryRead(pid, sp, addr_size, bytes);
5992         if (bytes_read == addr_size) {
5993           offset = 0;
5994           mach_header_addr = data.GetPointer(&offset);
5995           if (MachHeaderIsMainExecutable(pid, addr_size, mach_header_addr, mh))
5996             return mach_header_addr;
5997         }
5998       }
5999     }
6000   }
6001 
6002   // Check the dyld_all_image_info structure for a list of mach header
6003   // since it is a very easy thing to check
6004   if (shlib_addr != INVALID_NUB_ADDRESS) {
6005     bytes_read =
6006         DNBProcessMemoryRead(pid, shlib_addr, sizeof(AllImageInfos), bytes);
6007     if (bytes_read > 0) {
6008       AllImageInfos aii;
6009       offset = 0;
6010       aii.version = data.Get32(&offset);
6011       aii.dylib_info_count = data.Get32(&offset);
6012       if (aii.dylib_info_count > 0) {
6013         aii.dylib_info_addr = data.GetPointer(&offset);
6014         if (aii.dylib_info_addr != 0) {
6015           const size_t image_info_byte_size = 3 * addr_size;
6016           for (uint32_t i = 0; i < aii.dylib_info_count; ++i) {
6017             bytes_read = DNBProcessMemoryRead(pid, aii.dylib_info_addr +
6018                                                        i * image_info_byte_size,
6019                                               image_info_byte_size, bytes);
6020             if (bytes_read != image_info_byte_size)
6021               break;
6022             offset = 0;
6023             mach_header_addr = data.GetPointer(&offset);
6024             if (MachHeaderIsMainExecutable(pid, addr_size, mach_header_addr,
6025                                            mh))
6026               return mach_header_addr;
6027           }
6028         }
6029       }
6030     }
6031   }
6032 
6033   // We failed to find the executable's mach header from the all image
6034   // infos and by dereferencing the stack pointer. Now we fall back to
6035   // enumerating the memory regions and looking for regions that are
6036   // executable.
6037   DNBRegionInfo region_info;
6038   mach_header_addr = 0;
6039   while (DNBProcessMemoryRegionInfo(pid, mach_header_addr, &region_info)) {
6040     if (region_info.size == 0)
6041       break;
6042 
6043     if (region_info.permissions & eMemoryPermissionsExecutable) {
6044       DNBLogThreadedIf(
6045           LOG_RNB_PROC, "[0x%16.16llx - 0x%16.16llx) permissions = %c%c%c: "
6046                         "checking region for executable mach header",
6047           region_info.addr, region_info.addr + region_info.size,
6048           (region_info.permissions & eMemoryPermissionsReadable) ? 'r' : '-',
6049           (region_info.permissions & eMemoryPermissionsWritable) ? 'w' : '-',
6050           (region_info.permissions & eMemoryPermissionsExecutable) ? 'x' : '-');
6051       if (MachHeaderIsMainExecutable(pid, addr_size, mach_header_addr, mh))
6052         return mach_header_addr;
6053     } else {
6054       DNBLogThreadedIf(
6055           LOG_RNB_PROC,
6056           "[0x%16.16llx - 0x%16.16llx): permissions = %c%c%c: skipping region",
6057           region_info.addr, region_info.addr + region_info.size,
6058           (region_info.permissions & eMemoryPermissionsReadable) ? 'r' : '-',
6059           (region_info.permissions & eMemoryPermissionsWritable) ? 'w' : '-',
6060           (region_info.permissions & eMemoryPermissionsExecutable) ? 'x' : '-');
6061     }
6062     // Set the address to the next mapped region
6063     mach_header_addr = region_info.addr + region_info.size;
6064   }
6065   bzero(&mh, sizeof(mh));
6066   return INVALID_NUB_ADDRESS;
6067 }
6068 
6069 rnb_err_t RNBRemote::HandlePacket_qSymbol(const char *command) {
6070   const char *p = command;
6071   p += strlen("qSymbol:");
6072   const char *sep = strchr(p, ':');
6073 
6074   std::string symbol_name;
6075   std::string symbol_value_str;
6076   // Extract the symbol value if there is one
6077   if (sep > p)
6078     symbol_value_str.assign(p, sep - p);
6079   p = sep + 1;
6080 
6081   if (*p) {
6082     // We have a symbol name
6083     symbol_name = decode_hex_ascii_string(p);
6084     if (!symbol_value_str.empty()) {
6085       nub_addr_t symbol_value = decode_uint64(symbol_value_str.c_str(), 16);
6086       if (symbol_name == "dispatch_queue_offsets")
6087         m_dispatch_queue_offsets_addr = symbol_value;
6088     }
6089     ++m_qSymbol_index;
6090   } else {
6091     // No symbol name, set our symbol index to zero so we can
6092     // read any symbols that we need
6093     m_qSymbol_index = 0;
6094   }
6095 
6096   symbol_name.clear();
6097 
6098   if (m_qSymbol_index == 0) {
6099     if (m_dispatch_queue_offsets_addr == INVALID_NUB_ADDRESS)
6100       symbol_name = "dispatch_queue_offsets";
6101     else
6102       ++m_qSymbol_index;
6103   }
6104 
6105   //    // Lookup next symbol when we have one...
6106   //    if (m_qSymbol_index == 1)
6107   //    {
6108   //    }
6109 
6110   if (symbol_name.empty()) {
6111     // Done with symbol lookups
6112     return SendPacket("OK");
6113   } else {
6114     std::ostringstream reply;
6115     reply << "qSymbol:";
6116     for (size_t i = 0; i < symbol_name.size(); ++i)
6117       reply << RAWHEX8(symbol_name[i]);
6118     return SendPacket(reply.str().c_str());
6119   }
6120 }
6121 
6122 // Note that all numeric values returned by qProcessInfo are hex encoded,
6123 // including the pid and the cpu type.
6124 
6125 rnb_err_t RNBRemote::HandlePacket_qProcessInfo(const char *p) {
6126   nub_process_t pid;
6127   std::ostringstream rep;
6128 
6129   // If we haven't run the process yet, return an error.
6130   if (!m_ctx.HasValidProcessID())
6131     return SendPacket("E68");
6132 
6133   pid = m_ctx.ProcessID();
6134 
6135   rep << "pid:" << std::hex << pid << ';';
6136 
6137   int procpid_mib[4];
6138   procpid_mib[0] = CTL_KERN;
6139   procpid_mib[1] = KERN_PROC;
6140   procpid_mib[2] = KERN_PROC_PID;
6141   procpid_mib[3] = pid;
6142   struct kinfo_proc proc_kinfo;
6143   size_t proc_kinfo_size = sizeof(struct kinfo_proc);
6144 
6145   if (::sysctl(procpid_mib, 4, &proc_kinfo, &proc_kinfo_size, NULL, 0) == 0) {
6146     if (proc_kinfo_size > 0) {
6147       rep << "parent-pid:" << std::hex << proc_kinfo.kp_eproc.e_ppid << ';';
6148       rep << "real-uid:" << std::hex << proc_kinfo.kp_eproc.e_pcred.p_ruid
6149           << ';';
6150       rep << "real-gid:" << std::hex << proc_kinfo.kp_eproc.e_pcred.p_rgid
6151           << ';';
6152       rep << "effective-uid:" << std::hex << proc_kinfo.kp_eproc.e_ucred.cr_uid
6153           << ';';
6154       if (proc_kinfo.kp_eproc.e_ucred.cr_ngroups > 0)
6155         rep << "effective-gid:" << std::hex
6156             << proc_kinfo.kp_eproc.e_ucred.cr_groups[0] << ';';
6157     }
6158   }
6159 
6160   cpu_type_t cputype = DNBProcessGetCPUType(pid);
6161   if (cputype == 0) {
6162     DNBLog("Unable to get the process cpu_type, making a best guess.");
6163     cputype = best_guess_cpu_type();
6164   }
6165 
6166   uint32_t addr_size = 0;
6167   if (cputype != 0) {
6168     rep << "cputype:" << std::hex << cputype << ";";
6169     if (cputype & CPU_ARCH_ABI64)
6170       addr_size = 8;
6171     else
6172       addr_size = 4;
6173   }
6174 
6175   bool host_cpu_is_64bit = false;
6176   uint32_t is64bit_capable;
6177   size_t is64bit_capable_len = sizeof(is64bit_capable);
6178   if (sysctlbyname("hw.cpu64bit_capable", &is64bit_capable,
6179                    &is64bit_capable_len, NULL, 0) == 0)
6180     host_cpu_is_64bit = is64bit_capable != 0;
6181 
6182   uint32_t cpusubtype;
6183   size_t cpusubtype_len = sizeof(cpusubtype);
6184   if (::sysctlbyname("hw.cpusubtype", &cpusubtype, &cpusubtype_len, NULL, 0) ==
6185       0) {
6186     // If a process is CPU_TYPE_X86, then ignore the cpusubtype that we detected
6187     // from the host and use CPU_SUBTYPE_I386_ALL because we don't want the
6188     // CPU_SUBTYPE_X86_ARCH1 or CPU_SUBTYPE_X86_64_H to be used as the cpu
6189     // subtype
6190     // for i386...
6191     if (host_cpu_is_64bit) {
6192       if (cputype == CPU_TYPE_X86) {
6193         cpusubtype = 3; // CPU_SUBTYPE_I386_ALL
6194       } else if (cputype == CPU_TYPE_ARM) {
6195         // We can query a process' cputype but we cannot query a process'
6196         // cpusubtype.
6197         // If the process has cputype CPU_TYPE_ARM, then it is an armv7 (32-bit
6198         // process) and we
6199         // need to override the host cpusubtype (which is in the
6200         // CPU_SUBTYPE_ARM64 subtype namespace)
6201         // with a reasonable CPU_SUBTYPE_ARMV7 subtype.
6202         cpusubtype = 12; // CPU_SUBTYPE_ARM_V7K
6203       }
6204     }
6205 #if defined (TARGET_OS_WATCH) && TARGET_OS_WATCH == 1
6206     // on arm64_32 devices, the machine's native cpu type is
6207     // CPU_TYPE_ARM64 and subtype is 2 indicating arm64e.
6208     // But we change the cputype to CPU_TYPE_ARM64_32 because
6209     // the user processes are all ILP32 processes today.
6210     // We also need to rewrite the cpusubtype so we vend
6211     // a valid cputype + cpusubtype combination.
6212     if (cputype == CPU_TYPE_ARM64_32 && cpusubtype == 2)
6213       cpusubtype = CPU_SUBTYPE_ARM64_32_V8;
6214 #endif
6215 
6216     rep << "cpusubtype:" << std::hex << cpusubtype << ';';
6217   }
6218 
6219   bool os_handled = false;
6220   if (addr_size > 0) {
6221     rep << "ptrsize:" << std::dec << addr_size << ';';
6222 
6223 #if defined(TARGET_OS_OSX) && TARGET_OS_OSX == 1
6224     // Try and get the OS type by looking at the load commands in the main
6225     // executable and looking for a LC_VERSION_MIN load command. This is the
6226     // most reliable way to determine the "ostype" value when on desktop.
6227 
6228     mach_header mh;
6229     nub_addr_t exe_mach_header_addr =
6230         GetMachHeaderForMainExecutable(pid, addr_size, mh);
6231     if (exe_mach_header_addr != INVALID_NUB_ADDRESS) {
6232       uint64_t load_command_addr =
6233           exe_mach_header_addr +
6234           ((addr_size == 8) ? sizeof(mach_header_64) : sizeof(mach_header));
6235       load_command lc;
6236       for (uint32_t i = 0; i < mh.ncmds && !os_handled; ++i) {
6237         const nub_size_t bytes_read =
6238             DNBProcessMemoryRead(pid, load_command_addr, sizeof(lc), &lc);
6239         (void)bytes_read;
6240 
6241         bool is_executable = true;
6242         uint32_t major_version, minor_version, patch_version;
6243         auto *platform =
6244             DNBGetDeploymentInfo(pid, is_executable, lc, load_command_addr,
6245                                  major_version, minor_version, patch_version);
6246         if (platform) {
6247           os_handled = true;
6248           rep << "ostype:" << platform << ";";
6249           break;
6250         }
6251         load_command_addr = load_command_addr + lc.cmdsize;
6252       }
6253     }
6254 #endif // TARGET_OS_OSX
6255   }
6256 
6257   // If we weren't able to find the OS in a LC_VERSION_MIN load command, try
6258   // to set it correctly by using the cpu type and other tricks
6259   if (!os_handled) {
6260     // The OS in the triple should be "ios" or "macosx" which doesn't match our
6261     // "Darwin" which gets returned from "kern.ostype", so we need to hardcode
6262     // this for now.
6263     if (cputype == CPU_TYPE_ARM || cputype == CPU_TYPE_ARM64
6264         || cputype == CPU_TYPE_ARM64_32) {
6265 #if defined(TARGET_OS_TV) && TARGET_OS_TV == 1
6266       rep << "ostype:tvos;";
6267 #elif defined(TARGET_OS_WATCH) && TARGET_OS_WATCH == 1
6268       rep << "ostype:watchos;";
6269 #elif defined(TARGET_OS_BRIDGE) && TARGET_OS_BRIDGE == 1
6270       rep << "ostype:bridgeos;";
6271 #elif defined(TARGET_OS_OSX) && TARGET_OS_OSX == 1
6272       rep << "ostype:macosx;";
6273 #else
6274       rep << "ostype:ios;";
6275 #endif
6276     } else {
6277       bool is_ios_simulator = false;
6278       if (cputype == CPU_TYPE_X86 || cputype == CPU_TYPE_X86_64) {
6279         // Check for iOS simulator binaries by getting the process argument
6280         // and environment and checking for SIMULATOR_UDID in the environment
6281         int proc_args_mib[3] = {CTL_KERN, KERN_PROCARGS2, (int)pid};
6282 
6283         uint8_t arg_data[8192];
6284         size_t arg_data_size = sizeof(arg_data);
6285         if (::sysctl(proc_args_mib, 3, arg_data, &arg_data_size, NULL, 0) ==
6286             0) {
6287           DNBDataRef data(arg_data, arg_data_size, false);
6288           DNBDataRef::offset_t offset = 0;
6289           uint32_t argc = data.Get32(&offset);
6290           const char *cstr;
6291 
6292           cstr = data.GetCStr(&offset);
6293           if (cstr) {
6294             // Skip NULLs
6295             while (true) {
6296               const char *p = data.PeekCStr(offset);
6297               if ((p == NULL) || (*p != '\0'))
6298                 break;
6299               ++offset;
6300             }
6301             // Now skip all arguments
6302             for (uint32_t i = 0; i < argc; ++i) {
6303               data.GetCStr(&offset);
6304             }
6305 
6306             // Now iterate across all environment variables
6307             while ((cstr = data.GetCStr(&offset))) {
6308               if (strncmp(cstr, "SIMULATOR_UDID=", strlen("SIMULATOR_UDID=")) ==
6309                   0) {
6310                 is_ios_simulator = true;
6311                 break;
6312               }
6313               if (cstr[0] == '\0')
6314                 break;
6315             }
6316           }
6317         }
6318       }
6319       if (is_ios_simulator) {
6320 #if defined(TARGET_OS_TV) && TARGET_OS_TV == 1
6321         rep << "ostype:tvos;";
6322 #elif defined(TARGET_OS_WATCH) && TARGET_OS_WATCH == 1
6323         rep << "ostype:watchos;";
6324 #elif defined(TARGET_OS_BRIDGE) && TARGET_OS_BRIDGE == 1
6325         rep << "ostype:bridgeos;";
6326 #else
6327         rep << "ostype:ios;";
6328 #endif
6329       } else {
6330         rep << "ostype:macosx;";
6331       }
6332     }
6333   }
6334 
6335   rep << "vendor:apple;";
6336 
6337 #if defined(__LITTLE_ENDIAN__)
6338   rep << "endian:little;";
6339 #elif defined(__BIG_ENDIAN__)
6340   rep << "endian:big;";
6341 #elif defined(__PDP_ENDIAN__)
6342   rep << "endian:pdp;";
6343 #endif
6344 
6345   if (addr_size == 0) {
6346 #if (defined(__x86_64__) || defined(__i386__)) && defined(x86_THREAD_STATE)
6347     nub_thread_t thread = DNBProcessGetCurrentThreadMachPort(pid);
6348     kern_return_t kr;
6349     x86_thread_state_t gp_regs;
6350     mach_msg_type_number_t gp_count = x86_THREAD_STATE_COUNT;
6351     kr = thread_get_state(static_cast<thread_act_t>(thread), x86_THREAD_STATE,
6352                           (thread_state_t)&gp_regs, &gp_count);
6353     if (kr == KERN_SUCCESS) {
6354       if (gp_regs.tsh.flavor == x86_THREAD_STATE64)
6355         rep << "ptrsize:8;";
6356       else
6357         rep << "ptrsize:4;";
6358     }
6359 #elif defined(__arm__)
6360     rep << "ptrsize:4;";
6361 #elif (defined(__arm64__) || defined(__aarch64__)) &&                          \
6362     defined(ARM_UNIFIED_THREAD_STATE)
6363     nub_thread_t thread = DNBProcessGetCurrentThreadMachPort(pid);
6364     kern_return_t kr;
6365     arm_unified_thread_state_t gp_regs;
6366     mach_msg_type_number_t gp_count = ARM_UNIFIED_THREAD_STATE_COUNT;
6367     kr = thread_get_state(thread, ARM_UNIFIED_THREAD_STATE,
6368                           (thread_state_t)&gp_regs, &gp_count);
6369     if (kr == KERN_SUCCESS) {
6370       if (gp_regs.ash.flavor == ARM_THREAD_STATE64)
6371         rep << "ptrsize:8;";
6372       else
6373         rep << "ptrsize:4;";
6374     }
6375 #endif
6376   }
6377 
6378   return SendPacket(rep.str());
6379 }
6380 
6381 const RNBRemote::DispatchQueueOffsets *RNBRemote::GetDispatchQueueOffsets() {
6382   if (!m_dispatch_queue_offsets.IsValid() &&
6383       m_dispatch_queue_offsets_addr != INVALID_NUB_ADDRESS &&
6384       m_ctx.HasValidProcessID()) {
6385     nub_process_t pid = m_ctx.ProcessID();
6386     nub_size_t bytes_read = DNBProcessMemoryRead(
6387         pid, m_dispatch_queue_offsets_addr, sizeof(m_dispatch_queue_offsets),
6388         &m_dispatch_queue_offsets);
6389     if (bytes_read != sizeof(m_dispatch_queue_offsets))
6390       m_dispatch_queue_offsets.Clear();
6391   }
6392 
6393   if (m_dispatch_queue_offsets.IsValid())
6394     return &m_dispatch_queue_offsets;
6395   else
6396     return nullptr;
6397 }
6398 
6399 void RNBRemote::EnableCompressionNextSendPacket(compression_types type) {
6400   m_compression_mode = type;
6401   m_enable_compression_next_send_packet = true;
6402 }
6403 
6404 compression_types RNBRemote::GetCompressionType() {
6405   // The first packet we send back to the debugger after a QEnableCompression
6406   // request
6407   // should be uncompressed -- so we can indicate whether the compression was
6408   // enabled
6409   // or not via OK / Enn returns.  After that, all packets sent will be using
6410   // the
6411   // compression protocol.
6412 
6413   if (m_enable_compression_next_send_packet) {
6414     // One time, we send back "None" as our compression type
6415     m_enable_compression_next_send_packet = false;
6416     return compression_types::none;
6417   }
6418   return m_compression_mode;
6419 }
6420