1 //===-- RegisterContext.cpp -----------------------------------------------===//
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 #include "lldb/Target/RegisterContext.h"
10 #include "lldb/Core/Module.h"
11 #include "lldb/Core/Value.h"
12 #include "lldb/Expression/DWARFExpression.h"
13 #include "lldb/Target/ExecutionContext.h"
14 #include "lldb/Target/Process.h"
15 #include "lldb/Target/StackFrame.h"
16 #include "lldb/Target/Target.h"
17 #include "lldb/Target/Thread.h"
18 #include "lldb/Utility/DataExtractor.h"
19 #include "lldb/Utility/Endian.h"
20 #include "lldb/Utility/RegisterValue.h"
21 #include "lldb/Utility/Scalar.h"
22
23 using namespace lldb;
24 using namespace lldb_private;
25
RegisterContext(Thread & thread,uint32_t concrete_frame_idx)26 RegisterContext::RegisterContext(Thread &thread, uint32_t concrete_frame_idx)
27 : m_thread(thread), m_concrete_frame_idx(concrete_frame_idx),
28 m_stop_id(thread.GetProcess()->GetStopID()) {}
29
30 RegisterContext::~RegisterContext() = default;
31
InvalidateIfNeeded(bool force)32 void RegisterContext::InvalidateIfNeeded(bool force) {
33 ProcessSP process_sp(m_thread.GetProcess());
34 bool invalidate = force;
35 uint32_t process_stop_id = UINT32_MAX;
36
37 if (process_sp)
38 process_stop_id = process_sp->GetStopID();
39 else
40 invalidate = true;
41
42 if (!invalidate)
43 invalidate = process_stop_id != GetStopID();
44
45 if (invalidate) {
46 InvalidateAllRegisters();
47 SetStopID(process_stop_id);
48 }
49 }
50
51 const RegisterInfo *
GetRegisterInfoByName(llvm::StringRef reg_name,uint32_t start_idx)52 RegisterContext::GetRegisterInfoByName(llvm::StringRef reg_name,
53 uint32_t start_idx) {
54 if (reg_name.empty())
55 return nullptr;
56
57 const uint32_t num_registers = GetRegisterCount();
58 for (uint32_t reg = start_idx; reg < num_registers; ++reg) {
59 const RegisterInfo *reg_info = GetRegisterInfoAtIndex(reg);
60
61 if (reg_name.equals_insensitive(reg_info->name) ||
62 reg_name.equals_insensitive(reg_info->alt_name))
63 return reg_info;
64 }
65 return nullptr;
66 }
67
68 uint32_t
UpdateDynamicRegisterSize(const lldb_private::ArchSpec & arch,RegisterInfo * reg_info)69 RegisterContext::UpdateDynamicRegisterSize(const lldb_private::ArchSpec &arch,
70 RegisterInfo *reg_info) {
71 ExecutionContext exe_ctx(CalculateThread());
72
73 // In MIPS, the floating point registers size is depends on FR bit of SR
74 // register. if SR.FR == 1 then all floating point registers are 64 bits.
75 // else they are all 32 bits.
76
77 int expr_result;
78 uint32_t addr_size = arch.GetAddressByteSize();
79 const uint8_t *dwarf_opcode_ptr = reg_info->dynamic_size_dwarf_expr_bytes;
80 const size_t dwarf_opcode_len = reg_info->dynamic_size_dwarf_len;
81
82 DataExtractor dwarf_data(dwarf_opcode_ptr, dwarf_opcode_len,
83 arch.GetByteOrder(), addr_size);
84 ModuleSP opcode_ctx;
85 DWARFExpression dwarf_expr(opcode_ctx, dwarf_data, nullptr);
86 Value result;
87 Status error;
88 if (dwarf_expr.Evaluate(&exe_ctx, this, opcode_ctx, dwarf_data, nullptr,
89 eRegisterKindDWARF, nullptr, nullptr, result,
90 &error)) {
91 expr_result = result.GetScalar().SInt(-1);
92 switch (expr_result) {
93 case 0:
94 return 4;
95 case 1:
96 return 8;
97 default:
98 return reg_info->byte_size;
99 }
100 } else {
101 printf("Error executing DwarfExpression::Evaluate %s\n", error.AsCString());
102 return reg_info->byte_size;
103 }
104 }
105
GetRegisterInfo(lldb::RegisterKind kind,uint32_t num)106 const RegisterInfo *RegisterContext::GetRegisterInfo(lldb::RegisterKind kind,
107 uint32_t num) {
108 const uint32_t reg_num = ConvertRegisterKindToRegisterNumber(kind, num);
109 if (reg_num == LLDB_INVALID_REGNUM)
110 return nullptr;
111 return GetRegisterInfoAtIndex(reg_num);
112 }
113
GetRegisterName(uint32_t reg)114 const char *RegisterContext::GetRegisterName(uint32_t reg) {
115 const RegisterInfo *reg_info = GetRegisterInfoAtIndex(reg);
116 if (reg_info)
117 return reg_info->name;
118 return nullptr;
119 }
120
GetPC(uint64_t fail_value)121 uint64_t RegisterContext::GetPC(uint64_t fail_value) {
122 uint32_t reg = ConvertRegisterKindToRegisterNumber(eRegisterKindGeneric,
123 LLDB_REGNUM_GENERIC_PC);
124 uint64_t pc = ReadRegisterAsUnsigned(reg, fail_value);
125
126 if (pc != fail_value) {
127 TargetSP target_sp = m_thread.CalculateTarget();
128 if (target_sp) {
129 Target *target = target_sp.get();
130 if (target)
131 pc = target->GetOpcodeLoadAddress(pc, AddressClass::eCode);
132 }
133 }
134
135 return pc;
136 }
137
SetPC(uint64_t pc)138 bool RegisterContext::SetPC(uint64_t pc) {
139 uint32_t reg = ConvertRegisterKindToRegisterNumber(eRegisterKindGeneric,
140 LLDB_REGNUM_GENERIC_PC);
141 bool success = WriteRegisterFromUnsigned(reg, pc);
142 if (success) {
143 StackFrameSP frame_sp(
144 m_thread.GetFrameWithConcreteFrameIndex(m_concrete_frame_idx));
145 if (frame_sp)
146 frame_sp->ChangePC(pc);
147 else
148 m_thread.ClearStackFrames();
149 }
150 return success;
151 }
152
GetPCForSymbolication(Address & address)153 bool RegisterContext::GetPCForSymbolication(Address &address) {
154 addr_t pc = GetPC(LLDB_INVALID_ADDRESS);
155 if (pc == LLDB_INVALID_ADDRESS)
156 return false;
157 TargetSP target_sp = m_thread.CalculateTarget();
158 if (!target_sp.get())
159 return false;
160
161 if (!BehavesLikeZerothFrame() && pc != 0)
162 pc--;
163 address.SetLoadAddress(pc, target_sp.get());
164 return true;
165 }
166
SetPC(Address addr)167 bool RegisterContext::SetPC(Address addr) {
168 TargetSP target_sp = m_thread.CalculateTarget();
169 Target *target = target_sp.get();
170
171 lldb::addr_t callAddr = addr.GetCallableLoadAddress(target);
172 if (callAddr == LLDB_INVALID_ADDRESS)
173 return false;
174
175 return SetPC(callAddr);
176 }
177
GetSP(uint64_t fail_value)178 uint64_t RegisterContext::GetSP(uint64_t fail_value) {
179 uint32_t reg = ConvertRegisterKindToRegisterNumber(eRegisterKindGeneric,
180 LLDB_REGNUM_GENERIC_SP);
181 return ReadRegisterAsUnsigned(reg, fail_value);
182 }
183
SetSP(uint64_t sp)184 bool RegisterContext::SetSP(uint64_t sp) {
185 uint32_t reg = ConvertRegisterKindToRegisterNumber(eRegisterKindGeneric,
186 LLDB_REGNUM_GENERIC_SP);
187 return WriteRegisterFromUnsigned(reg, sp);
188 }
189
GetFP(uint64_t fail_value)190 uint64_t RegisterContext::GetFP(uint64_t fail_value) {
191 uint32_t reg = ConvertRegisterKindToRegisterNumber(eRegisterKindGeneric,
192 LLDB_REGNUM_GENERIC_FP);
193 return ReadRegisterAsUnsigned(reg, fail_value);
194 }
195
SetFP(uint64_t fp)196 bool RegisterContext::SetFP(uint64_t fp) {
197 uint32_t reg = ConvertRegisterKindToRegisterNumber(eRegisterKindGeneric,
198 LLDB_REGNUM_GENERIC_FP);
199 return WriteRegisterFromUnsigned(reg, fp);
200 }
201
GetReturnAddress(uint64_t fail_value)202 uint64_t RegisterContext::GetReturnAddress(uint64_t fail_value) {
203 uint32_t reg = ConvertRegisterKindToRegisterNumber(eRegisterKindGeneric,
204 LLDB_REGNUM_GENERIC_RA);
205 return ReadRegisterAsUnsigned(reg, fail_value);
206 }
207
GetFlags(uint64_t fail_value)208 uint64_t RegisterContext::GetFlags(uint64_t fail_value) {
209 uint32_t reg = ConvertRegisterKindToRegisterNumber(eRegisterKindGeneric,
210 LLDB_REGNUM_GENERIC_FLAGS);
211 return ReadRegisterAsUnsigned(reg, fail_value);
212 }
213
ReadRegisterAsUnsigned(uint32_t reg,uint64_t fail_value)214 uint64_t RegisterContext::ReadRegisterAsUnsigned(uint32_t reg,
215 uint64_t fail_value) {
216 if (reg != LLDB_INVALID_REGNUM)
217 return ReadRegisterAsUnsigned(GetRegisterInfoAtIndex(reg), fail_value);
218 return fail_value;
219 }
220
ReadRegisterAsUnsigned(const RegisterInfo * reg_info,uint64_t fail_value)221 uint64_t RegisterContext::ReadRegisterAsUnsigned(const RegisterInfo *reg_info,
222 uint64_t fail_value) {
223 if (reg_info) {
224 RegisterValue value;
225 if (ReadRegister(reg_info, value))
226 return value.GetAsUInt64();
227 }
228 return fail_value;
229 }
230
WriteRegisterFromUnsigned(uint32_t reg,uint64_t uval)231 bool RegisterContext::WriteRegisterFromUnsigned(uint32_t reg, uint64_t uval) {
232 if (reg == LLDB_INVALID_REGNUM)
233 return false;
234 return WriteRegisterFromUnsigned(GetRegisterInfoAtIndex(reg), uval);
235 }
236
WriteRegisterFromUnsigned(const RegisterInfo * reg_info,uint64_t uval)237 bool RegisterContext::WriteRegisterFromUnsigned(const RegisterInfo *reg_info,
238 uint64_t uval) {
239 if (reg_info) {
240 RegisterValue value;
241 if (value.SetUInt(uval, reg_info->byte_size))
242 return WriteRegister(reg_info, value);
243 }
244 return false;
245 }
246
CopyFromRegisterContext(lldb::RegisterContextSP context)247 bool RegisterContext::CopyFromRegisterContext(lldb::RegisterContextSP context) {
248 uint32_t num_register_sets = context->GetRegisterSetCount();
249 // We don't know that two threads have the same register context, so require
250 // the threads to be the same.
251 if (context->GetThreadID() != GetThreadID())
252 return false;
253
254 if (num_register_sets != GetRegisterSetCount())
255 return false;
256
257 RegisterContextSP frame_zero_context = m_thread.GetRegisterContext();
258
259 for (uint32_t set_idx = 0; set_idx < num_register_sets; ++set_idx) {
260 const RegisterSet *const reg_set = GetRegisterSet(set_idx);
261
262 const uint32_t num_registers = reg_set->num_registers;
263 for (uint32_t reg_idx = 0; reg_idx < num_registers; ++reg_idx) {
264 const uint32_t reg = reg_set->registers[reg_idx];
265 const RegisterInfo *reg_info = GetRegisterInfoAtIndex(reg);
266 if (!reg_info || reg_info->value_regs)
267 continue;
268 RegisterValue reg_value;
269
270 // If we can reconstruct the register from the frame we are copying from,
271 // then do so, otherwise use the value from frame 0.
272 if (context->ReadRegister(reg_info, reg_value)) {
273 WriteRegister(reg_info, reg_value);
274 } else if (frame_zero_context->ReadRegister(reg_info, reg_value)) {
275 WriteRegister(reg_info, reg_value);
276 }
277 }
278 }
279 return true;
280 }
281
GetThreadID() const282 lldb::tid_t RegisterContext::GetThreadID() const { return m_thread.GetID(); }
283
NumSupportedHardwareBreakpoints()284 uint32_t RegisterContext::NumSupportedHardwareBreakpoints() { return 0; }
285
SetHardwareBreakpoint(lldb::addr_t addr,size_t size)286 uint32_t RegisterContext::SetHardwareBreakpoint(lldb::addr_t addr,
287 size_t size) {
288 return LLDB_INVALID_INDEX32;
289 }
290
291 // Used when parsing DWARF and EH frame information and any other object file
292 // sections that contain register numbers in them.
293 uint32_t
ConvertRegisterKindToRegisterNumber(lldb::RegisterKind kind,uint32_t num)294 RegisterContext::ConvertRegisterKindToRegisterNumber(lldb::RegisterKind kind,
295 uint32_t num) {
296 const uint32_t num_regs = GetRegisterCount();
297
298 assert(kind < kNumRegisterKinds);
299 for (uint32_t reg_idx = 0; reg_idx < num_regs; ++reg_idx) {
300 const RegisterInfo *reg_info = GetRegisterInfoAtIndex(reg_idx);
301
302 if (reg_info->kinds[kind] == num)
303 return reg_idx;
304 }
305
306 return LLDB_INVALID_REGNUM;
307 }
308
ClearHardwareBreakpoint(uint32_t hw_idx)309 bool RegisterContext::ClearHardwareBreakpoint(uint32_t hw_idx) { return false; }
310
NumSupportedHardwareWatchpoints()311 uint32_t RegisterContext::NumSupportedHardwareWatchpoints() { return 0; }
312
SetHardwareWatchpoint(lldb::addr_t addr,size_t size,bool read,bool write)313 uint32_t RegisterContext::SetHardwareWatchpoint(lldb::addr_t addr, size_t size,
314 bool read, bool write) {
315 return LLDB_INVALID_INDEX32;
316 }
317
ClearHardwareWatchpoint(uint32_t hw_index)318 bool RegisterContext::ClearHardwareWatchpoint(uint32_t hw_index) {
319 return false;
320 }
321
HardwareSingleStep(bool enable)322 bool RegisterContext::HardwareSingleStep(bool enable) { return false; }
323
ReadRegisterValueFromMemory(const RegisterInfo * reg_info,lldb::addr_t src_addr,uint32_t src_len,RegisterValue & reg_value)324 Status RegisterContext::ReadRegisterValueFromMemory(
325 const RegisterInfo *reg_info, lldb::addr_t src_addr, uint32_t src_len,
326 RegisterValue ®_value) {
327 Status error;
328 if (reg_info == nullptr) {
329 error.SetErrorString("invalid register info argument.");
330 return error;
331 }
332
333 // Moving from addr into a register
334 //
335 // Case 1: src_len == dst_len
336 //
337 // |AABBCCDD| Address contents
338 // |AABBCCDD| Register contents
339 //
340 // Case 2: src_len > dst_len
341 //
342 // Status! (The register should always be big enough to hold the data)
343 //
344 // Case 3: src_len < dst_len
345 //
346 // |AABB| Address contents
347 // |AABB0000| Register contents [on little-endian hardware]
348 // |0000AABB| Register contents [on big-endian hardware]
349 if (src_len > RegisterValue::kMaxRegisterByteSize) {
350 error.SetErrorString("register too small to receive memory data");
351 return error;
352 }
353
354 const uint32_t dst_len = reg_info->byte_size;
355
356 if (src_len > dst_len) {
357 error.SetErrorStringWithFormat(
358 "%u bytes is too big to store in register %s (%u bytes)", src_len,
359 reg_info->name, dst_len);
360 return error;
361 }
362
363 ProcessSP process_sp(m_thread.GetProcess());
364 if (process_sp) {
365 uint8_t src[RegisterValue::kMaxRegisterByteSize];
366
367 // Read the memory
368 const uint32_t bytes_read =
369 process_sp->ReadMemory(src_addr, src, src_len, error);
370
371 // Make sure the memory read succeeded...
372 if (bytes_read != src_len) {
373 if (error.Success()) {
374 // This might happen if we read _some_ bytes but not all
375 error.SetErrorStringWithFormat("read %u of %u bytes", bytes_read,
376 src_len);
377 }
378 return error;
379 }
380
381 // We now have a memory buffer that contains the part or all of the
382 // register value. Set the register value using this memory data.
383 // TODO: we might need to add a parameter to this function in case the byte
384 // order of the memory data doesn't match the process. For now we are
385 // assuming they are the same.
386 reg_value.SetFromMemoryData(reg_info, src, src_len,
387 process_sp->GetByteOrder(), error);
388 } else
389 error.SetErrorString("invalid process");
390
391 return error;
392 }
393
WriteRegisterValueToMemory(const RegisterInfo * reg_info,lldb::addr_t dst_addr,uint32_t dst_len,const RegisterValue & reg_value)394 Status RegisterContext::WriteRegisterValueToMemory(
395 const RegisterInfo *reg_info, lldb::addr_t dst_addr, uint32_t dst_len,
396 const RegisterValue ®_value) {
397 uint8_t dst[RegisterValue::kMaxRegisterByteSize];
398
399 Status error;
400
401 ProcessSP process_sp(m_thread.GetProcess());
402 if (process_sp) {
403
404 // TODO: we might need to add a parameter to this function in case the byte
405 // order of the memory data doesn't match the process. For now we are
406 // assuming they are the same.
407
408 const uint32_t bytes_copied = reg_value.GetAsMemoryData(
409 reg_info, dst, dst_len, process_sp->GetByteOrder(), error);
410
411 if (error.Success()) {
412 if (bytes_copied == 0) {
413 error.SetErrorString("byte copy failed.");
414 } else {
415 const uint32_t bytes_written =
416 process_sp->WriteMemory(dst_addr, dst, bytes_copied, error);
417 if (bytes_written != bytes_copied) {
418 if (error.Success()) {
419 // This might happen if we read _some_ bytes but not all
420 error.SetErrorStringWithFormat("only wrote %u of %u bytes",
421 bytes_written, bytes_copied);
422 }
423 }
424 }
425 }
426 } else
427 error.SetErrorString("invalid process");
428
429 return error;
430 }
431
GetByteOrder()432 lldb::ByteOrder RegisterContext::GetByteOrder() {
433 // Get the target process whose privileged thread was used for the register
434 // read.
435 lldb::ByteOrder byte_order = lldb::eByteOrderInvalid;
436 lldb_private::Process *process = CalculateProcess().get();
437
438 if (process)
439 byte_order = process->GetByteOrder();
440 return byte_order;
441 }
442
ReadAllRegisterValues(lldb_private::RegisterCheckpoint & reg_checkpoint)443 bool RegisterContext::ReadAllRegisterValues(
444 lldb_private::RegisterCheckpoint ®_checkpoint) {
445 return ReadAllRegisterValues(reg_checkpoint.GetData());
446 }
447
WriteAllRegisterValues(const lldb_private::RegisterCheckpoint & reg_checkpoint)448 bool RegisterContext::WriteAllRegisterValues(
449 const lldb_private::RegisterCheckpoint ®_checkpoint) {
450 return WriteAllRegisterValues(reg_checkpoint.GetData());
451 }
452
CalculateTarget()453 TargetSP RegisterContext::CalculateTarget() {
454 return m_thread.CalculateTarget();
455 }
456
CalculateProcess()457 ProcessSP RegisterContext::CalculateProcess() {
458 return m_thread.CalculateProcess();
459 }
460
CalculateThread()461 ThreadSP RegisterContext::CalculateThread() {
462 return m_thread.shared_from_this();
463 }
464
CalculateStackFrame()465 StackFrameSP RegisterContext::CalculateStackFrame() {
466 // Register contexts might belong to many frames if we have inlined functions
467 // inside a frame since all inlined functions share the same registers, so we
468 // can't definitively say which frame we come from...
469 return StackFrameSP();
470 }
471
CalculateExecutionContext(ExecutionContext & exe_ctx)472 void RegisterContext::CalculateExecutionContext(ExecutionContext &exe_ctx) {
473 m_thread.CalculateExecutionContext(exe_ctx);
474 }
475
ConvertBetweenRegisterKinds(lldb::RegisterKind source_rk,uint32_t source_regnum,lldb::RegisterKind target_rk,uint32_t & target_regnum)476 bool RegisterContext::ConvertBetweenRegisterKinds(lldb::RegisterKind source_rk,
477 uint32_t source_regnum,
478 lldb::RegisterKind target_rk,
479 uint32_t &target_regnum) {
480 const uint32_t num_registers = GetRegisterCount();
481 for (uint32_t reg = 0; reg < num_registers; ++reg) {
482 const RegisterInfo *reg_info = GetRegisterInfoAtIndex(reg);
483
484 if (reg_info->kinds[source_rk] == source_regnum) {
485 target_regnum = reg_info->kinds[target_rk];
486 return (target_regnum != LLDB_INVALID_REGNUM);
487 }
488 }
489 return false;
490 }
491