xref: /iperf/src/iperf_api.c (revision e919e8c2)
1 /*
2  * iperf, Copyright (c) 2014-2021, The Regents of the University of
3  * California, through Lawrence Berkeley National Laboratory (subject
4  * to receipt of any required approvals from the U.S. Dept. of
5  * Energy).  All rights reserved.
6  *
7  * If you have questions about your rights to use or distribute this
8  * software, please contact Berkeley Lab's Technology Transfer
9  * Department at [email protected].
10  *
11  * NOTICE.  This software is owned by the U.S. Department of Energy.
12  * As such, the U.S. Government has been granted for itself and others
13  * acting on its behalf a paid-up, nonexclusive, irrevocable,
14  * worldwide license in the Software to reproduce, prepare derivative
15  * works, and perform publicly and display publicly.  Beginning five
16  * (5) years after the date permission to assert copyright is obtained
17  * from the U.S. Department of Energy, and subject to any subsequent
18  * five (5) year renewals, the U.S. Government is granted for itself
19  * and others acting on its behalf a paid-up, nonexclusive,
20  * irrevocable, worldwide license in the Software to reproduce,
21  * prepare derivative works, distribute copies to the public, perform
22  * publicly and display publicly, and to permit others to do so.
23  *
24  * This code is distributed under a BSD style license, see the LICENSE file
25  * for complete information.
26  */
27 #ifndef _GNU_SOURCE
28 # define _GNU_SOURCE
29 #endif
30 #define __USE_GNU
31 
32 #include "iperf_config.h"
33 
34 #include <stdio.h>
35 #include <stdlib.h>
36 #include <string.h>
37 #include <time.h>
38 #include <getopt.h>
39 #include <errno.h>
40 #include <signal.h>
41 #include <unistd.h>
42 #include <assert.h>
43 #include <fcntl.h>
44 #include <sys/socket.h>
45 #include <sys/types.h>
46 #include <netinet/in.h>
47 #include <arpa/inet.h>
48 #include <netdb.h>
49 #ifdef HAVE_STDINT_H
50 #include <stdint.h>
51 #endif
52 #include <sys/time.h>
53 #include <sys/resource.h>
54 #include <sys/mman.h>
55 #include <sys/stat.h>
56 #include <sched.h>
57 #include <setjmp.h>
58 #include <stdarg.h>
59 #include <math.h>
60 
61 #if defined(HAVE_CPUSET_SETAFFINITY)
62 #include <sys/param.h>
63 #include <sys/cpuset.h>
64 #endif /* HAVE_CPUSET_SETAFFINITY */
65 
66 #if defined(__CYGWIN__) || defined(_WIN32) || defined(_WIN64) || defined(__WINDOWS__)
67 #define CPU_SETSIZE __CPU_SETSIZE
68 #endif /* __CYGWIN__, _WIN32, _WIN64, __WINDOWS__ */
69 
70 #if defined(HAVE_SETPROCESSAFFINITYMASK)
71 #include <Windows.h>
72 #endif /* HAVE_SETPROCESSAFFINITYMASK */
73 
74 #include "net.h"
75 #include "iperf.h"
76 #include "iperf_api.h"
77 #include "iperf_udp.h"
78 #include "iperf_tcp.h"
79 #if defined(HAVE_SCTP_H)
80 #include "iperf_sctp.h"
81 #endif /* HAVE_SCTP_H */
82 #include "timer.h"
83 
84 #include "cjson.h"
85 #include "units.h"
86 #include "iperf_util.h"
87 #include "iperf_locale.h"
88 #include "version.h"
89 #if defined(HAVE_SSL)
90 #include <openssl/bio.h>
91 #include <openssl/err.h>
92 #include "iperf_auth.h"
93 #endif /* HAVE_SSL */
94 
95 /* Forwards. */
96 static int send_parameters(struct iperf_test *test);
97 static int get_parameters(struct iperf_test *test);
98 static int send_results(struct iperf_test *test);
99 static int get_results(struct iperf_test *test);
100 static int diskfile_send(struct iperf_stream *sp);
101 static int diskfile_recv(struct iperf_stream *sp);
102 static int JSON_write(int fd, cJSON *json);
103 static void print_interval_results(struct iperf_test *test, struct iperf_stream *sp, cJSON *json_interval_streams);
104 static cJSON *JSON_read(int fd);
105 
106 
107 /*************************** Print usage functions ****************************/
108 
109 void
110 usage()
111 {
112     fputs(usage_shortstr, stderr);
113 }
114 
115 
116 void
117 usage_long(FILE *f)
118 {
119     fprintf(f, usage_longstr, DEFAULT_NO_MSG_RCVD_TIMEOUT, UDP_RATE / (1024*1024), DEFAULT_PACING_TIMER, DURATION, DEFAULT_TCP_BLKSIZE / 1024, DEFAULT_UDP_BLKSIZE);
120 }
121 
122 
123 void warning(const char *str)
124 {
125     fprintf(stderr, "warning: %s\n", str);
126 }
127 
128 
129 /************** Getter routines for some fields inside iperf_test *************/
130 
131 int
132 iperf_get_verbose(struct iperf_test *ipt)
133 {
134     return ipt->verbose;
135 }
136 
137 int
138 iperf_get_control_socket(struct iperf_test *ipt)
139 {
140     return ipt->ctrl_sck;
141 }
142 
143 int
144 iperf_get_control_socket_mss(struct iperf_test *ipt)
145 {
146     return ipt->ctrl_sck_mss;
147 }
148 
149 int
150 iperf_get_test_omit(struct iperf_test *ipt)
151 {
152     return ipt->omit;
153 }
154 
155 int
156 iperf_get_test_duration(struct iperf_test *ipt)
157 {
158     return ipt->duration;
159 }
160 
161 uint64_t
162 iperf_get_test_rate(struct iperf_test *ipt)
163 {
164     return ipt->settings->rate;
165 }
166 
167 uint64_t
168 iperf_get_test_bitrate_limit(struct iperf_test *ipt)
169 {
170     return ipt->settings->bitrate_limit;
171 }
172 
173 double
174 iperf_get_test_bitrate_limit_interval(struct iperf_test *ipt)
175 {
176     return ipt->settings->bitrate_limit_interval;
177 }
178 
179 int
180 iperf_get_test_bitrate_limit_stats_per_interval(struct iperf_test *ipt)
181 {
182     return ipt->settings->bitrate_limit_stats_per_interval;
183 }
184 
185 uint64_t
186 iperf_get_test_fqrate(struct iperf_test *ipt)
187 {
188     return ipt->settings->fqrate;
189 }
190 
191 int
192 iperf_get_test_pacing_timer(struct iperf_test *ipt)
193 {
194     return ipt->settings->pacing_timer;
195 }
196 
197 uint64_t
198 iperf_get_test_bytes(struct iperf_test *ipt)
199 {
200     return (uint64_t) ipt->settings->bytes;
201 }
202 
203 uint64_t
204 iperf_get_test_blocks(struct iperf_test *ipt)
205 {
206     return (uint64_t) ipt->settings->blocks;
207 }
208 
209 int
210 iperf_get_test_burst(struct iperf_test *ipt)
211 {
212     return ipt->settings->burst;
213 }
214 
215 char
216 iperf_get_test_role(struct iperf_test *ipt)
217 {
218     return ipt->role;
219 }
220 
221 int
222 iperf_get_test_reverse(struct iperf_test *ipt)
223 {
224     return ipt->reverse;
225 }
226 
227 int
228 iperf_get_test_blksize(struct iperf_test *ipt)
229 {
230     return ipt->settings->blksize;
231 }
232 
233 FILE *
234 iperf_get_test_outfile (struct iperf_test *ipt)
235 {
236     return ipt->outfile;
237 }
238 
239 int
240 iperf_get_test_socket_bufsize(struct iperf_test *ipt)
241 {
242     return ipt->settings->socket_bufsize;
243 }
244 
245 double
246 iperf_get_test_reporter_interval(struct iperf_test *ipt)
247 {
248     return ipt->reporter_interval;
249 }
250 
251 double
252 iperf_get_test_stats_interval(struct iperf_test *ipt)
253 {
254     return ipt->stats_interval;
255 }
256 
257 int
258 iperf_get_test_num_streams(struct iperf_test *ipt)
259 {
260     return ipt->num_streams;
261 }
262 
263 int
264 iperf_get_test_timestamps(struct iperf_test *ipt)
265 {
266     return ipt->timestamps;
267 }
268 
269 const char *
270 iperf_get_test_timestamp_format(struct iperf_test *ipt)
271 {
272     return ipt->timestamp_format;
273 }
274 
275 int
276 iperf_get_test_repeating_payload(struct iperf_test *ipt)
277 {
278     return ipt->repeating_payload;
279 }
280 
281 int
282 iperf_get_test_server_port(struct iperf_test *ipt)
283 {
284     return ipt->server_port;
285 }
286 
287 char*
288 iperf_get_test_server_hostname(struct iperf_test *ipt)
289 {
290     return ipt->server_hostname;
291 }
292 
293 char*
294 iperf_get_test_template(struct iperf_test *ipt)
295 {
296     return ipt->tmp_template;
297 }
298 
299 int
300 iperf_get_test_protocol_id(struct iperf_test *ipt)
301 {
302     return ipt->protocol->id;
303 }
304 
305 int
306 iperf_get_test_json_output(struct iperf_test *ipt)
307 {
308     return ipt->json_output;
309 }
310 
311 char *
312 iperf_get_test_json_output_string(struct iperf_test *ipt)
313 {
314     return ipt->json_output_string;
315 }
316 
317 int
318 iperf_get_test_zerocopy(struct iperf_test *ipt)
319 {
320     return ipt->zerocopy;
321 }
322 
323 int
324 iperf_get_test_get_server_output(struct iperf_test *ipt)
325 {
326     return ipt->get_server_output;
327 }
328 
329 char
330 iperf_get_test_unit_format(struct iperf_test *ipt)
331 {
332     return ipt->settings->unit_format;
333 }
334 
335 char *
336 iperf_get_test_bind_address(struct iperf_test *ipt)
337 {
338     return ipt->bind_address;
339 }
340 
341 char *
342 iperf_get_test_bind_dev(struct iperf_test *ipt)
343 {
344     return ipt->bind_dev;
345 }
346 
347 int
348 iperf_get_test_udp_counters_64bit(struct iperf_test *ipt)
349 {
350     return ipt->udp_counters_64bit;
351 }
352 
353 int
354 iperf_get_test_one_off(struct iperf_test *ipt)
355 {
356     return ipt->one_off;
357 }
358 
359 int
360 iperf_get_test_tos(struct iperf_test *ipt)
361 {
362     return ipt->settings->tos;
363 }
364 
365 char *
366 iperf_get_test_extra_data(struct iperf_test *ipt)
367 {
368     return ipt->extra_data;
369 }
370 
371 static const char iperf_version[] = IPERF_VERSION;
372 char *
373 iperf_get_iperf_version(void)
374 {
375     return (char*)iperf_version;
376 }
377 
378 int
379 iperf_get_test_no_delay(struct iperf_test *ipt)
380 {
381     return ipt->no_delay;
382 }
383 
384 int
385 iperf_get_test_connect_timeout(struct iperf_test *ipt)
386 {
387     return ipt->settings->connect_timeout;
388 }
389 
390 int
391 iperf_get_test_idle_timeout(struct iperf_test *ipt)
392 {
393     return ipt->settings->idle_timeout;
394 }
395 
396 int
397 iperf_get_dont_fragment(struct iperf_test *ipt)
398 {
399     return ipt->settings->dont_fragment;
400 }
401 
402 struct iperf_time*
403 iperf_get_test_rcv_timeout(struct iperf_test *ipt)
404 {
405     return &ipt->settings->rcv_timeout;
406 }
407 
408 char*
409 iperf_get_test_congestion_control(struct iperf_test* ipt)
410 {
411     return ipt->congestion;
412 }
413 
414 /************** Setter routines for some fields inside iperf_test *************/
415 
416 void
417 iperf_set_verbose(struct iperf_test *ipt, int verbose)
418 {
419     ipt->verbose = verbose;
420 }
421 
422 void
423 iperf_set_control_socket(struct iperf_test *ipt, int ctrl_sck)
424 {
425     ipt->ctrl_sck = ctrl_sck;
426 }
427 
428 void
429 iperf_set_test_omit(struct iperf_test *ipt, int omit)
430 {
431     ipt->omit = omit;
432 }
433 
434 void
435 iperf_set_test_duration(struct iperf_test *ipt, int duration)
436 {
437     ipt->duration = duration;
438 }
439 
440 void
441 iperf_set_test_reporter_interval(struct iperf_test *ipt, double reporter_interval)
442 {
443     ipt->reporter_interval = reporter_interval;
444 }
445 
446 void
447 iperf_set_test_stats_interval(struct iperf_test *ipt, double stats_interval)
448 {
449     ipt->stats_interval = stats_interval;
450 }
451 
452 void
453 iperf_set_test_state(struct iperf_test *ipt, signed char state)
454 {
455     ipt->state = state;
456 }
457 
458 void
459 iperf_set_test_blksize(struct iperf_test *ipt, int blksize)
460 {
461     ipt->settings->blksize = blksize;
462 }
463 
464 void
465 iperf_set_test_logfile(struct iperf_test *ipt, const char *logfile)
466 {
467     ipt->logfile = strdup(logfile);
468 }
469 
470 void
471 iperf_set_test_rate(struct iperf_test *ipt, uint64_t rate)
472 {
473     ipt->settings->rate = rate;
474 }
475 
476 void
477 iperf_set_test_bitrate_limit_maximum(struct iperf_test *ipt, uint64_t total_rate)
478 {
479     ipt->settings->bitrate_limit = total_rate;
480 }
481 
482 void
483 iperf_set_test_bitrate_limit_interval(struct iperf_test *ipt, uint64_t bitrate_limit_interval)
484 {
485     ipt->settings->bitrate_limit_interval = bitrate_limit_interval;
486 }
487 
488 void
489 iperf_set_test_bitrate_limit_stats_per_interval(struct iperf_test *ipt, uint64_t bitrate_limit_stats_per_interval)
490 {
491     ipt->settings->bitrate_limit_stats_per_interval = bitrate_limit_stats_per_interval;
492 }
493 
494 void
495 iperf_set_test_fqrate(struct iperf_test *ipt, uint64_t fqrate)
496 {
497     ipt->settings->fqrate = fqrate;
498 }
499 
500 void
501 iperf_set_test_pacing_timer(struct iperf_test *ipt, int pacing_timer)
502 {
503     ipt->settings->pacing_timer = pacing_timer;
504 }
505 
506 void
507 iperf_set_test_bytes(struct iperf_test *ipt, uint64_t bytes)
508 {
509     ipt->settings->bytes = (iperf_size_t) bytes;
510 }
511 
512 void
513 iperf_set_test_blocks(struct iperf_test *ipt, uint64_t blocks)
514 {
515     ipt->settings->blocks = (iperf_size_t) blocks;
516 }
517 
518 void
519 iperf_set_test_burst(struct iperf_test *ipt, int burst)
520 {
521     ipt->settings->burst = burst;
522 }
523 
524 void
525 iperf_set_test_server_port(struct iperf_test *ipt, int srv_port)
526 {
527     ipt->server_port = srv_port;
528 }
529 
530 void
531 iperf_set_test_socket_bufsize(struct iperf_test *ipt, int socket_bufsize)
532 {
533     ipt->settings->socket_bufsize = socket_bufsize;
534 }
535 
536 void
537 iperf_set_test_num_streams(struct iperf_test *ipt, int num_streams)
538 {
539     ipt->num_streams = num_streams;
540 }
541 
542 void
543 iperf_set_test_repeating_payload(struct iperf_test *ipt, int repeating_payload)
544 {
545     ipt->repeating_payload = repeating_payload;
546 }
547 
548 void
549 iperf_set_test_timestamps(struct iperf_test *ipt, int timestamps)
550 {
551     ipt->timestamps = timestamps;
552 }
553 
554 void
555 iperf_set_test_timestamp_format(struct iperf_test *ipt, const char *tf)
556 {
557     ipt->timestamp_format = strdup(tf);
558 }
559 
560 static void
561 check_sender_has_retransmits(struct iperf_test *ipt)
562 {
563     if (ipt->mode != RECEIVER && ipt->protocol->id == Ptcp && has_tcpinfo_retransmits())
564 	ipt->sender_has_retransmits = 1;
565     else
566 	ipt->sender_has_retransmits = 0;
567 }
568 
569 void
570 iperf_set_test_role(struct iperf_test *ipt, char role)
571 {
572     ipt->role = role;
573     if (!ipt->reverse) {
574         if (ipt->bidirectional)
575             ipt->mode = BIDIRECTIONAL;
576         else if (role == 'c')
577             ipt->mode = SENDER;
578         else if (role == 's')
579             ipt->mode = RECEIVER;
580     } else {
581         if (role == 'c')
582             ipt->mode = RECEIVER;
583         else if (role == 's')
584             ipt->mode = SENDER;
585     }
586     check_sender_has_retransmits(ipt);
587 }
588 
589 void
590 iperf_set_test_server_hostname(struct iperf_test *ipt, const char *server_hostname)
591 {
592     ipt->server_hostname = strdup(server_hostname);
593 }
594 
595 void
596 iperf_set_test_template(struct iperf_test *ipt, const char *tmp_template)
597 {
598     ipt->tmp_template = strdup(tmp_template);
599 }
600 
601 void
602 iperf_set_test_reverse(struct iperf_test *ipt, int reverse)
603 {
604     ipt->reverse = reverse;
605     if (!ipt->reverse) {
606         if (ipt->role == 'c')
607             ipt->mode = SENDER;
608         else if (ipt->role == 's')
609             ipt->mode = RECEIVER;
610     } else {
611         if (ipt->role == 'c')
612             ipt->mode = RECEIVER;
613         else if (ipt->role == 's')
614             ipt->mode = SENDER;
615     }
616     check_sender_has_retransmits(ipt);
617 }
618 
619 void
620 iperf_set_test_json_output(struct iperf_test *ipt, int json_output)
621 {
622     ipt->json_output = json_output;
623 }
624 
625 int
626 iperf_has_zerocopy( void )
627 {
628     return has_sendfile();
629 }
630 
631 void
632 iperf_set_test_zerocopy(struct iperf_test *ipt, int zerocopy)
633 {
634     ipt->zerocopy = (zerocopy && has_sendfile());
635 }
636 
637 void
638 iperf_set_test_get_server_output(struct iperf_test *ipt, int get_server_output)
639 {
640     ipt->get_server_output = get_server_output;
641 }
642 
643 void
644 iperf_set_test_unit_format(struct iperf_test *ipt, char unit_format)
645 {
646     ipt->settings->unit_format = unit_format;
647 }
648 
649 #if defined(HAVE_SSL)
650 void
651 iperf_set_test_client_username(struct iperf_test *ipt, const char *client_username)
652 {
653     ipt->settings->client_username = strdup(client_username);
654 }
655 
656 void
657 iperf_set_test_client_password(struct iperf_test *ipt, const char *client_password)
658 {
659     ipt->settings->client_password = strdup(client_password);
660 }
661 
662 void
663 iperf_set_test_client_rsa_pubkey(struct iperf_test *ipt, const char *client_rsa_pubkey_base64)
664 {
665     ipt->settings->client_rsa_pubkey = load_pubkey_from_base64(client_rsa_pubkey_base64);
666 }
667 
668 void
669 iperf_set_test_server_authorized_users(struct iperf_test *ipt, const char *server_authorized_users)
670 {
671     ipt->server_authorized_users = strdup(server_authorized_users);
672 }
673 
674 void
675 iperf_set_test_server_skew_threshold(struct iperf_test *ipt, int server_skew_threshold)
676 {
677     ipt->server_skew_threshold = server_skew_threshold;
678 }
679 
680 void
681 iperf_set_test_server_rsa_privkey(struct iperf_test *ipt, const char *server_rsa_privkey_base64)
682 {
683     ipt->server_rsa_private_key = load_privkey_from_base64(server_rsa_privkey_base64);
684 }
685 #endif // HAVE_SSL
686 
687 void
688 iperf_set_test_bind_address(struct iperf_test *ipt, const char *bnd_address)
689 {
690     ipt->bind_address = strdup(bnd_address);
691 }
692 
693 void
694 iperf_set_test_bind_dev(struct iperf_test *ipt, char *bnd_dev)
695 {
696     ipt->bind_dev = strdup(bnd_dev);
697 }
698 
699 void
700 iperf_set_test_udp_counters_64bit(struct iperf_test *ipt, int udp_counters_64bit)
701 {
702     ipt->udp_counters_64bit = udp_counters_64bit;
703 }
704 
705 void
706 iperf_set_test_one_off(struct iperf_test *ipt, int one_off)
707 {
708     ipt->one_off = one_off;
709 }
710 
711 void
712 iperf_set_test_tos(struct iperf_test *ipt, int tos)
713 {
714     ipt->settings->tos = tos;
715 }
716 
717 void
718 iperf_set_test_extra_data(struct iperf_test *ipt, const char *dat)
719 {
720     ipt->extra_data = strdup(dat);
721 }
722 
723 void
724 iperf_set_test_bidirectional(struct iperf_test* ipt, int bidirectional)
725 {
726     ipt->bidirectional = bidirectional;
727     if (bidirectional)
728         ipt->mode = BIDIRECTIONAL;
729     else
730         iperf_set_test_reverse(ipt, ipt->reverse);
731 }
732 
733 void
734 iperf_set_test_no_delay(struct iperf_test* ipt, int no_delay)
735 {
736     ipt->no_delay = no_delay;
737 }
738 
739 void
740 iperf_set_test_connect_timeout(struct iperf_test* ipt, int ct)
741 {
742     ipt->settings->connect_timeout = ct;
743 }
744 
745 void
746 iperf_set_test_idle_timeout(struct iperf_test* ipt, int to)
747 {
748     ipt->settings->idle_timeout = to;
749 }
750 
751 void
752 iperf_set_dont_fragment(struct iperf_test* ipt, int dnf)
753 {
754     ipt->settings->dont_fragment = dnf;
755 }
756 
757 void
758 iperf_set_test_rcv_timeout(struct iperf_test* ipt, struct iperf_time* to)
759 {
760     ipt->settings->rcv_timeout.secs = to->secs;
761     ipt->settings->rcv_timeout.usecs = to->usecs;
762 }
763 
764 void
765 iperf_set_test_congestion_control(struct iperf_test* ipt, char* cc)
766 {
767     ipt->congestion = strdup(cc);
768 }
769 
770 
771 /********************** Get/set test protocol structure ***********************/
772 
773 struct protocol *
774 get_protocol(struct iperf_test *test, int prot_id)
775 {
776     struct protocol *prot;
777 
778     SLIST_FOREACH(prot, &test->protocols, protocols) {
779         if (prot->id == prot_id)
780             break;
781     }
782 
783     if (prot == NULL)
784         i_errno = IEPROTOCOL;
785 
786     return prot;
787 }
788 
789 int
790 set_protocol(struct iperf_test *test, int prot_id)
791 {
792     struct protocol *prot = NULL;
793 
794     SLIST_FOREACH(prot, &test->protocols, protocols) {
795         if (prot->id == prot_id) {
796             test->protocol = prot;
797 	    check_sender_has_retransmits(test);
798             return 0;
799         }
800     }
801 
802     i_errno = IEPROTOCOL;
803     return -1;
804 }
805 
806 
807 /************************** Iperf callback functions **************************/
808 
809 void
810 iperf_on_new_stream(struct iperf_stream *sp)
811 {
812     connect_msg(sp);
813 }
814 
815 void
816 iperf_on_test_start(struct iperf_test *test)
817 {
818     if (test->json_output) {
819 	cJSON_AddItemToObject(test->json_start, "test_start", iperf_json_printf("protocol: %s  num_streams: %d  blksize: %d  omit: %d  duration: %d  bytes: %d  blocks: %d  reverse: %d  tos: %d  target_bitrate: %d", test->protocol->name, (int64_t) test->num_streams, (int64_t) test->settings->blksize, (int64_t) test->omit, (int64_t) test->duration, (int64_t) test->settings->bytes, (int64_t) test->settings->blocks, test->reverse?(int64_t)1:(int64_t)0, (int64_t) test->settings->tos, (int64_t) test->settings->rate));
820     } else {
821 	if (test->verbose) {
822 	    if (test->settings->bytes)
823 		iperf_printf(test, test_start_bytes, test->protocol->name, test->num_streams, test->settings->blksize, test->omit, test->settings->bytes, test->settings->tos);
824 	    else if (test->settings->blocks)
825 		iperf_printf(test, test_start_blocks, test->protocol->name, test->num_streams, test->settings->blksize, test->omit, test->settings->blocks, test->settings->tos);
826 	    else
827 		iperf_printf(test, test_start_time, test->protocol->name, test->num_streams, test->settings->blksize, test->omit, test->duration, test->settings->tos);
828 	}
829     }
830 }
831 
832 /* This converts an IPv6 string address from IPv4-mapped format into regular
833 ** old IPv4 format, which is easier on the eyes of network veterans.
834 **
835 ** If the v6 address is not v4-mapped it is left alone.
836 */
837 static void
838 mapped_v4_to_regular_v4(char *str)
839 {
840     char *prefix = "::ffff:";
841     int prefix_len;
842 
843     prefix_len = strlen(prefix);
844     if (strncmp(str, prefix, prefix_len) == 0) {
845 	int str_len = strlen(str);
846 	memmove(str, str + prefix_len, str_len - prefix_len + 1);
847     }
848 }
849 
850 void
851 iperf_on_connect(struct iperf_test *test)
852 {
853     time_t now_secs;
854     const char* rfc1123_fmt = "%a, %d %b %Y %H:%M:%S %Z";
855     char now_str[100];
856     char ipr[INET6_ADDRSTRLEN];
857     int port;
858     struct sockaddr_storage sa;
859     struct sockaddr_in *sa_inP;
860     struct sockaddr_in6 *sa_in6P;
861     socklen_t len;
862 
863     now_secs = time((time_t*) 0);
864     (void) strftime(now_str, sizeof(now_str), rfc1123_fmt, gmtime(&now_secs));
865     if (test->json_output)
866 	cJSON_AddItemToObject(test->json_start, "timestamp", iperf_json_printf("time: %s  timesecs: %d", now_str, (int64_t) now_secs));
867     else if (test->verbose)
868 	iperf_printf(test, report_time, now_str);
869 
870     if (test->role == 'c') {
871 	if (test->json_output)
872 	    cJSON_AddItemToObject(test->json_start, "connecting_to", iperf_json_printf("host: %s  port: %d", test->server_hostname, (int64_t) test->server_port));
873 	else {
874 	    iperf_printf(test, report_connecting, test->server_hostname, test->server_port);
875 	    if (test->reverse)
876 		iperf_printf(test, report_reverse, test->server_hostname);
877 	}
878     } else {
879         len = sizeof(sa);
880         getpeername(test->ctrl_sck, (struct sockaddr *) &sa, &len);
881         if (getsockdomain(test->ctrl_sck) == AF_INET) {
882 	    sa_inP = (struct sockaddr_in *) &sa;
883             inet_ntop(AF_INET, &sa_inP->sin_addr, ipr, sizeof(ipr));
884 	    port = ntohs(sa_inP->sin_port);
885         } else {
886 	    sa_in6P = (struct sockaddr_in6 *) &sa;
887             inet_ntop(AF_INET6, &sa_in6P->sin6_addr, ipr, sizeof(ipr));
888 	    port = ntohs(sa_in6P->sin6_port);
889         }
890 	mapped_v4_to_regular_v4(ipr);
891 	if (test->json_output)
892 	    cJSON_AddItemToObject(test->json_start, "accepted_connection", iperf_json_printf("host: %s  port: %d", ipr, (int64_t) port));
893 	else
894 	    iperf_printf(test, report_accepted, ipr, port);
895     }
896     if (test->json_output) {
897 	cJSON_AddStringToObject(test->json_start, "cookie", test->cookie);
898         if (test->protocol->id == SOCK_STREAM) {
899 	    if (test->settings->mss)
900 		cJSON_AddNumberToObject(test->json_start, "tcp_mss", test->settings->mss);
901 	    else {
902 		cJSON_AddNumberToObject(test->json_start, "tcp_mss_default", test->ctrl_sck_mss);
903 	    }
904         }
905         cJSON_AddNumberToObject(test->json_start, "target_bitrate", test->settings->rate);
906     } else if (test->verbose) {
907         iperf_printf(test, report_cookie, test->cookie);
908         if (test->protocol->id == SOCK_STREAM) {
909             if (test->settings->mss)
910                 iperf_printf(test, "      TCP MSS: %d\n", test->settings->mss);
911             else {
912                 iperf_printf(test, "      TCP MSS: %d (default)\n", test->ctrl_sck_mss);
913             }
914         }
915         if (test->settings->rate)
916             iperf_printf(test, "      Target Bitrate: %"PRIu64"\n", test->settings->rate);
917     }
918 }
919 
920 void
921 iperf_on_test_finish(struct iperf_test *test)
922 {
923 }
924 
925 
926 /******************************************************************************/
927 
928 int
929 iperf_parse_arguments(struct iperf_test *test, int argc, char **argv)
930 {
931     static struct option longopts[] =
932     {
933         {"port", required_argument, NULL, 'p'},
934         {"format", required_argument, NULL, 'f'},
935         {"interval", required_argument, NULL, 'i'},
936         {"daemon", no_argument, NULL, 'D'},
937         {"one-off", no_argument, NULL, '1'},
938         {"verbose", no_argument, NULL, 'V'},
939         {"json", no_argument, NULL, 'J'},
940         {"version", no_argument, NULL, 'v'},
941         {"server", no_argument, NULL, 's'},
942         {"client", required_argument, NULL, 'c'},
943         {"udp", no_argument, NULL, 'u'},
944         {"bitrate", required_argument, NULL, 'b'},
945         {"bandwidth", required_argument, NULL, 'b'},
946 	{"server-bitrate-limit", required_argument, NULL, OPT_SERVER_BITRATE_LIMIT},
947         {"time", required_argument, NULL, 't'},
948         {"bytes", required_argument, NULL, 'n'},
949         {"blockcount", required_argument, NULL, 'k'},
950         {"length", required_argument, NULL, 'l'},
951         {"parallel", required_argument, NULL, 'P'},
952         {"reverse", no_argument, NULL, 'R'},
953         {"bidir", no_argument, NULL, OPT_BIDIRECTIONAL},
954         {"window", required_argument, NULL, 'w'},
955         {"bind", required_argument, NULL, 'B'},
956 #if defined(HAVE_SO_BINDTODEVICE)
957         {"bind-dev", required_argument, NULL, OPT_BIND_DEV},
958 #endif /* HAVE_SO_BINDTODEVICE */
959         {"cport", required_argument, NULL, OPT_CLIENT_PORT},
960         {"set-mss", required_argument, NULL, 'M'},
961         {"no-delay", no_argument, NULL, 'N'},
962         {"version4", no_argument, NULL, '4'},
963         {"version6", no_argument, NULL, '6'},
964         {"tos", required_argument, NULL, 'S'},
965         {"dscp", required_argument, NULL, OPT_DSCP},
966 	{"extra-data", required_argument, NULL, OPT_EXTRA_DATA},
967 #if defined(HAVE_FLOWLABEL)
968         {"flowlabel", required_argument, NULL, 'L'},
969 #endif /* HAVE_FLOWLABEL */
970         {"zerocopy", no_argument, NULL, 'Z'},
971         {"omit", required_argument, NULL, 'O'},
972         {"file", required_argument, NULL, 'F'},
973         {"repeating-payload", no_argument, NULL, OPT_REPEATING_PAYLOAD},
974         {"timestamps", optional_argument, NULL, OPT_TIMESTAMPS},
975 #if defined(HAVE_CPU_AFFINITY)
976         {"affinity", required_argument, NULL, 'A'},
977 #endif /* HAVE_CPU_AFFINITY */
978         {"title", required_argument, NULL, 'T'},
979 #if defined(HAVE_TCP_CONGESTION)
980         {"congestion", required_argument, NULL, 'C'},
981         {"linux-congestion", required_argument, NULL, 'C'},
982 #endif /* HAVE_TCP_CONGESTION */
983 #if defined(HAVE_SCTP_H)
984         {"sctp", no_argument, NULL, OPT_SCTP},
985         {"nstreams", required_argument, NULL, OPT_NUMSTREAMS},
986         {"xbind", required_argument, NULL, 'X'},
987 #endif
988 	{"pidfile", required_argument, NULL, 'I'},
989 	{"logfile", required_argument, NULL, OPT_LOGFILE},
990 	{"forceflush", no_argument, NULL, OPT_FORCEFLUSH},
991 	{"get-server-output", no_argument, NULL, OPT_GET_SERVER_OUTPUT},
992 	{"udp-counters-64bit", no_argument, NULL, OPT_UDP_COUNTERS_64BIT},
993  	{"no-fq-socket-pacing", no_argument, NULL, OPT_NO_FQ_SOCKET_PACING},
994 #if defined(HAVE_DONT_FRAGMENT)
995 	{"dont-fragment", no_argument, NULL, OPT_DONT_FRAGMENT},
996 #endif /* HAVE_DONT_FRAGMENT */
997 #if defined(HAVE_SSL)
998     {"username", required_argument, NULL, OPT_CLIENT_USERNAME},
999     {"rsa-public-key-path", required_argument, NULL, OPT_CLIENT_RSA_PUBLIC_KEY},
1000     {"rsa-private-key-path", required_argument, NULL, OPT_SERVER_RSA_PRIVATE_KEY},
1001     {"authorized-users-path", required_argument, NULL, OPT_SERVER_AUTHORIZED_USERS},
1002     {"time-skew-threshold", required_argument, NULL, OPT_SERVER_SKEW_THRESHOLD},
1003 #endif /* HAVE_SSL */
1004 	{"fq-rate", required_argument, NULL, OPT_FQ_RATE},
1005 	{"pacing-timer", required_argument, NULL, OPT_PACING_TIMER},
1006 	{"connect-timeout", required_argument, NULL, OPT_CONNECT_TIMEOUT},
1007         {"idle-timeout", required_argument, NULL, OPT_IDLE_TIMEOUT},
1008         {"rcv-timeout", required_argument, NULL, OPT_RCV_TIMEOUT},
1009         {"debug", no_argument, NULL, 'd'},
1010         {"help", no_argument, NULL, 'h'},
1011         {NULL, 0, NULL, 0}
1012     };
1013     int flag;
1014     int portno;
1015     int blksize;
1016     int server_flag, client_flag, rate_flag, duration_flag, rcv_timeout_flag;
1017     char *endptr;
1018 #if defined(HAVE_CPU_AFFINITY)
1019     char* comma;
1020 #endif /* HAVE_CPU_AFFINITY */
1021     char* slash;
1022     struct xbind_entry *xbe;
1023     double farg;
1024     int rcv_timeout_in = 0;
1025 
1026     blksize = 0;
1027     server_flag = client_flag = rate_flag = duration_flag = rcv_timeout_flag = 0;
1028 #if defined(HAVE_SSL)
1029     char *client_username = NULL, *client_rsa_public_key = NULL, *server_rsa_private_key = NULL;
1030 #endif /* HAVE_SSL */
1031 
1032     while ((flag = getopt_long(argc, argv, "p:f:i:D1VJvsc:ub:t:n:k:l:P:Rw:B:M:N46S:L:ZO:F:A:T:C:dI:hX:", longopts, NULL)) != -1) {
1033         switch (flag) {
1034             case 'p':
1035 		portno = atoi(optarg);
1036 		if (portno < 1 || portno > 65535) {
1037 		    i_errno = IEBADPORT;
1038 		    return -1;
1039 		}
1040 		test->server_port = portno;
1041                 break;
1042             case 'f':
1043 		if (!optarg) {
1044 		    i_errno = IEBADFORMAT;
1045 		    return -1;
1046 		}
1047 		test->settings->unit_format = *optarg;
1048 		if (test->settings->unit_format == 'k' ||
1049 		    test->settings->unit_format == 'K' ||
1050 		    test->settings->unit_format == 'm' ||
1051 		    test->settings->unit_format == 'M' ||
1052 		    test->settings->unit_format == 'g' ||
1053 		    test->settings->unit_format == 'G' ||
1054 		    test->settings->unit_format == 't' ||
1055 		    test->settings->unit_format == 'T') {
1056 			break;
1057 		}
1058 		else {
1059 		    i_errno = IEBADFORMAT;
1060 		    return -1;
1061 		}
1062                 break;
1063             case 'i':
1064                 /* XXX: could potentially want separate stat collection and reporting intervals,
1065                    but just set them to be the same for now */
1066                 test->stats_interval = test->reporter_interval = atof(optarg);
1067                 if ((test->stats_interval < MIN_INTERVAL || test->stats_interval > MAX_INTERVAL) && test->stats_interval != 0) {
1068                     i_errno = IEINTERVAL;
1069                     return -1;
1070                 }
1071                 break;
1072             case 'D':
1073 		test->daemon = 1;
1074 		server_flag = 1;
1075 	        break;
1076             case '1':
1077 		test->one_off = 1;
1078 		server_flag = 1;
1079 	        break;
1080             case 'V':
1081                 test->verbose = 1;
1082                 break;
1083             case 'J':
1084                 test->json_output = 1;
1085                 break;
1086             case 'v':
1087                 printf("%s (cJSON %s)\n%s\n%s\n", version, cJSON_Version(), get_system_info(),
1088 		       get_optional_features());
1089                 exit(0);
1090             case 's':
1091                 if (test->role == 'c') {
1092                     i_errno = IESERVCLIENT;
1093                     return -1;
1094                 }
1095 		iperf_set_test_role(test, 's');
1096                 break;
1097             case 'c':
1098                 if (test->role == 's') {
1099                     i_errno = IESERVCLIENT;
1100                     return -1;
1101                 }
1102 		iperf_set_test_role(test, 'c');
1103 		iperf_set_test_server_hostname(test, optarg);
1104                 break;
1105             case 'u':
1106                 set_protocol(test, Pudp);
1107 		client_flag = 1;
1108                 break;
1109             case OPT_SCTP:
1110 #if defined(HAVE_SCTP_H)
1111                 set_protocol(test, Psctp);
1112                 client_flag = 1;
1113                 break;
1114 #else /* HAVE_SCTP_H */
1115                 i_errno = IEUNIMP;
1116                 return -1;
1117 #endif /* HAVE_SCTP_H */
1118 
1119             case OPT_NUMSTREAMS:
1120 #if defined(linux) || defined(__FreeBSD__)
1121                 test->settings->num_ostreams = unit_atoi(optarg);
1122                 client_flag = 1;
1123 #else /* linux */
1124                 i_errno = IEUNIMP;
1125                 return -1;
1126 #endif /* linux */
1127             case 'b':
1128 		slash = strchr(optarg, '/');
1129 		if (slash) {
1130 		    *slash = '\0';
1131 		    ++slash;
1132 		    test->settings->burst = atoi(slash);
1133 		    if (test->settings->burst <= 0 ||
1134 		        test->settings->burst > MAX_BURST) {
1135 			i_errno = IEBURST;
1136 			return -1;
1137 		    }
1138 		}
1139                 test->settings->rate = unit_atof_rate(optarg);
1140 		rate_flag = 1;
1141 		client_flag = 1;
1142                 break;
1143             case OPT_SERVER_BITRATE_LIMIT:
1144 		slash = strchr(optarg, '/');
1145 		if (slash) {
1146 		    *slash = '\0';
1147 		    ++slash;
1148 		    test->settings->bitrate_limit_interval = atof(slash);
1149 		    if (test->settings->bitrate_limit_interval != 0 &&	/* Using same Max/Min limits as for Stats Interval */
1150 		        (test->settings->bitrate_limit_interval < MIN_INTERVAL || test->settings->bitrate_limit_interval > MAX_INTERVAL) ) {
1151 			i_errno = IETOTALINTERVAL;
1152 			return -1;
1153 		    }
1154 		}
1155 		test->settings->bitrate_limit = unit_atof_rate(optarg);
1156 		server_flag = 1;
1157 	        break;
1158             case 't':
1159                 test->duration = atoi(optarg);
1160                 if (test->duration > MAX_TIME) {
1161                     i_errno = IEDURATION;
1162                     return -1;
1163                 }
1164 		duration_flag = 1;
1165 		client_flag = 1;
1166                 break;
1167             case 'n':
1168                 test->settings->bytes = unit_atoi(optarg);
1169 		client_flag = 1;
1170                 break;
1171             case 'k':
1172                 test->settings->blocks = unit_atoi(optarg);
1173 		client_flag = 1;
1174                 break;
1175             case 'l':
1176                 blksize = unit_atoi(optarg);
1177 		client_flag = 1;
1178                 break;
1179             case 'P':
1180                 test->num_streams = atoi(optarg);
1181                 if (test->num_streams > MAX_STREAMS) {
1182                     i_errno = IENUMSTREAMS;
1183                     return -1;
1184                 }
1185 		client_flag = 1;
1186                 break;
1187             case 'R':
1188                 if (test->bidirectional) {
1189                     i_errno = IEREVERSEBIDIR;
1190                     return -1;
1191                 }
1192 		iperf_set_test_reverse(test, 1);
1193 		client_flag = 1;
1194                 break;
1195             case OPT_BIDIRECTIONAL:
1196                 if (test->reverse) {
1197                     i_errno = IEREVERSEBIDIR;
1198                     return -1;
1199                 }
1200                 iperf_set_test_bidirectional(test, 1);
1201                 client_flag = 1;
1202                 break;
1203             case 'w':
1204                 // XXX: This is a socket buffer, not specific to TCP
1205 		// Do sanity checks as double-precision floating point
1206 		// to avoid possible integer overflows.
1207                 farg = unit_atof(optarg);
1208                 if (farg > (double) MAX_TCP_BUFFER) {
1209                     i_errno = IEBUFSIZE;
1210                     return -1;
1211                 }
1212                 test->settings->socket_bufsize = (int) farg;
1213 		client_flag = 1;
1214                 break;
1215             case 'B':
1216                 test->bind_address = strdup(optarg);
1217                 break;
1218 #if defined (HAVE_SO_BINDTODEVICE)
1219             case OPT_BIND_DEV:
1220                 test->bind_dev = strdup(optarg);
1221                 break;
1222 #endif /* HAVE_SO_BINDTODEVICE */
1223             case OPT_CLIENT_PORT:
1224 		portno = atoi(optarg);
1225 		if (portno < 1 || portno > 65535) {
1226 		    i_errno = IEBADPORT;
1227 		    return -1;
1228 		}
1229                 test->bind_port = portno;
1230                 break;
1231             case 'M':
1232                 test->settings->mss = atoi(optarg);
1233                 if (test->settings->mss > MAX_MSS) {
1234                     i_errno = IEMSS;
1235                     return -1;
1236                 }
1237 		client_flag = 1;
1238                 break;
1239             case 'N':
1240                 test->no_delay = 1;
1241 		client_flag = 1;
1242                 break;
1243             case '4':
1244                 test->settings->domain = AF_INET;
1245                 break;
1246             case '6':
1247                 test->settings->domain = AF_INET6;
1248                 break;
1249             case 'S':
1250                 test->settings->tos = strtol(optarg, &endptr, 0);
1251 		if (endptr == optarg ||
1252 		    test->settings->tos < 0 ||
1253 		    test->settings->tos > 255) {
1254 		    i_errno = IEBADTOS;
1255 		    return -1;
1256 		}
1257 		client_flag = 1;
1258                 break;
1259 	    case OPT_DSCP:
1260                 test->settings->tos = parse_qos(optarg);
1261 		if(test->settings->tos < 0) {
1262 			i_errno = IEBADTOS;
1263 			return -1;
1264 		}
1265 		client_flag = 1;
1266                 break;
1267 	    case OPT_EXTRA_DATA:
1268 		test->extra_data = strdup(optarg);
1269 		client_flag = 1;
1270 	        break;
1271             case 'L':
1272 #if defined(HAVE_FLOWLABEL)
1273                 test->settings->flowlabel = strtol(optarg, &endptr, 0);
1274 		if (endptr == optarg ||
1275 		    test->settings->flowlabel < 1 || test->settings->flowlabel > 0xfffff) {
1276                     i_errno = IESETFLOW;
1277                     return -1;
1278 		}
1279 		client_flag = 1;
1280 #else /* HAVE_FLOWLABEL */
1281                 i_errno = IEUNIMP;
1282                 return -1;
1283 #endif /* HAVE_FLOWLABEL */
1284                 break;
1285             case 'X':
1286 		xbe = (struct xbind_entry *)malloc(sizeof(struct xbind_entry));
1287                 if (!xbe) {
1288 		    i_errno = IESETSCTPBINDX;
1289                     return -1;
1290                 }
1291 	        memset(xbe, 0, sizeof(*xbe));
1292                 xbe->name = strdup(optarg);
1293                 if (!xbe->name) {
1294 		    i_errno = IESETSCTPBINDX;
1295                     return -1;
1296                 }
1297 		TAILQ_INSERT_TAIL(&test->xbind_addrs, xbe, link);
1298                 break;
1299             case 'Z':
1300                 if (!has_sendfile()) {
1301                     i_errno = IENOSENDFILE;
1302                     return -1;
1303                 }
1304                 test->zerocopy = 1;
1305 		client_flag = 1;
1306                 break;
1307             case OPT_REPEATING_PAYLOAD:
1308                 test->repeating_payload = 1;
1309                 client_flag = 1;
1310                 break;
1311             case OPT_TIMESTAMPS:
1312                 iperf_set_test_timestamps(test, 1);
1313 		if (optarg) {
1314 		    iperf_set_test_timestamp_format(test, optarg);
1315 		}
1316 		else {
1317 		    iperf_set_test_timestamp_format(test, TIMESTAMP_FORMAT);
1318 		}
1319                 break;
1320             case 'O':
1321                 test->omit = atoi(optarg);
1322                 if (test->omit < 0 || test->omit > 60) {
1323                     i_errno = IEOMIT;
1324                     return -1;
1325                 }
1326 		client_flag = 1;
1327                 break;
1328             case 'F':
1329                 test->diskfile_name = optarg;
1330                 break;
1331             case OPT_IDLE_TIMEOUT:
1332                 test->settings->idle_timeout = atoi(optarg);
1333                 if (test->settings->idle_timeout < 1 || test->settings->idle_timeout > MAX_TIME) {
1334                     i_errno = IEIDLETIMEOUT;
1335                     return -1;
1336                 }
1337 		server_flag = 1;
1338 	        break;
1339             case OPT_RCV_TIMEOUT:
1340                 rcv_timeout_in = atoi(optarg);
1341                 if (rcv_timeout_in < MIN_NO_MSG_RCVD_TIMEOUT || rcv_timeout_in > MAX_TIME * SEC_TO_mS) {
1342                     i_errno = IERCVTIMEOUT;
1343                     return -1;
1344                 }
1345                 test->settings->rcv_timeout.secs = rcv_timeout_in / SEC_TO_mS;
1346                 test->settings->rcv_timeout.usecs = (rcv_timeout_in % SEC_TO_mS) * mS_TO_US;
1347                 rcv_timeout_flag = 1;
1348 	        break;
1349             case 'A':
1350 #if defined(HAVE_CPU_AFFINITY)
1351                 test->affinity = strtol(optarg, &endptr, 0);
1352                 if (endptr == optarg ||
1353 		    test->affinity < 0 || test->affinity > 1024) {
1354                     i_errno = IEAFFINITY;
1355                     return -1;
1356                 }
1357 		comma = strchr(optarg, ',');
1358 		if (comma != NULL) {
1359 		    test->server_affinity = atoi(comma+1);
1360 		    if (test->server_affinity < 0 || test->server_affinity > 1024) {
1361 			i_errno = IEAFFINITY;
1362 			return -1;
1363 		    }
1364 		    client_flag = 1;
1365 		}
1366 #else /* HAVE_CPU_AFFINITY */
1367                 i_errno = IEUNIMP;
1368                 return -1;
1369 #endif /* HAVE_CPU_AFFINITY */
1370                 break;
1371             case 'T':
1372                 test->title = strdup(optarg);
1373 		client_flag = 1;
1374                 break;
1375 	    case 'C':
1376 #if defined(HAVE_TCP_CONGESTION)
1377 		test->congestion = strdup(optarg);
1378 		client_flag = 1;
1379 #else /* HAVE_TCP_CONGESTION */
1380 		i_errno = IEUNIMP;
1381 		return -1;
1382 #endif /* HAVE_TCP_CONGESTION */
1383 		break;
1384 	    case 'd':
1385 		test->debug = 1;
1386 		break;
1387 	    case 'I':
1388 		test->pidfile = strdup(optarg);
1389 	        break;
1390 	    case OPT_LOGFILE:
1391 		test->logfile = strdup(optarg);
1392 		break;
1393 	    case OPT_FORCEFLUSH:
1394 		test->forceflush = 1;
1395 		break;
1396 	    case OPT_GET_SERVER_OUTPUT:
1397 		test->get_server_output = 1;
1398 		client_flag = 1;
1399 		break;
1400 	    case OPT_UDP_COUNTERS_64BIT:
1401 		test->udp_counters_64bit = 1;
1402 		break;
1403 	    case OPT_NO_FQ_SOCKET_PACING:
1404 #if defined(HAVE_SO_MAX_PACING_RATE)
1405 		printf("Warning:  --no-fq-socket-pacing is deprecated\n");
1406 		test->settings->fqrate = 0;
1407 		client_flag = 1;
1408 #else /* HAVE_SO_MAX_PACING_RATE */
1409 		i_errno = IEUNIMP;
1410 		return -1;
1411 #endif
1412 		break;
1413 	    case OPT_FQ_RATE:
1414 #if defined(HAVE_SO_MAX_PACING_RATE)
1415 		test->settings->fqrate = unit_atof_rate(optarg);
1416 		client_flag = 1;
1417 #else /* HAVE_SO_MAX_PACING_RATE */
1418 		i_errno = IEUNIMP;
1419 		return -1;
1420 #endif
1421 		break;
1422 #if defined(HAVE_DONT_FRAGMENT)
1423         case OPT_DONT_FRAGMENT:
1424             test->settings->dont_fragment = 1;
1425             client_flag = 1;
1426             break;
1427 #endif /* HAVE_DONT_FRAGMENT */
1428 #if defined(HAVE_SSL)
1429         case OPT_CLIENT_USERNAME:
1430             client_username = strdup(optarg);
1431             break;
1432         case OPT_CLIENT_RSA_PUBLIC_KEY:
1433             client_rsa_public_key = strdup(optarg);
1434             break;
1435         case OPT_SERVER_RSA_PRIVATE_KEY:
1436             server_rsa_private_key = strdup(optarg);
1437             break;
1438         case OPT_SERVER_AUTHORIZED_USERS:
1439             test->server_authorized_users = strdup(optarg);
1440             break;
1441         case OPT_SERVER_SKEW_THRESHOLD:
1442             test->server_skew_threshold = atoi(optarg);
1443             if(test->server_skew_threshold <= 0){
1444                 i_errno = IESKEWTHRESHOLD;
1445                 return -1;
1446             }
1447             break;
1448 #endif /* HAVE_SSL */
1449 	    case OPT_PACING_TIMER:
1450 		test->settings->pacing_timer = unit_atoi(optarg);
1451 		client_flag = 1;
1452 		break;
1453 	    case OPT_CONNECT_TIMEOUT:
1454 		test->settings->connect_timeout = unit_atoi(optarg);
1455 		client_flag = 1;
1456 		break;
1457 	    case 'h':
1458 		usage_long(stdout);
1459 		exit(0);
1460             default:
1461                 usage_long(stderr);
1462                 exit(1);
1463         }
1464     }
1465 
1466     /* Check flag / role compatibility. */
1467     if (test->role == 'c' && server_flag) {
1468         i_errno = IESERVERONLY;
1469         return -1;
1470     }
1471     if (test->role == 's' && client_flag) {
1472         i_errno = IECLIENTONLY;
1473         return -1;
1474     }
1475 
1476 #if defined(HAVE_SSL)
1477 
1478     if (test->role == 's' && (client_username || client_rsa_public_key)){
1479         i_errno = IECLIENTONLY;
1480         return -1;
1481     } else if (test->role == 'c' && (client_username || client_rsa_public_key) &&
1482         !(client_username && client_rsa_public_key)) {
1483         i_errno = IESETCLIENTAUTH;
1484         return -1;
1485     } else if (test->role == 'c' && (client_username && client_rsa_public_key)){
1486 
1487         char *client_password = NULL;
1488         size_t s;
1489         /* Need to copy env var, so we can do a common free */
1490         if ((client_password = getenv("IPERF3_PASSWORD")) != NULL)
1491              client_password = strdup(client_password);
1492         else if (iperf_getpass(&client_password, &s, stdin) < 0){
1493             i_errno = IESETCLIENTAUTH;
1494             return -1;
1495         }
1496         if (test_load_pubkey_from_file(client_rsa_public_key) < 0){
1497             iperf_err(test, "%s\n", ERR_error_string(ERR_get_error(), NULL));
1498             i_errno = IESETCLIENTAUTH;
1499             return -1;
1500         }
1501 
1502         test->settings->client_username = client_username;
1503         test->settings->client_password = client_password;
1504         test->settings->client_rsa_pubkey = load_pubkey_from_file(client_rsa_public_key);
1505 	free(client_rsa_public_key);
1506 	client_rsa_public_key = NULL;
1507     }
1508 
1509     if (test->role == 'c' && (server_rsa_private_key || test->server_authorized_users)){
1510         i_errno = IESERVERONLY;
1511         return -1;
1512     } else if (test->role == 'c' && (test->server_skew_threshold != 0)){
1513         i_errno = IESERVERONLY;
1514         return -1;
1515     } else if (test->role == 'c' && rcv_timeout_flag && test->mode == SENDER){
1516         i_errno = IERVRSONLYRCVTIMEOUT;
1517         return -1;
1518     } else if (test->role == 's' && (server_rsa_private_key || test->server_authorized_users) &&
1519         !(server_rsa_private_key && test->server_authorized_users)) {
1520          i_errno = IESETSERVERAUTH;
1521         return -1;
1522     } else if (test->role == 's' && server_rsa_private_key) {
1523         test->server_rsa_private_key = load_privkey_from_file(server_rsa_private_key);
1524         if (test->server_rsa_private_key == NULL){
1525             iperf_err(test, "%s\n", ERR_error_string(ERR_get_error(), NULL));
1526             i_errno = IESETSERVERAUTH;
1527             return -1;
1528         }
1529 	    free(server_rsa_private_key);
1530 	    server_rsa_private_key = NULL;
1531 
1532         if(test->server_skew_threshold == 0){
1533             // Set default value for time skew threshold
1534             test->server_skew_threshold=10;
1535         }
1536     }
1537 
1538 #endif //HAVE_SSL
1539     if (blksize == 0) {
1540 	if (test->protocol->id == Pudp)
1541 	    blksize = 0;	/* try to dynamically determine from MSS */
1542 	else if (test->protocol->id == Psctp)
1543 	    blksize = DEFAULT_SCTP_BLKSIZE;
1544 	else
1545 	    blksize = DEFAULT_TCP_BLKSIZE;
1546     }
1547     if ((test->protocol->id != Pudp && blksize <= 0)
1548 	|| blksize > MAX_BLOCKSIZE) {
1549 	i_errno = IEBLOCKSIZE;
1550 	return -1;
1551     }
1552     if (test->protocol->id == Pudp &&
1553 	(blksize > 0 &&
1554 	    (blksize < MIN_UDP_BLOCKSIZE || blksize > MAX_UDP_BLOCKSIZE))) {
1555 	i_errno = IEUDPBLOCKSIZE;
1556 	return -1;
1557     }
1558     test->settings->blksize = blksize;
1559 
1560     if (!rate_flag)
1561 	test->settings->rate = test->protocol->id == Pudp ? UDP_RATE : 0;
1562 
1563     /* if no bytes or blocks specified, nor a duration_flag, and we have -F,
1564     ** get the file-size as the bytes count to be transferred
1565     */
1566     if (test->settings->bytes == 0 &&
1567         test->settings->blocks == 0 &&
1568         ! duration_flag &&
1569         test->diskfile_name != (char*) 0 &&
1570         test->role == 'c'
1571         ){
1572         struct stat st;
1573         if( stat(test->diskfile_name, &st) == 0 ){
1574             iperf_size_t file_bytes = st.st_size;
1575             test->settings->bytes = file_bytes;
1576             if (test->debug)
1577                 printf("End condition set to file-size: %d bytes\n", test->settings->bytes);
1578         }
1579         // if failing to read file stat, it should fallback to default duration mode
1580     }
1581 
1582     if ((test->settings->bytes != 0 || test->settings->blocks != 0) && ! duration_flag)
1583         test->duration = 0;
1584 
1585     /* Disallow specifying multiple test end conditions. The code actually
1586     ** works just fine without this prohibition. As soon as any one of the
1587     ** three possible end conditions is met, the test ends. So this check
1588     ** could be removed if desired.
1589     */
1590     if ((duration_flag && test->settings->bytes != 0) ||
1591         (duration_flag && test->settings->blocks != 0) ||
1592 	(test->settings->bytes != 0 && test->settings->blocks != 0)) {
1593         i_errno = IEENDCONDITIONS;
1594         return -1;
1595     }
1596 
1597     /* For subsequent calls to getopt */
1598 #ifdef __APPLE__
1599     optreset = 1;
1600 #endif
1601     optind = 0;
1602 
1603     if ((test->role != 'c') && (test->role != 's')) {
1604         i_errno = IENOROLE;
1605         return -1;
1606     }
1607 
1608     /* Set Total-rate average interval to multiplicity of State interval */
1609     if (test->settings->bitrate_limit_interval != 0) {
1610 	test->settings->bitrate_limit_stats_per_interval =
1611 	    (test->settings->bitrate_limit_interval <= test->stats_interval ?
1612 	    1 : round(test->settings->bitrate_limit_interval/test->stats_interval) );
1613     }
1614 
1615     /* Show warning if JSON output is used with explicit report format */
1616     if ((test->json_output) && (test->settings->unit_format != 'a')) {
1617         warning("Report format (-f) flag ignored with JSON output (-J)");
1618     }
1619 
1620     /* Show warning if JSON output is used with verbose or debug flags */
1621     if (test->json_output && test->verbose) {
1622         warning("Verbose output (-v) may interfere with JSON output (-J)");
1623     }
1624     if (test->json_output && test->debug) {
1625         warning("Debug output (-d) may interfere with JSON output (-J)");
1626     }
1627 
1628     return 0;
1629 }
1630 
1631 /*
1632  * Open the file specified by test->logfile and set test->outfile to its' FD.
1633  */
1634 int iperf_open_logfile(struct iperf_test *test)
1635 {
1636     test->outfile = fopen(test->logfile, "a+");
1637     if (test->outfile == NULL) {
1638         i_errno = IELOGFILE;
1639         return -1;
1640     }
1641 
1642     return 0;
1643 }
1644 
1645 int
1646 iperf_set_send_state(struct iperf_test *test, signed char state)
1647 {
1648     if (test->ctrl_sck >= 0) {
1649         test->state = state;
1650         if (Nwrite(test->ctrl_sck, (char*) &state, sizeof(state), Ptcp) < 0) {
1651 	    i_errno = IESENDMESSAGE;
1652 	    return -1;
1653         }
1654     }
1655     return 0;
1656 }
1657 
1658 void
1659 iperf_check_throttle(struct iperf_stream *sp, struct iperf_time *nowP)
1660 {
1661     struct iperf_time temp_time;
1662     double seconds;
1663     uint64_t bits_per_second;
1664 
1665     if (sp->test->done || sp->test->settings->rate == 0)
1666         return;
1667     iperf_time_diff(&sp->result->start_time_fixed, nowP, &temp_time);
1668     seconds = iperf_time_in_secs(&temp_time);
1669     bits_per_second = sp->result->bytes_sent * 8 / seconds;
1670     if (bits_per_second < sp->test->settings->rate) {
1671         sp->green_light = 1;
1672         FD_SET(sp->socket, &sp->test->write_set);
1673     } else {
1674         sp->green_light = 0;
1675         FD_CLR(sp->socket, &sp->test->write_set);
1676     }
1677 }
1678 
1679 /* Verify that average traffic is not greater than the specified limit */
1680 void
1681 iperf_check_total_rate(struct iperf_test *test, iperf_size_t last_interval_bytes_transferred)
1682 {
1683     double seconds;
1684     uint64_t bits_per_second;
1685     iperf_size_t total_bytes;
1686     int i;
1687 
1688     if (test->done || test->settings->bitrate_limit == 0)    // Continue only if check should be done
1689         return;
1690 
1691     /* Add last inetrval's transferred bytes to the array */
1692     if (++test->bitrate_limit_last_interval_index >= test->settings->bitrate_limit_stats_per_interval)
1693         test->bitrate_limit_last_interval_index = 0;
1694     test->bitrate_limit_intervals_traffic_bytes[test->bitrate_limit_last_interval_index] = last_interval_bytes_transferred;
1695 
1696     /* Ensure that enough stats periods passed to allow averaging throughput */
1697     test->bitrate_limit_stats_count += 1;
1698     if (test->bitrate_limit_stats_count < test->settings->bitrate_limit_stats_per_interval)
1699         return;
1700 
1701      /* Calculating total bytes traffic to be averaged */
1702     for (total_bytes = 0, i = 0; i < test->settings->bitrate_limit_stats_per_interval; i++) {
1703         total_bytes += test->bitrate_limit_intervals_traffic_bytes[i];
1704     }
1705 
1706     seconds = test->stats_interval * test->settings->bitrate_limit_stats_per_interval;
1707     bits_per_second = total_bytes * 8 / seconds;
1708     if (test->debug) {
1709         iperf_printf(test,"Interval %" PRIu64 " - throughput %" PRIu64 " bps (limit %" PRIu64 ")\n", test->bitrate_limit_stats_count, bits_per_second, test->settings->bitrate_limit);
1710     }
1711 
1712     if (bits_per_second  > test->settings->bitrate_limit) {
1713         if (iperf_get_verbose(test))
1714             iperf_err(test, "Total throughput of %" PRIu64 " bps exceeded %" PRIu64 " bps limit", bits_per_second, test->settings->bitrate_limit);
1715 	test->bitrate_limit_exceeded = 1;
1716     }
1717 }
1718 
1719 int
1720 iperf_send(struct iperf_test *test, fd_set *write_setP)
1721 {
1722     register int multisend, r, streams_active;
1723     register struct iperf_stream *sp;
1724     struct iperf_time now;
1725     int no_throttle_check;
1726 
1727     /* Can we do multisend mode? */
1728     if (test->settings->burst != 0)
1729         multisend = test->settings->burst;
1730     else if (test->settings->rate == 0)
1731         multisend = test->multisend;
1732     else
1733         multisend = 1;	/* nope */
1734 
1735     /* Should bitrate throttle be checked for every send */
1736     no_throttle_check = test->settings->rate != 0 && test->settings->burst == 0;
1737 
1738     for (; multisend > 0; --multisend) {
1739 	if (no_throttle_check)
1740 	    iperf_time_now(&now);
1741 	streams_active = 0;
1742 	SLIST_FOREACH(sp, &test->streams, streams) {
1743 	    if ((sp->green_light && sp->sender &&
1744 		 (write_setP == NULL || FD_ISSET(sp->socket, write_setP)))) {
1745         if (multisend > 1 && test->settings->bytes != 0 && test->bytes_sent >= test->settings->bytes)
1746             break;
1747         if (multisend > 1 && test->settings->blocks != 0 && test->blocks_sent >= test->settings->blocks)
1748             break;
1749 		if ((r = sp->snd(sp)) < 0) {
1750 		    if (r == NET_SOFTERROR)
1751 			break;
1752 		    i_errno = IESTREAMWRITE;
1753 		    return r;
1754 		}
1755 		streams_active = 1;
1756 		test->bytes_sent += r;
1757 		if (!sp->pending_size)
1758 		    ++test->blocks_sent;
1759                 if (no_throttle_check)
1760 		    iperf_check_throttle(sp, &now);
1761 	    }
1762 	}
1763 	if (!streams_active)
1764 	    break;
1765     }
1766     if (!no_throttle_check) {   /* Throttle check if was not checked for each send */
1767 	iperf_time_now(&now);
1768 	SLIST_FOREACH(sp, &test->streams, streams)
1769 	    if (sp->sender)
1770 	        iperf_check_throttle(sp, &now);
1771     }
1772     if (write_setP != NULL)
1773 	SLIST_FOREACH(sp, &test->streams, streams)
1774 	    if (FD_ISSET(sp->socket, write_setP))
1775 		FD_CLR(sp->socket, write_setP);
1776 
1777     return 0;
1778 }
1779 
1780 int
1781 iperf_recv(struct iperf_test *test, fd_set *read_setP)
1782 {
1783     int r;
1784     struct iperf_stream *sp;
1785 
1786     SLIST_FOREACH(sp, &test->streams, streams) {
1787 	if (FD_ISSET(sp->socket, read_setP) && !sp->sender) {
1788 	    if ((r = sp->rcv(sp)) < 0) {
1789 		i_errno = IESTREAMREAD;
1790 		return r;
1791 	    }
1792 	    test->bytes_received += r;
1793 	    ++test->blocks_received;
1794 	    FD_CLR(sp->socket, read_setP);
1795 	}
1796     }
1797 
1798     return 0;
1799 }
1800 
1801 int
1802 iperf_init_test(struct iperf_test *test)
1803 {
1804     struct iperf_time now;
1805     struct iperf_stream *sp;
1806 
1807     if (test->protocol->init) {
1808         if (test->protocol->init(test) < 0)
1809             return -1;
1810     }
1811 
1812     /* Init each stream. */
1813     if (iperf_time_now(&now) < 0) {
1814 	i_errno = IEINITTEST;
1815 	return -1;
1816     }
1817     SLIST_FOREACH(sp, &test->streams, streams) {
1818 	sp->result->start_time = sp->result->start_time_fixed = now;
1819     }
1820 
1821     if (test->on_test_start)
1822         test->on_test_start(test);
1823 
1824     return 0;
1825 }
1826 
1827 static void
1828 send_timer_proc(TimerClientData client_data, struct iperf_time *nowP)
1829 {
1830     struct iperf_stream *sp = client_data.p;
1831 
1832     /* All we do here is set or clear the flag saying that this stream may
1833     ** be sent to.  The actual sending gets done in the send proc, after
1834     ** checking the flag.
1835     */
1836     iperf_check_throttle(sp, nowP);
1837 }
1838 
1839 int
1840 iperf_create_send_timers(struct iperf_test * test)
1841 {
1842     struct iperf_time now;
1843     struct iperf_stream *sp;
1844     TimerClientData cd;
1845 
1846     if (iperf_time_now(&now) < 0) {
1847 	i_errno = IEINITTEST;
1848 	return -1;
1849     }
1850     SLIST_FOREACH(sp, &test->streams, streams) {
1851         sp->green_light = 1;
1852 	if (test->settings->rate != 0 && sp->sender) {
1853 	    cd.p = sp;
1854 	    sp->send_timer = tmr_create(NULL, send_timer_proc, cd, test->settings->pacing_timer, 1);
1855 	    if (sp->send_timer == NULL) {
1856 		i_errno = IEINITTEST;
1857 		return -1;
1858 	    }
1859 	}
1860     }
1861     return 0;
1862 }
1863 
1864 #if defined(HAVE_SSL)
1865 int test_is_authorized(struct iperf_test *test){
1866     if ( !(test->server_rsa_private_key && test->server_authorized_users)) {
1867         return 0;
1868     }
1869 
1870     if (test->settings->authtoken){
1871         char *username = NULL, *password = NULL;
1872         time_t ts;
1873         int rc = decode_auth_setting(test->debug, test->settings->authtoken, test->server_rsa_private_key, &username, &password, &ts);
1874 	if (rc) {
1875 	    return -1;
1876 	}
1877         int ret = check_authentication(username, password, ts, test->server_authorized_users, test->server_skew_threshold);
1878         if (ret == 0){
1879             if (test->debug) {
1880               iperf_printf(test, report_authentication_succeeded, username, ts);
1881             }
1882             free(username);
1883             free(password);
1884             return 0;
1885         } else {
1886             if (test->debug) {
1887                 iperf_printf(test, report_authentication_failed, username, ts);
1888             }
1889             free(username);
1890             free(password);
1891             return -1;
1892         }
1893     }
1894     return -1;
1895 }
1896 #endif //HAVE_SSL
1897 
1898 /**
1899  * iperf_exchange_parameters - handles the param_Exchange part for client
1900  *
1901  */
1902 
1903 int
1904 iperf_exchange_parameters(struct iperf_test *test)
1905 {
1906     int s;
1907     int32_t err;
1908 
1909     if (test->role == 'c') {
1910 
1911         if (send_parameters(test) < 0)
1912             return -1;
1913 
1914     } else {
1915 
1916         if (get_parameters(test) < 0)
1917             return -1;
1918 
1919 #if defined(HAVE_SSL)
1920         if (test_is_authorized(test) < 0){
1921             if (iperf_set_send_state(test, SERVER_ERROR) != 0)
1922                 return -1;
1923             i_errno = IEAUTHTEST;
1924             err = htonl(i_errno);
1925             if (Nwrite(test->ctrl_sck, (char*) &err, sizeof(err), Ptcp) < 0) {
1926                 i_errno = IECTRLWRITE;
1927                 return -1;
1928             }
1929             return -1;
1930         }
1931 #endif //HAVE_SSL
1932 
1933         if ((s = test->protocol->listen(test)) < 0) {
1934 	        if (iperf_set_send_state(test, SERVER_ERROR) != 0)
1935                 return -1;
1936             err = htonl(i_errno);
1937             if (Nwrite(test->ctrl_sck, (char*) &err, sizeof(err), Ptcp) < 0) {
1938                 i_errno = IECTRLWRITE;
1939                 return -1;
1940             }
1941             err = htonl(errno);
1942             if (Nwrite(test->ctrl_sck, (char*) &err, sizeof(err), Ptcp) < 0) {
1943                 i_errno = IECTRLWRITE;
1944                 return -1;
1945             }
1946             return -1;
1947         }
1948 
1949         FD_SET(s, &test->read_set);
1950         test->max_fd = (s > test->max_fd) ? s : test->max_fd;
1951         test->prot_listener = s;
1952 
1953         // Send the control message to create streams and start the test
1954 	if (iperf_set_send_state(test, CREATE_STREAMS) != 0)
1955             return -1;
1956 
1957     }
1958 
1959     return 0;
1960 }
1961 
1962 /*************************************************************/
1963 
1964 int
1965 iperf_exchange_results(struct iperf_test *test)
1966 {
1967     if (test->role == 'c') {
1968         /* Send results to server. */
1969 	if (send_results(test) < 0)
1970             return -1;
1971         /* Get server results. */
1972         if (get_results(test) < 0)
1973             return -1;
1974     } else {
1975         /* Get client results. */
1976         if (get_results(test) < 0)
1977             return -1;
1978         /* Send results to client. */
1979 	if (send_results(test) < 0)
1980             return -1;
1981     }
1982     return 0;
1983 }
1984 
1985 /*************************************************************/
1986 
1987 static int
1988 send_parameters(struct iperf_test *test)
1989 {
1990     int r = 0;
1991     cJSON *j;
1992 
1993     j = cJSON_CreateObject();
1994     if (j == NULL) {
1995 	i_errno = IESENDPARAMS;
1996 	r = -1;
1997     } else {
1998 	if (test->protocol->id == Ptcp)
1999 	    cJSON_AddTrueToObject(j, "tcp");
2000 	else if (test->protocol->id == Pudp)
2001 	    cJSON_AddTrueToObject(j, "udp");
2002         else if (test->protocol->id == Psctp)
2003             cJSON_AddTrueToObject(j, "sctp");
2004 	cJSON_AddNumberToObject(j, "omit", test->omit);
2005 	if (test->server_affinity != -1)
2006 	    cJSON_AddNumberToObject(j, "server_affinity", test->server_affinity);
2007 	cJSON_AddNumberToObject(j, "time", test->duration);
2008 	if (test->settings->bytes)
2009 	    cJSON_AddNumberToObject(j, "num", test->settings->bytes);
2010 	if (test->settings->blocks)
2011 	    cJSON_AddNumberToObject(j, "blockcount", test->settings->blocks);
2012 	if (test->settings->mss)
2013 	    cJSON_AddNumberToObject(j, "MSS", test->settings->mss);
2014 	if (test->no_delay)
2015 	    cJSON_AddTrueToObject(j, "nodelay");
2016 	cJSON_AddNumberToObject(j, "parallel", test->num_streams);
2017 	if (test->reverse)
2018 	    cJSON_AddTrueToObject(j, "reverse");
2019 	if (test->bidirectional)
2020 	            cJSON_AddTrueToObject(j, "bidirectional");
2021 	if (test->settings->socket_bufsize)
2022 	    cJSON_AddNumberToObject(j, "window", test->settings->socket_bufsize);
2023 	if (test->settings->blksize)
2024 	    cJSON_AddNumberToObject(j, "len", test->settings->blksize);
2025 	if (test->settings->rate)
2026 	    cJSON_AddNumberToObject(j, "bandwidth", test->settings->rate);
2027 	if (test->settings->fqrate)
2028 	    cJSON_AddNumberToObject(j, "fqrate", test->settings->fqrate);
2029 	if (test->settings->pacing_timer)
2030 	    cJSON_AddNumberToObject(j, "pacing_timer", test->settings->pacing_timer);
2031 	if (test->settings->burst)
2032 	    cJSON_AddNumberToObject(j, "burst", test->settings->burst);
2033 	if (test->settings->tos)
2034 	    cJSON_AddNumberToObject(j, "TOS", test->settings->tos);
2035 	if (test->settings->flowlabel)
2036 	    cJSON_AddNumberToObject(j, "flowlabel", test->settings->flowlabel);
2037 	if (test->title)
2038 	    cJSON_AddStringToObject(j, "title", test->title);
2039 	if (test->extra_data)
2040 	    cJSON_AddStringToObject(j, "extra_data", test->extra_data);
2041 	if (test->congestion)
2042 	    cJSON_AddStringToObject(j, "congestion", test->congestion);
2043 	if (test->congestion_used)
2044 	    cJSON_AddStringToObject(j, "congestion_used", test->congestion_used);
2045 	if (test->get_server_output)
2046 	    cJSON_AddNumberToObject(j, "get_server_output", iperf_get_test_get_server_output(test));
2047 	if (test->udp_counters_64bit)
2048 	    cJSON_AddNumberToObject(j, "udp_counters_64bit", iperf_get_test_udp_counters_64bit(test));
2049 	if (test->repeating_payload)
2050 	    cJSON_AddNumberToObject(j, "repeating_payload", test->repeating_payload);
2051 #if defined(HAVE_DONT_FRAGMENT)
2052 	if (test->settings->dont_fragment)
2053 	    cJSON_AddNumberToObject(j, "dont_fragment", test->settings->dont_fragment);
2054 #endif /* HAVE_DONT_FRAGMENT */
2055 #if defined(HAVE_SSL)
2056 	/* Send authentication parameters */
2057 	if (test->settings->client_username && test->settings->client_password && test->settings->client_rsa_pubkey){
2058 	    int rc = encode_auth_setting(test->settings->client_username, test->settings->client_password, test->settings->client_rsa_pubkey, &test->settings->authtoken);
2059 
2060 	    if (rc) {
2061 		cJSON_Delete(j);
2062 		i_errno = IESENDPARAMS;
2063 		return -1;
2064 	    }
2065 
2066 	    cJSON_AddStringToObject(j, "authtoken", test->settings->authtoken);
2067 	}
2068 #endif // HAVE_SSL
2069 	cJSON_AddStringToObject(j, "client_version", IPERF_VERSION);
2070 
2071 	if (test->debug) {
2072 	    char *str = cJSON_Print(j);
2073 	    printf("send_parameters:\n%s\n", str);
2074 	    cJSON_free(str);
2075 	}
2076 
2077 	if (JSON_write(test->ctrl_sck, j) < 0) {
2078 	    i_errno = IESENDPARAMS;
2079 	    r = -1;
2080 	}
2081 	cJSON_Delete(j);
2082     }
2083     return r;
2084 }
2085 
2086 /*************************************************************/
2087 
2088 static int
2089 get_parameters(struct iperf_test *test)
2090 {
2091     int r = 0;
2092     cJSON *j;
2093     cJSON *j_p;
2094 
2095     j = JSON_read(test->ctrl_sck);
2096     if (j == NULL) {
2097 	i_errno = IERECVPARAMS;
2098         r = -1;
2099     } else {
2100 	if (test->debug) {
2101             char *str;
2102             str = cJSON_Print(j);
2103             printf("get_parameters:\n%s\n", str );
2104             cJSON_free(str);
2105 	}
2106 
2107 	if ((j_p = cJSON_GetObjectItem(j, "tcp")) != NULL)
2108 	    set_protocol(test, Ptcp);
2109 	if ((j_p = cJSON_GetObjectItem(j, "udp")) != NULL)
2110 	    set_protocol(test, Pudp);
2111         if ((j_p = cJSON_GetObjectItem(j, "sctp")) != NULL)
2112             set_protocol(test, Psctp);
2113 	if ((j_p = cJSON_GetObjectItem(j, "omit")) != NULL)
2114 	    test->omit = j_p->valueint;
2115 	if ((j_p = cJSON_GetObjectItem(j, "server_affinity")) != NULL)
2116 	    test->server_affinity = j_p->valueint;
2117 	if ((j_p = cJSON_GetObjectItem(j, "time")) != NULL)
2118 	    test->duration = j_p->valueint;
2119 	if ((j_p = cJSON_GetObjectItem(j, "num")) != NULL)
2120 	    test->settings->bytes = j_p->valueint;
2121 	if ((j_p = cJSON_GetObjectItem(j, "blockcount")) != NULL)
2122 	    test->settings->blocks = j_p->valueint;
2123 	if ((j_p = cJSON_GetObjectItem(j, "MSS")) != NULL)
2124 	    test->settings->mss = j_p->valueint;
2125 	if ((j_p = cJSON_GetObjectItem(j, "nodelay")) != NULL)
2126 	    test->no_delay = 1;
2127 	if ((j_p = cJSON_GetObjectItem(j, "parallel")) != NULL)
2128 	    test->num_streams = j_p->valueint;
2129 	if ((j_p = cJSON_GetObjectItem(j, "reverse")) != NULL)
2130 	    iperf_set_test_reverse(test, 1);
2131         if ((j_p = cJSON_GetObjectItem(j, "bidirectional")) != NULL)
2132             iperf_set_test_bidirectional(test, 1);
2133 	if ((j_p = cJSON_GetObjectItem(j, "window")) != NULL)
2134 	    test->settings->socket_bufsize = j_p->valueint;
2135 	if ((j_p = cJSON_GetObjectItem(j, "len")) != NULL)
2136 	    test->settings->blksize = j_p->valueint;
2137 	if ((j_p = cJSON_GetObjectItem(j, "bandwidth")) != NULL)
2138 	    test->settings->rate = j_p->valueint;
2139 	if ((j_p = cJSON_GetObjectItem(j, "fqrate")) != NULL)
2140 	    test->settings->fqrate = j_p->valueint;
2141 	if ((j_p = cJSON_GetObjectItem(j, "pacing_timer")) != NULL)
2142 	    test->settings->pacing_timer = j_p->valueint;
2143 	if ((j_p = cJSON_GetObjectItem(j, "burst")) != NULL)
2144 	    test->settings->burst = j_p->valueint;
2145 	if ((j_p = cJSON_GetObjectItem(j, "TOS")) != NULL)
2146 	    test->settings->tos = j_p->valueint;
2147 	if ((j_p = cJSON_GetObjectItem(j, "flowlabel")) != NULL)
2148 	    test->settings->flowlabel = j_p->valueint;
2149 	if ((j_p = cJSON_GetObjectItem(j, "title")) != NULL)
2150 	    test->title = strdup(j_p->valuestring);
2151 	if ((j_p = cJSON_GetObjectItem(j, "extra_data")) != NULL)
2152 	    test->extra_data = strdup(j_p->valuestring);
2153 	if ((j_p = cJSON_GetObjectItem(j, "congestion")) != NULL)
2154 	    test->congestion = strdup(j_p->valuestring);
2155 	if ((j_p = cJSON_GetObjectItem(j, "congestion_used")) != NULL)
2156 	    test->congestion_used = strdup(j_p->valuestring);
2157 	if ((j_p = cJSON_GetObjectItem(j, "get_server_output")) != NULL)
2158 	    iperf_set_test_get_server_output(test, 1);
2159 	if ((j_p = cJSON_GetObjectItem(j, "udp_counters_64bit")) != NULL)
2160 	    iperf_set_test_udp_counters_64bit(test, 1);
2161 	if ((j_p = cJSON_GetObjectItem(j, "repeating_payload")) != NULL)
2162 	    test->repeating_payload = 1;
2163 #if defined(HAVE_DONT_FRAGMENT)
2164 	if ((j_p = cJSON_GetObjectItem(j, "dont_fragment")) != NULL)
2165 	    test->settings->dont_fragment = j_p->valueint;
2166 #endif /* HAVE_DONT_FRAGMENT */
2167 #if defined(HAVE_SSL)
2168 	if ((j_p = cJSON_GetObjectItem(j, "authtoken")) != NULL)
2169         test->settings->authtoken = strdup(j_p->valuestring);
2170 #endif //HAVE_SSL
2171 	if (test->mode && test->protocol->id == Ptcp && has_tcpinfo_retransmits())
2172 	    test->sender_has_retransmits = 1;
2173 	if (test->settings->rate)
2174 	    cJSON_AddNumberToObject(test->json_start, "target_bitrate", test->settings->rate);
2175 	cJSON_Delete(j);
2176     }
2177     return r;
2178 }
2179 
2180 /*************************************************************/
2181 
2182 static int
2183 send_results(struct iperf_test *test)
2184 {
2185     int r = 0;
2186     cJSON *j;
2187     cJSON *j_streams;
2188     struct iperf_stream *sp;
2189     cJSON *j_stream;
2190     int sender_has_retransmits;
2191     iperf_size_t bytes_transferred;
2192     int retransmits;
2193     struct iperf_time temp_time;
2194     double start_time, end_time;
2195 
2196     j = cJSON_CreateObject();
2197     if (j == NULL) {
2198 	i_errno = IEPACKAGERESULTS;
2199 	r = -1;
2200     } else {
2201 	cJSON_AddNumberToObject(j, "cpu_util_total", test->cpu_util[0]);
2202 	cJSON_AddNumberToObject(j, "cpu_util_user", test->cpu_util[1]);
2203 	cJSON_AddNumberToObject(j, "cpu_util_system", test->cpu_util[2]);
2204 	if ( test->mode == RECEIVER )
2205 	    sender_has_retransmits = -1;
2206 	else
2207 	    sender_has_retransmits = test->sender_has_retransmits;
2208 	cJSON_AddNumberToObject(j, "sender_has_retransmits", sender_has_retransmits);
2209 	if ( test->congestion_used ) {
2210 	    cJSON_AddStringToObject(j, "congestion_used", test->congestion_used);
2211 	}
2212 
2213 	/* If on the server and sending server output, then do this */
2214 	if (test->role == 's' && test->get_server_output) {
2215 	    if (test->json_output) {
2216 		/* Add JSON output */
2217 		cJSON_AddItemReferenceToObject(j, "server_output_json", test->json_top);
2218 	    }
2219 	    else {
2220 		/* Add textual output */
2221 		size_t buflen = 0;
2222 
2223 		/* Figure out how much room we need to hold the complete output string */
2224 		struct iperf_textline *t;
2225 		TAILQ_FOREACH(t, &(test->server_output_list), textlineentries) {
2226 		    buflen += strlen(t->line);
2227 		}
2228 
2229 		/* Allocate and build it up from the component lines */
2230 		char *output = calloc(buflen + 1, 1);
2231 		TAILQ_FOREACH(t, &(test->server_output_list), textlineentries) {
2232 		    strncat(output, t->line, buflen);
2233 		    buflen -= strlen(t->line);
2234 		}
2235 
2236 		cJSON_AddStringToObject(j, "server_output_text", output);
2237         free(output);
2238 	    }
2239 	}
2240 
2241 	j_streams = cJSON_CreateArray();
2242 	if (j_streams == NULL) {
2243 	    i_errno = IEPACKAGERESULTS;
2244 	    r = -1;
2245 	} else {
2246 	    cJSON_AddItemToObject(j, "streams", j_streams);
2247 	    SLIST_FOREACH(sp, &test->streams, streams) {
2248 		j_stream = cJSON_CreateObject();
2249 		if (j_stream == NULL) {
2250 		    i_errno = IEPACKAGERESULTS;
2251 		    r = -1;
2252 		} else {
2253 		    cJSON_AddItemToArray(j_streams, j_stream);
2254 		    bytes_transferred = sp->sender ? (sp->result->bytes_sent - sp->result->bytes_sent_omit) : sp->result->bytes_received;
2255 		    retransmits = (sp->sender && test->sender_has_retransmits) ? sp->result->stream_retrans : -1;
2256 		    cJSON_AddNumberToObject(j_stream, "id", sp->id);
2257 		    cJSON_AddNumberToObject(j_stream, "bytes", bytes_transferred);
2258 		    cJSON_AddNumberToObject(j_stream, "retransmits", retransmits);
2259 		    cJSON_AddNumberToObject(j_stream, "jitter", sp->jitter);
2260 		    cJSON_AddNumberToObject(j_stream, "errors", sp->cnt_error);
2261 		    cJSON_AddNumberToObject(j_stream, "packets", sp->packet_count);
2262 
2263 		    iperf_time_diff(&sp->result->start_time, &sp->result->start_time, &temp_time);
2264 		    start_time = iperf_time_in_secs(&temp_time);
2265 		    iperf_time_diff(&sp->result->start_time, &sp->result->end_time, &temp_time);
2266 		    end_time = iperf_time_in_secs(&temp_time);
2267 		    cJSON_AddNumberToObject(j_stream, "start_time", start_time);
2268 		    cJSON_AddNumberToObject(j_stream, "end_time", end_time);
2269 
2270 		}
2271 	    }
2272 	    if (r == 0 && test->debug) {
2273                 char *str = cJSON_Print(j);
2274 		printf("send_results\n%s\n", str);
2275                 cJSON_free(str);
2276 	    }
2277 	    if (r == 0 && JSON_write(test->ctrl_sck, j) < 0) {
2278 		i_errno = IESENDRESULTS;
2279 		r = -1;
2280 	    }
2281 	}
2282 	cJSON_Delete(j);
2283     }
2284     return r;
2285 }
2286 
2287 /*************************************************************/
2288 
2289 static int
2290 get_results(struct iperf_test *test)
2291 {
2292     int r = 0;
2293     cJSON *j;
2294     cJSON *j_cpu_util_total;
2295     cJSON *j_cpu_util_user;
2296     cJSON *j_cpu_util_system;
2297     cJSON *j_remote_congestion_used;
2298     cJSON *j_sender_has_retransmits;
2299     int result_has_retransmits;
2300     cJSON *j_streams;
2301     int n, i;
2302     cJSON *j_stream;
2303     cJSON *j_id;
2304     cJSON *j_bytes;
2305     cJSON *j_retransmits;
2306     cJSON *j_jitter;
2307     cJSON *j_errors;
2308     cJSON *j_packets;
2309     cJSON *j_server_output;
2310     cJSON *j_start_time, *j_end_time;
2311     int sid, cerror, pcount;
2312     double jitter;
2313     iperf_size_t bytes_transferred;
2314     int retransmits;
2315     struct iperf_stream *sp;
2316 
2317     j = JSON_read(test->ctrl_sck);
2318     if (j == NULL) {
2319 	i_errno = IERECVRESULTS;
2320         r = -1;
2321     } else {
2322 	j_cpu_util_total = cJSON_GetObjectItem(j, "cpu_util_total");
2323 	j_cpu_util_user = cJSON_GetObjectItem(j, "cpu_util_user");
2324 	j_cpu_util_system = cJSON_GetObjectItem(j, "cpu_util_system");
2325 	j_sender_has_retransmits = cJSON_GetObjectItem(j, "sender_has_retransmits");
2326 	if (j_cpu_util_total == NULL || j_cpu_util_user == NULL || j_cpu_util_system == NULL || j_sender_has_retransmits == NULL) {
2327 	    i_errno = IERECVRESULTS;
2328 	    r = -1;
2329 	} else {
2330 	    if (test->debug) {
2331                 char *str = cJSON_Print(j);
2332                 printf("get_results\n%s\n", str);
2333                 cJSON_free(str);
2334 	    }
2335 
2336 	    test->remote_cpu_util[0] = j_cpu_util_total->valuedouble;
2337 	    test->remote_cpu_util[1] = j_cpu_util_user->valuedouble;
2338 	    test->remote_cpu_util[2] = j_cpu_util_system->valuedouble;
2339 	    result_has_retransmits = j_sender_has_retransmits->valueint;
2340 	    if ( test->mode == RECEIVER ) {
2341 	        test->sender_has_retransmits = result_has_retransmits;
2342 	        test->other_side_has_retransmits = 0;
2343 	    }
2344 	    else if ( test->mode == BIDIRECTIONAL )
2345 	        test->other_side_has_retransmits = result_has_retransmits;
2346 
2347 	    j_streams = cJSON_GetObjectItem(j, "streams");
2348 	    if (j_streams == NULL) {
2349 		i_errno = IERECVRESULTS;
2350 		r = -1;
2351 	    } else {
2352 	        n = cJSON_GetArraySize(j_streams);
2353 		for (i=0; i<n; ++i) {
2354 		    j_stream = cJSON_GetArrayItem(j_streams, i);
2355 		    if (j_stream == NULL) {
2356 			i_errno = IERECVRESULTS;
2357 			r = -1;
2358 		    } else {
2359 			j_id = cJSON_GetObjectItem(j_stream, "id");
2360 			j_bytes = cJSON_GetObjectItem(j_stream, "bytes");
2361 			j_retransmits = cJSON_GetObjectItem(j_stream, "retransmits");
2362 			j_jitter = cJSON_GetObjectItem(j_stream, "jitter");
2363 			j_errors = cJSON_GetObjectItem(j_stream, "errors");
2364 			j_packets = cJSON_GetObjectItem(j_stream, "packets");
2365 			j_start_time = cJSON_GetObjectItem(j_stream, "start_time");
2366 			j_end_time = cJSON_GetObjectItem(j_stream, "end_time");
2367 			if (j_id == NULL || j_bytes == NULL || j_retransmits == NULL || j_jitter == NULL || j_errors == NULL || j_packets == NULL) {
2368 			    i_errno = IERECVRESULTS;
2369 			    r = -1;
2370 			} else {
2371 			    sid = j_id->valueint;
2372 			    bytes_transferred = j_bytes->valueint;
2373 			    retransmits = j_retransmits->valueint;
2374 			    jitter = j_jitter->valuedouble;
2375 			    cerror = j_errors->valueint;
2376 			    pcount = j_packets->valueint;
2377 			    SLIST_FOREACH(sp, &test->streams, streams)
2378 				if (sp->id == sid) break;
2379 			    if (sp == NULL) {
2380 				i_errno = IESTREAMID;
2381 				r = -1;
2382 			    } else {
2383 				if (sp->sender) {
2384 				    sp->jitter = jitter;
2385 				    sp->cnt_error = cerror;
2386 				    sp->peer_packet_count = pcount;
2387 				    sp->result->bytes_received = bytes_transferred;
2388 				    /*
2389 				     * We have to handle the possibility that
2390 				     * start_time and end_time might not be
2391 				     * available; this is the case for older (pre-3.2)
2392 				     * servers.
2393 				     *
2394 				     * We need to have result structure members to hold
2395 				     * the both sides' start_time and end_time.
2396 				     */
2397 				    if (j_start_time && j_end_time) {
2398 					sp->result->receiver_time = j_end_time->valuedouble - j_start_time->valuedouble;
2399 				    }
2400 				    else {
2401 					sp->result->receiver_time = 0.0;
2402 				    }
2403 				} else {
2404 				    sp->peer_packet_count = pcount;
2405 				    sp->result->bytes_sent = bytes_transferred;
2406 				    sp->result->stream_retrans = retransmits;
2407 				    if (j_start_time && j_end_time) {
2408 					sp->result->sender_time = j_end_time->valuedouble - j_start_time->valuedouble;
2409 				    }
2410 				    else {
2411 					sp->result->sender_time = 0.0;
2412 				    }
2413 				}
2414 			    }
2415 			}
2416 		    }
2417 		}
2418 		/*
2419 		 * If we're the client and we're supposed to get remote results,
2420 		 * look them up and process accordingly.
2421 		 */
2422 		if (test->role == 'c' && iperf_get_test_get_server_output(test)) {
2423 		    /* Look for JSON.  If we find it, grab the object so it doesn't get deleted. */
2424 		    j_server_output = cJSON_DetachItemFromObject(j, "server_output_json");
2425 		    if (j_server_output != NULL) {
2426 			test->json_server_output = j_server_output;
2427 		    }
2428 		    else {
2429 			/* No JSON, look for textual output.  Make a copy of the text for later. */
2430 			j_server_output = cJSON_GetObjectItem(j, "server_output_text");
2431 			if (j_server_output != NULL) {
2432 			    test->server_output_text = strdup(j_server_output->valuestring);
2433 			}
2434 		    }
2435 		}
2436 	    }
2437 	}
2438 
2439 	j_remote_congestion_used = cJSON_GetObjectItem(j, "congestion_used");
2440 	if (j_remote_congestion_used != NULL) {
2441 	    test->remote_congestion_used = strdup(j_remote_congestion_used->valuestring);
2442 	}
2443 
2444 	cJSON_Delete(j);
2445     }
2446     return r;
2447 }
2448 
2449 /*************************************************************/
2450 
2451 static int
2452 JSON_write(int fd, cJSON *json)
2453 {
2454     uint32_t hsize, nsize;
2455     char *str;
2456     int r = 0;
2457 
2458     str = cJSON_PrintUnformatted(json);
2459     if (str == NULL)
2460 	r = -1;
2461     else {
2462 	hsize = strlen(str);
2463 	nsize = htonl(hsize);
2464 	if (Nwrite(fd, (char*) &nsize, sizeof(nsize), Ptcp) < 0)
2465 	    r = -1;
2466 	else {
2467 	    if (Nwrite(fd, str, hsize, Ptcp) < 0)
2468 		r = -1;
2469 	}
2470 	cJSON_free(str);
2471     }
2472     return r;
2473 }
2474 
2475 /*************************************************************/
2476 
2477 static cJSON *
2478 JSON_read(int fd)
2479 {
2480     uint32_t hsize, nsize;
2481     char *str;
2482     cJSON *json = NULL;
2483     int rc;
2484 
2485     /*
2486      * Read a four-byte integer, which is the length of the JSON to follow.
2487      * Then read the JSON into a buffer and parse it.  Return a parsed JSON
2488      * structure, NULL if there was an error.
2489      */
2490     if (Nread(fd, (char*) &nsize, sizeof(nsize), Ptcp) >= 0) {
2491 	hsize = ntohl(nsize);
2492 	/* Allocate a buffer to hold the JSON */
2493 	str = (char *) calloc(sizeof(char), hsize+1);	/* +1 for trailing null */
2494 	if (str != NULL) {
2495 	    rc = Nread(fd, str, hsize, Ptcp);
2496 	    if (rc >= 0) {
2497 		/*
2498 		 * We should be reading in the number of bytes corresponding to the
2499 		 * length in that 4-byte integer.  If we don't the socket might have
2500 		 * prematurely closed.  Only do the JSON parsing if we got the
2501 		 * correct number of bytes.
2502 		 */
2503 		if (rc == hsize) {
2504 		    json = cJSON_Parse(str);
2505 		}
2506 		else {
2507 		    printf("WARNING:  Size of data read does not correspond to offered length\n");
2508 		}
2509 	    }
2510 	}
2511 	free(str);
2512     }
2513     return json;
2514 }
2515 
2516 /*************************************************************/
2517 /**
2518  * add_to_interval_list -- adds new interval to the interval_list
2519  */
2520 
2521 void
2522 add_to_interval_list(struct iperf_stream_result * rp, struct iperf_interval_results * new)
2523 {
2524     struct iperf_interval_results *irp;
2525 
2526     irp = (struct iperf_interval_results *) malloc(sizeof(struct iperf_interval_results));
2527     memcpy(irp, new, sizeof(struct iperf_interval_results));
2528     TAILQ_INSERT_TAIL(&rp->interval_results, irp, irlistentries);
2529 }
2530 
2531 
2532 /************************************************************/
2533 
2534 /**
2535  * connect_msg -- displays connection message
2536  * denoting sender/receiver details
2537  *
2538  */
2539 
2540 void
2541 connect_msg(struct iperf_stream *sp)
2542 {
2543     char ipl[INET6_ADDRSTRLEN], ipr[INET6_ADDRSTRLEN];
2544     int lport, rport;
2545 
2546     if (getsockdomain(sp->socket) == AF_INET) {
2547         inet_ntop(AF_INET, (void *) &((struct sockaddr_in *) &sp->local_addr)->sin_addr, ipl, sizeof(ipl));
2548 	mapped_v4_to_regular_v4(ipl);
2549         inet_ntop(AF_INET, (void *) &((struct sockaddr_in *) &sp->remote_addr)->sin_addr, ipr, sizeof(ipr));
2550 	mapped_v4_to_regular_v4(ipr);
2551         lport = ntohs(((struct sockaddr_in *) &sp->local_addr)->sin_port);
2552         rport = ntohs(((struct sockaddr_in *) &sp->remote_addr)->sin_port);
2553     } else {
2554         inet_ntop(AF_INET6, (void *) &((struct sockaddr_in6 *) &sp->local_addr)->sin6_addr, ipl, sizeof(ipl));
2555 	mapped_v4_to_regular_v4(ipl);
2556         inet_ntop(AF_INET6, (void *) &((struct sockaddr_in6 *) &sp->remote_addr)->sin6_addr, ipr, sizeof(ipr));
2557 	mapped_v4_to_regular_v4(ipr);
2558         lport = ntohs(((struct sockaddr_in6 *) &sp->local_addr)->sin6_port);
2559         rport = ntohs(((struct sockaddr_in6 *) &sp->remote_addr)->sin6_port);
2560     }
2561 
2562     if (sp->test->json_output)
2563         cJSON_AddItemToArray(sp->test->json_connected, iperf_json_printf("socket: %d  local_host: %s  local_port: %d  remote_host: %s  remote_port: %d", (int64_t) sp->socket, ipl, (int64_t) lport, ipr, (int64_t) rport));
2564     else
2565 	iperf_printf(sp->test, report_connected, sp->socket, ipl, lport, ipr, rport);
2566 }
2567 
2568 
2569 /**************************************************************************/
2570 
2571 struct iperf_test *
2572 iperf_new_test()
2573 {
2574     struct iperf_test *test;
2575 
2576     test = (struct iperf_test *) malloc(sizeof(struct iperf_test));
2577     if (!test) {
2578         i_errno = IENEWTEST;
2579         return NULL;
2580     }
2581     /* initialize everything to zero */
2582     memset(test, 0, sizeof(struct iperf_test));
2583 
2584     test->settings = (struct iperf_settings *) malloc(sizeof(struct iperf_settings));
2585     if (!test->settings) {
2586         free(test);
2587 	i_errno = IENEWTEST;
2588 	return NULL;
2589     }
2590     memset(test->settings, 0, sizeof(struct iperf_settings));
2591 
2592     test->bitrate_limit_intervals_traffic_bytes = (iperf_size_t *) malloc(sizeof(iperf_size_t) * MAX_INTERVAL);
2593     if (!test->bitrate_limit_intervals_traffic_bytes) {
2594         free(test);
2595 	i_errno = IENEWTEST;
2596 	return NULL;
2597     }
2598     memset(test->bitrate_limit_intervals_traffic_bytes, 0, sizeof(sizeof(iperf_size_t) * MAX_INTERVAL));
2599 
2600     /* By default all output goes to stdout */
2601     test->outfile = stdout;
2602 
2603     return test;
2604 }
2605 
2606 /**************************************************************************/
2607 
2608 struct protocol *
2609 protocol_new(void)
2610 {
2611     struct protocol *proto;
2612 
2613     proto = malloc(sizeof(struct protocol));
2614     if(!proto) {
2615         return NULL;
2616     }
2617     memset(proto, 0, sizeof(struct protocol));
2618 
2619     return proto;
2620 }
2621 
2622 void
2623 protocol_free(struct protocol *proto)
2624 {
2625     free(proto);
2626 }
2627 
2628 /**************************************************************************/
2629 int
2630 iperf_defaults(struct iperf_test *testp)
2631 {
2632     struct protocol *tcp, *udp;
2633 #if defined(HAVE_SCTP_H)
2634     struct protocol *sctp;
2635 #endif /* HAVE_SCTP_H */
2636 
2637     testp->omit = OMIT;
2638     testp->duration = DURATION;
2639     testp->diskfile_name = (char*) 0;
2640     testp->affinity = -1;
2641     testp->server_affinity = -1;
2642     TAILQ_INIT(&testp->xbind_addrs);
2643 #if defined(HAVE_CPUSET_SETAFFINITY)
2644     CPU_ZERO(&testp->cpumask);
2645 #endif /* HAVE_CPUSET_SETAFFINITY */
2646     testp->title = NULL;
2647     testp->extra_data = NULL;
2648     testp->congestion = NULL;
2649     testp->congestion_used = NULL;
2650     testp->remote_congestion_used = NULL;
2651     testp->server_port = PORT;
2652     testp->ctrl_sck = -1;
2653     testp->prot_listener = -1;
2654     testp->other_side_has_retransmits = 0;
2655 
2656     testp->stats_callback = iperf_stats_callback;
2657     testp->reporter_callback = iperf_reporter_callback;
2658 
2659     testp->stats_interval = testp->reporter_interval = 1;
2660     testp->num_streams = 1;
2661 
2662     testp->settings->domain = AF_UNSPEC;
2663     testp->settings->unit_format = 'a';
2664     testp->settings->socket_bufsize = 0;    /* use autotuning */
2665     testp->settings->blksize = DEFAULT_TCP_BLKSIZE;
2666     testp->settings->rate = 0;
2667     testp->settings->bitrate_limit = 0;
2668     testp->settings->bitrate_limit_interval = 5;
2669     testp->settings->bitrate_limit_stats_per_interval = 0;
2670     testp->settings->fqrate = 0;
2671     testp->settings->pacing_timer = DEFAULT_PACING_TIMER;
2672     testp->settings->burst = 0;
2673     testp->settings->mss = 0;
2674     testp->settings->bytes = 0;
2675     testp->settings->blocks = 0;
2676     testp->settings->connect_timeout = -1;
2677     testp->settings->rcv_timeout.secs = DEFAULT_NO_MSG_RCVD_TIMEOUT / SEC_TO_mS;
2678     testp->settings->rcv_timeout.usecs = (DEFAULT_NO_MSG_RCVD_TIMEOUT % SEC_TO_mS) * mS_TO_US;
2679 
2680     memset(testp->cookie, 0, COOKIE_SIZE);
2681 
2682     testp->multisend = 10;	/* arbitrary */
2683 
2684     /* Set up protocol list */
2685     SLIST_INIT(&testp->streams);
2686     SLIST_INIT(&testp->protocols);
2687 
2688     tcp = protocol_new();
2689     if (!tcp)
2690         return -1;
2691 
2692     tcp->id = Ptcp;
2693     tcp->name = "TCP";
2694     tcp->accept = iperf_tcp_accept;
2695     tcp->listen = iperf_tcp_listen;
2696     tcp->connect = iperf_tcp_connect;
2697     tcp->send = iperf_tcp_send;
2698     tcp->recv = iperf_tcp_recv;
2699     tcp->init = NULL;
2700     SLIST_INSERT_HEAD(&testp->protocols, tcp, protocols);
2701 
2702     udp = protocol_new();
2703     if (!udp) {
2704         protocol_free(tcp);
2705         return -1;
2706     }
2707 
2708     udp->id = Pudp;
2709     udp->name = "UDP";
2710     udp->accept = iperf_udp_accept;
2711     udp->listen = iperf_udp_listen;
2712     udp->connect = iperf_udp_connect;
2713     udp->send = iperf_udp_send;
2714     udp->recv = iperf_udp_recv;
2715     udp->init = iperf_udp_init;
2716     SLIST_INSERT_AFTER(tcp, udp, protocols);
2717 
2718     set_protocol(testp, Ptcp);
2719 
2720 #if defined(HAVE_SCTP_H)
2721     sctp = protocol_new();
2722     if (!sctp) {
2723         protocol_free(tcp);
2724         protocol_free(udp);
2725         return -1;
2726     }
2727 
2728     sctp->id = Psctp;
2729     sctp->name = "SCTP";
2730     sctp->accept = iperf_sctp_accept;
2731     sctp->listen = iperf_sctp_listen;
2732     sctp->connect = iperf_sctp_connect;
2733     sctp->send = iperf_sctp_send;
2734     sctp->recv = iperf_sctp_recv;
2735     sctp->init = iperf_sctp_init;
2736 
2737     SLIST_INSERT_AFTER(udp, sctp, protocols);
2738 #endif /* HAVE_SCTP_H */
2739 
2740     testp->on_new_stream = iperf_on_new_stream;
2741     testp->on_test_start = iperf_on_test_start;
2742     testp->on_connect = iperf_on_connect;
2743     testp->on_test_finish = iperf_on_test_finish;
2744 
2745     TAILQ_INIT(&testp->server_output_list);
2746 
2747     return 0;
2748 }
2749 
2750 
2751 /**************************************************************************/
2752 void
2753 iperf_free_test(struct iperf_test *test)
2754 {
2755     struct protocol *prot;
2756     struct iperf_stream *sp;
2757 
2758     /* Free streams */
2759     while (!SLIST_EMPTY(&test->streams)) {
2760         sp = SLIST_FIRST(&test->streams);
2761         SLIST_REMOVE_HEAD(&test->streams, streams);
2762         iperf_free_stream(sp);
2763     }
2764     if (test->server_hostname)
2765 	free(test->server_hostname);
2766     if (test->tmp_template)
2767 	free(test->tmp_template);
2768     if (test->bind_address)
2769 	free(test->bind_address);
2770     if (test->bind_dev)
2771 	free(test->bind_dev);
2772     if (!TAILQ_EMPTY(&test->xbind_addrs)) {
2773         struct xbind_entry *xbe;
2774 
2775         while (!TAILQ_EMPTY(&test->xbind_addrs)) {
2776             xbe = TAILQ_FIRST(&test->xbind_addrs);
2777             TAILQ_REMOVE(&test->xbind_addrs, xbe, link);
2778             if (xbe->ai)
2779                 freeaddrinfo(xbe->ai);
2780             free(xbe->name);
2781             free(xbe);
2782         }
2783     }
2784 #if defined(HAVE_SSL)
2785 
2786     if (test->server_rsa_private_key)
2787       EVP_PKEY_free(test->server_rsa_private_key);
2788     test->server_rsa_private_key = NULL;
2789 
2790     free(test->settings->authtoken);
2791     test->settings->authtoken = NULL;
2792 
2793     free(test->settings->client_username);
2794     test->settings->client_username = NULL;
2795 
2796     free(test->settings->client_password);
2797     test->settings->client_password = NULL;
2798 
2799     if (test->settings->client_rsa_pubkey)
2800       EVP_PKEY_free(test->settings->client_rsa_pubkey);
2801     test->settings->client_rsa_pubkey = NULL;
2802 #endif /* HAVE_SSL */
2803 
2804     if (test->settings)
2805     free(test->settings);
2806     if (test->title)
2807 	free(test->title);
2808     if (test->extra_data)
2809 	free(test->extra_data);
2810     if (test->congestion)
2811 	free(test->congestion);
2812     if (test->congestion_used)
2813 	free(test->congestion_used);
2814     if (test->remote_congestion_used)
2815 	free(test->remote_congestion_used);
2816     if (test->timestamp_format)
2817 	free(test->timestamp_format);
2818     if (test->omit_timer != NULL)
2819 	tmr_cancel(test->omit_timer);
2820     if (test->timer != NULL)
2821 	tmr_cancel(test->timer);
2822     if (test->stats_timer != NULL)
2823 	tmr_cancel(test->stats_timer);
2824     if (test->reporter_timer != NULL)
2825 	tmr_cancel(test->reporter_timer);
2826 
2827     /* Free protocol list */
2828     while (!SLIST_EMPTY(&test->protocols)) {
2829         prot = SLIST_FIRST(&test->protocols);
2830         SLIST_REMOVE_HEAD(&test->protocols, protocols);
2831         free(prot);
2832     }
2833 
2834     if (test->logfile) {
2835 	free(test->logfile);
2836 	test->logfile = NULL;
2837 	if (test->outfile) {
2838 	    fclose(test->outfile);
2839 	    test->outfile = NULL;
2840 	}
2841     }
2842 
2843     if (test->server_output_text) {
2844 	free(test->server_output_text);
2845 	test->server_output_text = NULL;
2846     }
2847 
2848     if (test->json_output_string) {
2849 	free(test->json_output_string);
2850 	test->json_output_string = NULL;
2851     }
2852 
2853     /* Free output line buffers, if any (on the server only) */
2854     struct iperf_textline *t;
2855     while (!TAILQ_EMPTY(&test->server_output_list)) {
2856 	t = TAILQ_FIRST(&test->server_output_list);
2857 	TAILQ_REMOVE(&test->server_output_list, t, textlineentries);
2858 	free(t->line);
2859 	free(t);
2860     }
2861 
2862     /* sctp_bindx: do not free the arguments, only the resolver results */
2863     if (!TAILQ_EMPTY(&test->xbind_addrs)) {
2864         struct xbind_entry *xbe;
2865 
2866         TAILQ_FOREACH(xbe, &test->xbind_addrs, link) {
2867             if (xbe->ai) {
2868                 freeaddrinfo(xbe->ai);
2869                 xbe->ai = NULL;
2870             }
2871         }
2872     }
2873 
2874     /* Free interval's traffic array for average rate calculations */
2875     if (test->bitrate_limit_intervals_traffic_bytes != NULL)
2876         free(test->bitrate_limit_intervals_traffic_bytes);
2877 
2878     /* XXX: Why are we setting these values to NULL? */
2879     // test->streams = NULL;
2880     test->stats_callback = NULL;
2881     test->reporter_callback = NULL;
2882     free(test);
2883 }
2884 
2885 
2886 void
2887 iperf_reset_test(struct iperf_test *test)
2888 {
2889     struct iperf_stream *sp;
2890     int i;
2891 
2892     /* Free streams */
2893     while (!SLIST_EMPTY(&test->streams)) {
2894         sp = SLIST_FIRST(&test->streams);
2895         SLIST_REMOVE_HEAD(&test->streams, streams);
2896         iperf_free_stream(sp);
2897     }
2898     if (test->omit_timer != NULL) {
2899 	tmr_cancel(test->omit_timer);
2900 	test->omit_timer = NULL;
2901     }
2902     if (test->timer != NULL) {
2903 	tmr_cancel(test->timer);
2904 	test->timer = NULL;
2905     }
2906     if (test->stats_timer != NULL) {
2907 	tmr_cancel(test->stats_timer);
2908 	test->stats_timer = NULL;
2909     }
2910     if (test->reporter_timer != NULL) {
2911 	tmr_cancel(test->reporter_timer);
2912 	test->reporter_timer = NULL;
2913     }
2914     test->done = 0;
2915 
2916     SLIST_INIT(&test->streams);
2917 
2918     if (test->remote_congestion_used)
2919         free(test->remote_congestion_used);
2920     test->remote_congestion_used = NULL;
2921     test->role = 's';
2922     test->mode = RECEIVER;
2923     test->sender_has_retransmits = 0;
2924     set_protocol(test, Ptcp);
2925     test->omit = OMIT;
2926     test->duration = DURATION;
2927     test->server_affinity = -1;
2928 #if defined(HAVE_CPUSET_SETAFFINITY)
2929     CPU_ZERO(&test->cpumask);
2930 #endif /* HAVE_CPUSET_SETAFFINITY */
2931     test->state = 0;
2932 
2933     test->ctrl_sck = -1;
2934     test->prot_listener = -1;
2935 
2936     test->bytes_sent = 0;
2937     test->blocks_sent = 0;
2938 
2939     test->bytes_received = 0;
2940     test->blocks_received = 0;
2941 
2942     test->other_side_has_retransmits = 0;
2943 
2944     test->bitrate_limit_stats_count = 0;
2945     test->bitrate_limit_last_interval_index = 0;
2946     test->bitrate_limit_exceeded = 0;
2947 
2948     for (i = 0; i < MAX_INTERVAL; i++)
2949         test->bitrate_limit_intervals_traffic_bytes[i] = 0;
2950 
2951     test->reverse = 0;
2952     test->bidirectional = 0;
2953     test->no_delay = 0;
2954 
2955     FD_ZERO(&test->read_set);
2956     FD_ZERO(&test->write_set);
2957 
2958     test->num_streams = 1;
2959     test->settings->socket_bufsize = 0;
2960     test->settings->blksize = DEFAULT_TCP_BLKSIZE;
2961     test->settings->rate = 0;
2962     test->settings->burst = 0;
2963     test->settings->mss = 0;
2964     test->settings->tos = 0;
2965     test->settings->dont_fragment = 0;
2966 
2967 #if defined(HAVE_SSL)
2968     if (test->settings->authtoken) {
2969         free(test->settings->authtoken);
2970         test->settings->authtoken = NULL;
2971     }
2972     if (test->settings->client_username) {
2973         free(test->settings->client_username);
2974         test->settings->client_username = NULL;
2975     }
2976     if (test->settings->client_password) {
2977         free(test->settings->client_password);
2978         test->settings->client_password = NULL;
2979     }
2980     if (test->settings->client_rsa_pubkey) {
2981         EVP_PKEY_free(test->settings->client_rsa_pubkey);
2982         test->settings->client_rsa_pubkey = NULL;
2983     }
2984 #endif /* HAVE_SSL */
2985 
2986     memset(test->cookie, 0, COOKIE_SIZE);
2987     test->multisend = 10;	/* arbitrary */
2988     test->udp_counters_64bit = 0;
2989     if (test->title) {
2990 	free(test->title);
2991 	test->title = NULL;
2992     }
2993     if (test->extra_data) {
2994 	free(test->extra_data);
2995 	test->extra_data = NULL;
2996     }
2997 
2998     /* Free output line buffers, if any (on the server only) */
2999     struct iperf_textline *t;
3000     while (!TAILQ_EMPTY(&test->server_output_list)) {
3001 	t = TAILQ_FIRST(&test->server_output_list);
3002 	TAILQ_REMOVE(&test->server_output_list, t, textlineentries);
3003 	free(t->line);
3004 	free(t);
3005     }
3006 }
3007 
3008 
3009 /* Reset all of a test's stats back to zero.  Called when the omitting
3010 ** period is over.
3011 */
3012 void
3013 iperf_reset_stats(struct iperf_test *test)
3014 {
3015     struct iperf_time now;
3016     struct iperf_stream *sp;
3017     struct iperf_stream_result *rp;
3018 
3019     test->bytes_sent = 0;
3020     test->blocks_sent = 0;
3021     iperf_time_now(&now);
3022     SLIST_FOREACH(sp, &test->streams, streams) {
3023 	sp->omitted_packet_count = sp->packet_count;
3024         sp->omitted_cnt_error = sp->cnt_error;
3025         sp->omitted_outoforder_packets = sp->outoforder_packets;
3026 	sp->jitter = 0;
3027 	rp = sp->result;
3028         rp->bytes_sent_omit = rp->bytes_sent;
3029         rp->bytes_received = 0;
3030         rp->bytes_sent_this_interval = rp->bytes_received_this_interval = 0;
3031 	if (test->sender_has_retransmits == 1) {
3032 	    struct iperf_interval_results ir; /* temporary results structure */
3033 	    save_tcpinfo(sp, &ir);
3034 	    rp->stream_prev_total_retrans = get_total_retransmits(&ir);
3035 	}
3036 	rp->stream_retrans = 0;
3037 	rp->start_time = now;
3038     }
3039 }
3040 
3041 
3042 /**************************************************************************/
3043 
3044 /**
3045  * Gather statistics during a test.
3046  * This function works for both the client and server side.
3047  */
3048 void
3049 iperf_stats_callback(struct iperf_test *test)
3050 {
3051     struct iperf_stream *sp;
3052     struct iperf_stream_result *rp = NULL;
3053     struct iperf_interval_results *irp, temp;
3054     struct iperf_time temp_time;
3055     iperf_size_t total_interval_bytes_transferred = 0;
3056 
3057     temp.omitted = test->omitting;
3058     SLIST_FOREACH(sp, &test->streams, streams) {
3059         rp = sp->result;
3060 	temp.bytes_transferred = sp->sender ? rp->bytes_sent_this_interval : rp->bytes_received_this_interval;
3061 
3062         // Total bytes transferred this interval
3063 	total_interval_bytes_transferred += rp->bytes_sent_this_interval + rp->bytes_received_this_interval;
3064 
3065 	irp = TAILQ_LAST(&rp->interval_results, irlisthead);
3066         /* result->end_time contains timestamp of previous interval */
3067         if ( irp != NULL ) /* not the 1st interval */
3068             memcpy(&temp.interval_start_time, &rp->end_time, sizeof(struct iperf_time));
3069         else /* or use timestamp from beginning */
3070             memcpy(&temp.interval_start_time, &rp->start_time, sizeof(struct iperf_time));
3071         /* now save time of end of this interval */
3072         iperf_time_now(&rp->end_time);
3073         memcpy(&temp.interval_end_time, &rp->end_time, sizeof(struct iperf_time));
3074         iperf_time_diff(&temp.interval_start_time, &temp.interval_end_time, &temp_time);
3075         temp.interval_duration = iperf_time_in_secs(&temp_time);
3076 	if (test->protocol->id == Ptcp) {
3077 	    if ( has_tcpinfo()) {
3078 		save_tcpinfo(sp, &temp);
3079 		if (test->sender_has_retransmits == 1) {
3080 		    long total_retrans = get_total_retransmits(&temp);
3081 		    temp.interval_retrans = total_retrans - rp->stream_prev_total_retrans;
3082 		    rp->stream_retrans += temp.interval_retrans;
3083 		    rp->stream_prev_total_retrans = total_retrans;
3084 
3085 		    temp.snd_cwnd = get_snd_cwnd(&temp);
3086 		    if (temp.snd_cwnd > rp->stream_max_snd_cwnd) {
3087 			rp->stream_max_snd_cwnd = temp.snd_cwnd;
3088 		    }
3089 
3090 		    temp.snd_wnd = get_snd_wnd(&temp);
3091 		    if (temp.snd_wnd > rp->stream_max_snd_wnd) {
3092 			rp->stream_max_snd_wnd = temp.snd_wnd;
3093 		    }
3094 
3095 		    temp.rtt = get_rtt(&temp);
3096 		    if (temp.rtt > rp->stream_max_rtt) {
3097 			rp->stream_max_rtt = temp.rtt;
3098 		    }
3099 		    if (rp->stream_min_rtt == 0 ||
3100 			temp.rtt < rp->stream_min_rtt) {
3101 			rp->stream_min_rtt = temp.rtt;
3102 		    }
3103 		    rp->stream_sum_rtt += temp.rtt;
3104 		    rp->stream_count_rtt++;
3105 
3106 		    temp.rttvar = get_rttvar(&temp);
3107 		    temp.pmtu = get_pmtu(&temp);
3108 		}
3109 	    }
3110 	} else {
3111 	    if (irp == NULL) {
3112 		temp.interval_packet_count = sp->packet_count;
3113 		temp.interval_outoforder_packets = sp->outoforder_packets;
3114 		temp.interval_cnt_error = sp->cnt_error;
3115 	    } else {
3116 		temp.interval_packet_count = sp->packet_count - irp->packet_count;
3117 		temp.interval_outoforder_packets = sp->outoforder_packets - irp->outoforder_packets;
3118 		temp.interval_cnt_error = sp->cnt_error - irp->cnt_error;
3119 	    }
3120 	    temp.packet_count = sp->packet_count;
3121 	    temp.jitter = sp->jitter;
3122 	    temp.outoforder_packets = sp->outoforder_packets;
3123 	    temp.cnt_error = sp->cnt_error;
3124 	}
3125         add_to_interval_list(rp, &temp);
3126         rp->bytes_sent_this_interval = rp->bytes_received_this_interval = 0;
3127     }
3128 
3129     /* Verify that total server's throughput is not above specified limit */
3130     if (test->role == 's') {
3131 	iperf_check_total_rate(test, total_interval_bytes_transferred);
3132     }
3133 }
3134 
3135 /**
3136  * Print intermediate results during a test (interval report).
3137  * Uses print_interval_results to print the results for each stream,
3138  * then prints an interval summary for all streams in this
3139  * interval.
3140  */
3141 static void
3142 iperf_print_intermediate(struct iperf_test *test)
3143 {
3144     struct iperf_stream *sp = NULL;
3145     struct iperf_interval_results *irp;
3146     struct iperf_time temp_time;
3147     cJSON *json_interval;
3148     cJSON *json_interval_streams;
3149 
3150     int lower_mode, upper_mode;
3151     int current_mode;
3152 
3153     /*
3154      * Due to timing oddities, there can be cases, especially on the
3155      * server side, where at the end of a test there is a fairly short
3156      * interval with no data transferred.  This could caused by
3157      * the control and data flows sharing the same path in the network,
3158      * and having the control messages for stopping the test being
3159      * queued behind the data packets.
3160      *
3161      * We'd like to try to omit that last interval when it happens, to
3162      * avoid cluttering data and output with useless stuff.
3163      * So we're going to try to ignore very short intervals (less than
3164      * 10% of the interval time) that have no data.
3165      */
3166     int interval_ok = 0;
3167     SLIST_FOREACH(sp, &test->streams, streams) {
3168 	irp = TAILQ_LAST(&sp->result->interval_results, irlisthead);
3169 	if (irp) {
3170 	    iperf_time_diff(&irp->interval_start_time, &irp->interval_end_time, &temp_time);
3171 	    double interval_len = iperf_time_in_secs(&temp_time);
3172 	    if (test->debug) {
3173 		printf("interval_len %f bytes_transferred %" PRIu64 "\n", interval_len, irp->bytes_transferred);
3174 	    }
3175 
3176 	    /*
3177 	     * If the interval is at least 10% the normal interval
3178 	     * length, or if there were actual bytes transferred,
3179 	     * then we want to keep this interval.
3180 	     */
3181 	    if (interval_len >= test->stats_interval * 0.10 ||
3182 		irp->bytes_transferred > 0) {
3183 		interval_ok = 1;
3184 		if (test->debug) {
3185 		    printf("interval forces keep\n");
3186 		}
3187 	    }
3188 	}
3189     }
3190     if (!interval_ok) {
3191 	if (test->debug) {
3192 	    printf("ignoring short interval with no data\n");
3193 	}
3194 	return;
3195     }
3196 
3197     if (test->json_output) {
3198         json_interval = cJSON_CreateObject();
3199 	if (json_interval == NULL)
3200 	    return;
3201 	cJSON_AddItemToArray(test->json_intervals, json_interval);
3202         json_interval_streams = cJSON_CreateArray();
3203 	if (json_interval_streams == NULL)
3204 	    return;
3205 	cJSON_AddItemToObject(json_interval, "streams", json_interval_streams);
3206     } else {
3207         json_interval = NULL;
3208         json_interval_streams = NULL;
3209     }
3210 
3211     /*
3212      * We must to sum streams separately.
3213      * For bidirectional mode we must to display
3214      * information about sender and receiver streams.
3215      * For client side we must handle sender streams
3216      * firstly and receiver streams for server side.
3217      * The following design allows us to do this.
3218      */
3219 
3220     if (test->mode == BIDIRECTIONAL) {
3221         if (test->role == 'c') {
3222             lower_mode = -1;
3223             upper_mode = 0;
3224         } else {
3225             lower_mode = 0;
3226             upper_mode = 1;
3227         }
3228     } else {
3229         lower_mode = test->mode;
3230         upper_mode = lower_mode;
3231     }
3232 
3233 
3234     for (current_mode = lower_mode; current_mode <= upper_mode; ++current_mode) {
3235         char ubuf[UNIT_LEN];
3236         char nbuf[UNIT_LEN];
3237         char mbuf[UNIT_LEN];
3238         char zbuf[] = "          ";
3239 
3240         iperf_size_t bytes = 0;
3241         double bandwidth;
3242         int retransmits = 0;
3243         double start_time, end_time;
3244 
3245         int total_packets = 0, lost_packets = 0;
3246         double avg_jitter = 0.0, lost_percent;
3247         int stream_must_be_sender = current_mode * current_mode;
3248 
3249         /*  Print stream role just for bidirectional mode. */
3250 
3251         if (test->mode == BIDIRECTIONAL) {
3252             sprintf(mbuf, "[%s-%s]", stream_must_be_sender?"TX":"RX", test->role == 'c'?"C":"S");
3253         } else {
3254             mbuf[0] = '\0';
3255             zbuf[0] = '\0';
3256         }
3257 
3258         SLIST_FOREACH(sp, &test->streams, streams) {
3259             if (sp->sender == stream_must_be_sender) {
3260                 print_interval_results(test, sp, json_interval_streams);
3261                 /* sum up all streams */
3262                 irp = TAILQ_LAST(&sp->result->interval_results, irlisthead);
3263                 if (irp == NULL) {
3264                     iperf_err(test,
3265                             "iperf_print_intermediate error: interval_results is NULL");
3266                     return;
3267                 }
3268                 bytes += irp->bytes_transferred;
3269                 if (test->protocol->id == Ptcp) {
3270                     if (test->sender_has_retransmits == 1) {
3271                         retransmits += irp->interval_retrans;
3272                     }
3273                 } else {
3274                     total_packets += irp->interval_packet_count;
3275                     lost_packets += irp->interval_cnt_error;
3276                     avg_jitter += irp->jitter;
3277                 }
3278             }
3279         }
3280 
3281         /* next build string with sum of all streams */
3282         if (test->num_streams > 1 || test->json_output) {
3283             sp = SLIST_FIRST(&test->streams); /* reset back to 1st stream */
3284             /* Only do this of course if there was a first stream */
3285             if (sp) {
3286 	    irp = TAILQ_LAST(&sp->result->interval_results, irlisthead);    /* use 1st stream for timing info */
3287 
3288 	    unit_snprintf(ubuf, UNIT_LEN, (double) bytes, 'A');
3289 	    bandwidth = (double) bytes / (double) irp->interval_duration;
3290 	    unit_snprintf(nbuf, UNIT_LEN, bandwidth, test->settings->unit_format);
3291 
3292 	    iperf_time_diff(&sp->result->start_time,&irp->interval_start_time, &temp_time);
3293 	    start_time = iperf_time_in_secs(&temp_time);
3294 	    iperf_time_diff(&sp->result->start_time,&irp->interval_end_time, &temp_time);
3295 	    end_time = iperf_time_in_secs(&temp_time);
3296                 if (test->protocol->id == Ptcp || test->protocol->id == Psctp) {
3297                     if (test->sender_has_retransmits == 1 && stream_must_be_sender) {
3298                         /* Interval sum, TCP with retransmits. */
3299                         if (test->json_output)
3300                             cJSON_AddItemToObject(json_interval, "sum", iperf_json_printf("start: %f  end: %f  seconds: %f  bytes: %d  bits_per_second: %f  retransmits: %d  omitted: %b sender: %b", (double) start_time, (double) end_time, (double) irp->interval_duration, (int64_t) bytes, bandwidth * 8, (int64_t) retransmits, irp->omitted, stream_must_be_sender)); /* XXX irp->omitted or test->omitting? */
3301                         else
3302                             iperf_printf(test, report_sum_bw_retrans_format, mbuf, start_time, end_time, ubuf, nbuf, retransmits, irp->omitted?report_omitted:""); /* XXX irp->omitted or test->omitting? */
3303                     } else {
3304                         /* Interval sum, TCP without retransmits. */
3305                         if (test->json_output)
3306                             cJSON_AddItemToObject(json_interval, "sum", iperf_json_printf("start: %f  end: %f  seconds: %f  bytes: %d  bits_per_second: %f  omitted: %b sender: %b", (double) start_time, (double) end_time, (double) irp->interval_duration, (int64_t) bytes, bandwidth * 8, test->omitting, stream_must_be_sender));
3307                         else
3308                             iperf_printf(test, report_sum_bw_format, mbuf, start_time, end_time, ubuf, nbuf, test->omitting?report_omitted:"");
3309                     }
3310                 } else {
3311                     /* Interval sum, UDP. */
3312                     if (stream_must_be_sender) {
3313                         if (test->json_output)
3314                             cJSON_AddItemToObject(json_interval, "sum", iperf_json_printf("start: %f  end: %f  seconds: %f  bytes: %d  bits_per_second: %f  packets: %d  omitted: %b sender: %b", (double) start_time, (double) end_time, (double) irp->interval_duration, (int64_t) bytes, bandwidth * 8, (int64_t) total_packets, test->omitting, stream_must_be_sender));
3315                         else
3316                             iperf_printf(test, report_sum_bw_udp_sender_format, mbuf, start_time, end_time, ubuf, nbuf, zbuf, total_packets, test->omitting?report_omitted:"");
3317                     } else {
3318                         avg_jitter /= test->num_streams;
3319                         if (total_packets > 0) {
3320                             lost_percent = 100.0 * lost_packets / total_packets;
3321                         }
3322                         else {
3323                             lost_percent = 0.0;
3324                         }
3325                         if (test->json_output)
3326                             cJSON_AddItemToObject(json_interval, "sum", iperf_json_printf("start: %f  end: %f  seconds: %f  bytes: %d  bits_per_second: %f  jitter_ms: %f  lost_packets: %d  packets: %d  lost_percent: %f  omitted: %b sender: %b", (double) start_time, (double) end_time, (double) irp->interval_duration, (int64_t) bytes, bandwidth * 8, (double) avg_jitter * 1000.0, (int64_t) lost_packets, (int64_t) total_packets, (double) lost_percent, test->omitting, stream_must_be_sender));
3327                         else
3328                             iperf_printf(test, report_sum_bw_udp_format, mbuf, start_time, end_time, ubuf, nbuf, avg_jitter * 1000.0, lost_packets, total_packets, lost_percent, test->omitting?report_omitted:"");
3329                     }
3330                 }
3331             }
3332         }
3333     }
3334 }
3335 
3336 /**
3337  * Print overall summary statistics at the end of a test.
3338  */
3339 static void
3340 iperf_print_results(struct iperf_test *test)
3341 {
3342 
3343     cJSON *json_summary_streams = NULL;
3344 
3345     int lower_mode, upper_mode;
3346     int current_mode;
3347 
3348     int tmp_sender_has_retransmits = test->sender_has_retransmits;
3349 
3350     /* print final summary for all intervals */
3351 
3352     if (test->json_output) {
3353         json_summary_streams = cJSON_CreateArray();
3354 	if (json_summary_streams == NULL)
3355 	    return;
3356 	cJSON_AddItemToObject(test->json_end, "streams", json_summary_streams);
3357     } else {
3358 	iperf_printf(test, "%s", report_bw_separator);
3359 	if (test->verbose)
3360 	    iperf_printf(test, "%s", report_summary);
3361 	if (test->protocol->id == Ptcp || test->protocol->id == Psctp) {
3362 	    if (test->sender_has_retransmits || test->other_side_has_retransmits) {
3363 	        if (test->bidirectional)
3364 	            iperf_printf(test, "%s", report_bw_retrans_header_bidir);
3365 	        else
3366 	            iperf_printf(test, "%s", report_bw_retrans_header);
3367 	    }
3368 	    else {
3369 	        if (test->bidirectional)
3370 	            iperf_printf(test, "%s", report_bw_header_bidir);
3371 	        else
3372 	            iperf_printf(test, "%s", report_bw_header);
3373 	    }
3374 	} else {
3375 	    if (test->bidirectional)
3376 	        iperf_printf(test, "%s", report_bw_udp_header_bidir);
3377 	    else
3378 	        iperf_printf(test, "%s", report_bw_udp_header);
3379 	}
3380     }
3381 
3382     /*
3383      * We must to sum streams separately.
3384      * For bidirectional mode we must to display
3385      * information about sender and receiver streams.
3386      * For client side we must handle sender streams
3387      * firstly and receiver streams for server side.
3388      * The following design allows us to do this.
3389      */
3390 
3391     if (test->mode == BIDIRECTIONAL) {
3392         if (test->role == 'c') {
3393             lower_mode = -1;
3394             upper_mode = 0;
3395         } else {
3396             lower_mode = 0;
3397             upper_mode = 1;
3398         }
3399     } else {
3400         lower_mode = test->mode;
3401         upper_mode = lower_mode;
3402     }
3403 
3404 
3405     for (current_mode = lower_mode; current_mode <= upper_mode; ++current_mode) {
3406         cJSON *json_summary_stream = NULL;
3407         int total_retransmits = 0;
3408         int total_packets = 0, lost_packets = 0;
3409         int sender_packet_count = 0, receiver_packet_count = 0; /* for this stream, this interval */
3410         int sender_total_packets = 0, receiver_total_packets = 0; /* running total */
3411         char ubuf[UNIT_LEN];
3412         char nbuf[UNIT_LEN];
3413         struct stat sb;
3414         char sbuf[UNIT_LEN];
3415         struct iperf_stream *sp = NULL;
3416         iperf_size_t bytes_sent, total_sent = 0;
3417         iperf_size_t bytes_received, total_received = 0;
3418         double start_time, end_time = 0.0, avg_jitter = 0.0, lost_percent = 0.0;
3419         double sender_time = 0.0, receiver_time = 0.0;
3420     struct iperf_time temp_time;
3421         double bandwidth;
3422 
3423         char mbuf[UNIT_LEN];
3424         int stream_must_be_sender = current_mode * current_mode;
3425 
3426 
3427         /*  Print stream role just for bidirectional mode. */
3428 
3429         if (test->mode == BIDIRECTIONAL) {
3430             sprintf(mbuf, "[%s-%s]", stream_must_be_sender?"TX":"RX", test->role == 'c'?"C":"S");
3431         } else {
3432             mbuf[0] = '\0';
3433         }
3434 
3435         /* Get sender_has_retransmits for each sender side (client and server) */
3436         if (test->mode == BIDIRECTIONAL && stream_must_be_sender)
3437             test->sender_has_retransmits = tmp_sender_has_retransmits;
3438         else if (test->mode == BIDIRECTIONAL && !stream_must_be_sender)
3439             test->sender_has_retransmits = test->other_side_has_retransmits;
3440 
3441         start_time = 0.;
3442         sp = SLIST_FIRST(&test->streams);
3443 
3444         /*
3445          * If there is at least one stream, then figure out the length of time
3446          * we were running the tests and print out some statistics about
3447          * the streams.  It's possible to not have any streams at all
3448          * if the client got interrupted before it got to do anything.
3449          *
3450          * Also note that we try to keep separate values for the sender
3451          * and receiver ending times.  Earlier iperf (3.1 and earlier)
3452          * servers didn't send that to the clients, so in this case we fall
3453          * back to using the client's ending timestamp.  The fallback is
3454          * basically emulating what iperf 3.1 did.
3455          */
3456 
3457         if (sp) {
3458     iperf_time_diff(&sp->result->start_time, &sp->result->end_time, &temp_time);
3459     end_time = iperf_time_in_secs(&temp_time);
3460         if (sp->sender) {
3461             sp->result->sender_time = end_time;
3462             if (sp->result->receiver_time == 0.0) {
3463                 sp->result->receiver_time = sp->result->sender_time;
3464             }
3465         }
3466         else {
3467             sp->result->receiver_time = end_time;
3468             if (sp->result->sender_time == 0.0) {
3469                 sp->result->sender_time = sp->result->receiver_time;
3470             }
3471         }
3472         sender_time = sp->result->sender_time;
3473         receiver_time = sp->result->receiver_time;
3474         SLIST_FOREACH(sp, &test->streams, streams) {
3475             if (sp->sender == stream_must_be_sender) {
3476                 if (test->json_output) {
3477                     json_summary_stream = cJSON_CreateObject();
3478                     if (json_summary_stream == NULL)
3479                         return;
3480                     cJSON_AddItemToArray(json_summary_streams, json_summary_stream);
3481                 }
3482 
3483                 bytes_sent = sp->result->bytes_sent - sp->result->bytes_sent_omit;
3484                 bytes_received = sp->result->bytes_received;
3485                 total_sent += bytes_sent;
3486                 total_received += bytes_received;
3487 
3488                 if (sp->sender) {
3489                     sender_packet_count = sp->packet_count;
3490                     receiver_packet_count = sp->peer_packet_count;
3491                 }
3492                 else {
3493                     sender_packet_count = sp->peer_packet_count;
3494                     receiver_packet_count = sp->packet_count;
3495                 }
3496 
3497                 if (test->protocol->id == Ptcp || test->protocol->id == Psctp) {
3498                     if (test->sender_has_retransmits) {
3499                         total_retransmits += sp->result->stream_retrans;
3500                     }
3501                 } else {
3502                     /*
3503                      * Running total of the total number of packets.  Use the sender packet count if we
3504                      * have it, otherwise use the receiver packet count.
3505                      */
3506                     int packet_count = sender_packet_count ? sender_packet_count : receiver_packet_count;
3507                     total_packets += (packet_count - sp->omitted_packet_count);
3508                     sender_total_packets += (sender_packet_count - sp->omitted_packet_count);
3509                     receiver_total_packets += (receiver_packet_count - sp->omitted_packet_count);
3510                     lost_packets += (sp->cnt_error - sp->omitted_cnt_error);
3511                     avg_jitter += sp->jitter;
3512                 }
3513 
3514                 unit_snprintf(ubuf, UNIT_LEN, (double) bytes_sent, 'A');
3515                 if (sender_time > 0.0) {
3516                     bandwidth = (double) bytes_sent / (double) sender_time;
3517                 }
3518                 else {
3519                     bandwidth = 0.0;
3520                 }
3521                 unit_snprintf(nbuf, UNIT_LEN, bandwidth, test->settings->unit_format);
3522                 if (test->protocol->id == Ptcp || test->protocol->id == Psctp) {
3523                     if (test->sender_has_retransmits) {
3524                         /* Sender summary, TCP and SCTP with retransmits. */
3525                         if (test->json_output)
3526                             cJSON_AddItemToObject(json_summary_stream, "sender", iperf_json_printf("socket: %d  start: %f  end: %f  seconds: %f  bytes: %d  bits_per_second: %f  retransmits: %d  max_snd_cwnd:  %d  max_snd_wnd:  %d  max_rtt:  %d  min_rtt:  %d  mean_rtt:  %d sender: %b", (int64_t) sp->socket, (double) start_time, (double) sender_time, (double) sender_time, (int64_t) bytes_sent, bandwidth * 8, (int64_t) sp->result->stream_retrans, (int64_t) sp->result->stream_max_snd_cwnd, (int64_t) sp->result->stream_max_snd_wnd, (int64_t) sp->result->stream_max_rtt, (int64_t) sp->result->stream_min_rtt, (int64_t) ((sp->result->stream_count_rtt == 0) ? 0 : sp->result->stream_sum_rtt / sp->result->stream_count_rtt), stream_must_be_sender));
3527                         else
3528                             if (test->role == 's' && !sp->sender) {
3529                                 if (test->verbose)
3530                                     iperf_printf(test, report_sender_not_available_format, sp->socket);
3531                             }
3532                             else {
3533                                 iperf_printf(test, report_bw_retrans_format, sp->socket, mbuf, start_time, sender_time, ubuf, nbuf, sp->result->stream_retrans, report_sender);
3534                             }
3535                     } else {
3536                         /* Sender summary, TCP and SCTP without retransmits. */
3537                         if (test->json_output)
3538                             cJSON_AddItemToObject(json_summary_stream, "sender", iperf_json_printf("socket: %d  start: %f  end: %f  seconds: %f  bytes: %d  bits_per_second: %f sender: %b", (int64_t) sp->socket, (double) start_time, (double) sender_time, (double) sender_time, (int64_t) bytes_sent, bandwidth * 8,  stream_must_be_sender));
3539                         else
3540                             if (test->role == 's' && !sp->sender) {
3541                                 if (test->verbose)
3542                                     iperf_printf(test, report_sender_not_available_format, sp->socket);
3543                             }
3544                             else {
3545                                 iperf_printf(test, report_bw_format, sp->socket, mbuf, start_time, sender_time, ubuf, nbuf, report_sender);
3546                             }
3547                     }
3548                 } else {
3549                     /* Sender summary, UDP. */
3550                     if (sender_packet_count - sp->omitted_packet_count > 0) {
3551                         lost_percent = 100.0 * (sp->cnt_error - sp->omitted_cnt_error) / (sender_packet_count - sp->omitted_packet_count);
3552                     }
3553                     else {
3554                         lost_percent = 0.0;
3555                     }
3556                     if (test->json_output) {
3557                         /*
3558                          * For hysterical raisins, we only emit one JSON
3559                          * object for the UDP summary, and it contains
3560                          * information for both the sender and receiver
3561                          * side.
3562                          *
3563                          * The JSON format as currently defined only includes one
3564                          * value for the number of packets.  We usually want that
3565                          * to be the sender's value (how many packets were sent
3566                          * by the sender).  However this value might not be
3567                          * available on the receiver in certain circumstances
3568                          * specifically on the server side for a normal test or
3569                          * the client side for a reverse-mode test.  If this
3570                          * is the case, then use the receiver's count of packets
3571                          * instead.
3572                          */
3573                         int packet_count = sender_packet_count ? sender_packet_count : receiver_packet_count;
3574                         cJSON_AddItemToObject(json_summary_stream, "udp", iperf_json_printf("socket: %d  start: %f  end: %f  seconds: %f  bytes: %d  bits_per_second: %f  jitter_ms: %f  lost_packets: %d  packets: %d  lost_percent: %f  out_of_order: %d sender: %b", (int64_t) sp->socket, (double) start_time, (double) sender_time, (double) sender_time, (int64_t) bytes_sent, bandwidth * 8, (double) sp->jitter * 1000.0, (int64_t) (sp->cnt_error - sp->omitted_cnt_error), (int64_t) (packet_count - sp->omitted_packet_count), (double) lost_percent, (int64_t) (sp->outoforder_packets - sp->omitted_outoforder_packets), stream_must_be_sender));
3575                     }
3576                     else {
3577                         /*
3578                          * Due to ordering of messages on the control channel,
3579                          * the server cannot report on client-side summary
3580                          * statistics.  If we're the server, omit one set of
3581                          * summary statistics to avoid giving meaningless
3582                          * results.
3583                          */
3584                         if (test->role == 's' && !sp->sender) {
3585                             if (test->verbose)
3586                                 iperf_printf(test, report_sender_not_available_format, sp->socket);
3587                         }
3588                         else {
3589                             iperf_printf(test, report_bw_udp_format, sp->socket, mbuf, start_time, sender_time, ubuf, nbuf, 0.0, 0, (sender_packet_count - sp->omitted_packet_count), (double) 0, report_sender);
3590                         }
3591                         if ((sp->outoforder_packets - sp->omitted_outoforder_packets) > 0)
3592                           iperf_printf(test, report_sum_outoforder, mbuf, start_time, sender_time, (sp->outoforder_packets - sp->omitted_outoforder_packets));
3593                     }
3594                 }
3595 
3596                 if (sp->diskfile_fd >= 0) {
3597                     if (fstat(sp->diskfile_fd, &sb) == 0) {
3598                         /* In the odd case that it's a zero-sized file, say it was all transferred. */
3599                         int percent_sent = 100, percent_received = 100;
3600                         if (sb.st_size > 0) {
3601                             percent_sent = (int) ( ( (double) bytes_sent / (double) sb.st_size ) * 100.0 );
3602                             percent_received = (int) ( ( (double) bytes_received / (double) sb.st_size ) * 100.0 );
3603                         }
3604                         unit_snprintf(sbuf, UNIT_LEN, (double) sb.st_size, 'A');
3605                         if (test->json_output)
3606                             cJSON_AddItemToObject(json_summary_stream, "diskfile", iperf_json_printf("sent: %d  received: %d  size: %d  percent_sent: %d  percent_received: %d  filename: %s", (int64_t) bytes_sent, (int64_t) bytes_received, (int64_t) sb.st_size, (int64_t) percent_sent, (int64_t) percent_received, test->diskfile_name));
3607                         else
3608                             if (stream_must_be_sender) {
3609                                 iperf_printf(test, report_diskfile, ubuf, sbuf, percent_sent, test->diskfile_name);
3610                             }
3611                             else {
3612                                 unit_snprintf(ubuf, UNIT_LEN, (double) bytes_received, 'A');
3613                                 iperf_printf(test, report_diskfile, ubuf, sbuf, percent_received, test->diskfile_name);
3614                             }
3615                     }
3616                 }
3617 
3618                 unit_snprintf(ubuf, UNIT_LEN, (double) bytes_received, 'A');
3619                 if (receiver_time > 0) {
3620                     bandwidth = (double) bytes_received / (double) receiver_time;
3621                 }
3622                 else {
3623                     bandwidth = 0.0;
3624                 }
3625                 unit_snprintf(nbuf, UNIT_LEN, bandwidth, test->settings->unit_format);
3626                 if (test->protocol->id == Ptcp || test->protocol->id == Psctp) {
3627                     /* Receiver summary, TCP and SCTP */
3628                     if (test->json_output)
3629                         cJSON_AddItemToObject(json_summary_stream, "receiver", iperf_json_printf("socket: %d  start: %f  end: %f  seconds: %f  bytes: %d  bits_per_second: %f sender: %b", (int64_t) sp->socket, (double) start_time, (double) receiver_time, (double) end_time, (int64_t) bytes_received, bandwidth * 8, stream_must_be_sender));
3630                     else
3631                         if (test->role == 's' && sp->sender) {
3632                             if (test->verbose)
3633                                 iperf_printf(test, report_receiver_not_available_format, sp->socket);
3634                         }
3635                         else {
3636                             iperf_printf(test, report_bw_format, sp->socket, mbuf, start_time, receiver_time, ubuf, nbuf, report_receiver);
3637                         }
3638                 }
3639                 else {
3640                     /*
3641                      * Receiver summary, UDP.  Note that JSON was emitted with
3642                      * the sender summary, so we only deal with human-readable
3643                      * data here.
3644                      */
3645                     if (! test->json_output) {
3646                         if (receiver_packet_count - sp->omitted_packet_count > 0) {
3647                             lost_percent = 100.0 * (sp->cnt_error - sp->omitted_cnt_error) / (receiver_packet_count - sp->omitted_packet_count);
3648                         }
3649                         else {
3650                             lost_percent = 0.0;
3651                         }
3652 
3653                         if (test->role == 's' && sp->sender) {
3654                             if (test->verbose)
3655                                 iperf_printf(test, report_receiver_not_available_format, sp->socket);
3656                         }
3657                         else {
3658                             iperf_printf(test, report_bw_udp_format, sp->socket, mbuf, start_time, receiver_time, ubuf, nbuf, sp->jitter * 1000.0, (sp->cnt_error - sp->omitted_cnt_error), (receiver_packet_count - sp->omitted_packet_count), lost_percent, report_receiver);
3659                         }
3660                     }
3661                 }
3662             }
3663         }
3664         }
3665 
3666         if (test->num_streams > 1 || test->json_output) {
3667             unit_snprintf(ubuf, UNIT_LEN, (double) total_sent, 'A');
3668             /* If no tests were run, arbitrarily set bandwidth to 0. */
3669             if (sender_time > 0.0) {
3670                 bandwidth = (double) total_sent / (double) sender_time;
3671             }
3672             else {
3673                 bandwidth = 0.0;
3674             }
3675             unit_snprintf(nbuf, UNIT_LEN, bandwidth, test->settings->unit_format);
3676             if (test->protocol->id == Ptcp || test->protocol->id == Psctp) {
3677                 if (test->sender_has_retransmits) {
3678                     /* Summary sum, TCP with retransmits. */
3679                     if (test->json_output)
3680                         cJSON_AddItemToObject(test->json_end, "sum_sent", iperf_json_printf("start: %f  end: %f  seconds: %f  bytes: %d  bits_per_second: %f  retransmits: %d sender: %b", (double) start_time, (double) sender_time, (double) sender_time, (int64_t) total_sent, bandwidth * 8, (int64_t) total_retransmits, stream_must_be_sender));
3681                     else
3682                         if (test->role == 's' && !stream_must_be_sender) {
3683                             if (test->verbose)
3684                                 iperf_printf(test, report_sender_not_available_summary_format, "SUM");
3685                         }
3686                         else {
3687                           iperf_printf(test, report_sum_bw_retrans_format, mbuf, start_time, sender_time, ubuf, nbuf, total_retransmits, report_sender);
3688                         }
3689                 } else {
3690                     /* Summary sum, TCP without retransmits. */
3691                     if (test->json_output)
3692                         cJSON_AddItemToObject(test->json_end, "sum_sent", iperf_json_printf("start: %f  end: %f  seconds: %f  bytes: %d  bits_per_second: %f sender: %b", (double) start_time, (double) sender_time, (double) sender_time, (int64_t) total_sent, bandwidth * 8, stream_must_be_sender));
3693                     else
3694                         if (test->role == 's' && !stream_must_be_sender) {
3695                             if (test->verbose)
3696                                 iperf_printf(test, report_sender_not_available_summary_format, "SUM");
3697                         }
3698                         else {
3699                             iperf_printf(test, report_sum_bw_format, mbuf, start_time, sender_time, ubuf, nbuf, report_sender);
3700                         }
3701                 }
3702                 unit_snprintf(ubuf, UNIT_LEN, (double) total_received, 'A');
3703                 /* If no tests were run, set received bandwidth to 0 */
3704                 if (receiver_time > 0.0) {
3705                     bandwidth = (double) total_received / (double) receiver_time;
3706                 }
3707                 else {
3708                     bandwidth = 0.0;
3709                 }
3710                 unit_snprintf(nbuf, UNIT_LEN, bandwidth, test->settings->unit_format);
3711                 if (test->json_output)
3712                     cJSON_AddItemToObject(test->json_end, "sum_received", iperf_json_printf("start: %f  end: %f  seconds: %f  bytes: %d  bits_per_second: %f sender: %b", (double) start_time, (double) receiver_time, (double) receiver_time, (int64_t) total_received, bandwidth * 8, stream_must_be_sender));
3713                 else
3714                     if (test->role == 's' && stream_must_be_sender) {
3715                         if (test->verbose)
3716                             iperf_printf(test, report_receiver_not_available_summary_format, "SUM");
3717                     }
3718                     else {
3719                         iperf_printf(test, report_sum_bw_format, mbuf, start_time, receiver_time, ubuf, nbuf, report_receiver);
3720                     }
3721             } else {
3722                 /* Summary sum, UDP. */
3723                 avg_jitter /= test->num_streams;
3724                 /* If no packets were sent, arbitrarily set loss percentage to 0. */
3725                 if (total_packets > 0) {
3726                     lost_percent = 100.0 * lost_packets / total_packets;
3727                 }
3728                 else {
3729                     lost_percent = 0.0;
3730                 }
3731                 if (test->json_output) {
3732                     /*
3733                      * Original, summary structure. Using this
3734                      * structure is not recommended due to
3735                      * ambiguities between the sender and receiver.
3736                      */
3737                     cJSON_AddItemToObject(test->json_end, "sum", iperf_json_printf("start: %f  end: %f  seconds: %f  bytes: %d  bits_per_second: %f  jitter_ms: %f  lost_packets: %d  packets: %d  lost_percent: %f sender: %b", (double) start_time, (double) receiver_time, (double) receiver_time, (int64_t) total_sent, bandwidth * 8, (double) avg_jitter * 1000.0, (int64_t) lost_packets, (int64_t) total_packets, (double) lost_percent, stream_must_be_sender));
3738                     /*
3739                      * Separate sum_sent and sum_received structures.
3740                      * Using these structures to get the most complete
3741                      * information about UDP transfer.
3742                      */
3743                     cJSON_AddItemToObject(test->json_end, "sum_sent", iperf_json_printf("start: %f  end: %f  seconds: %f  bytes: %d  bits_per_second: %f  jitter_ms: %f  lost_packets: %d  packets: %d  lost_percent: %f  sender: %b", (double) start_time, (double) sender_time, (double) sender_time, (int64_t) total_sent, (double) total_sent * 8 / sender_time, (double) 0.0, (int64_t) 0, (int64_t) sender_total_packets, (double) 0.0, 1));
3744                     cJSON_AddItemToObject(test->json_end, "sum_received", iperf_json_printf("start: %f  end: %f  seconds: %f  bytes: %d  bits_per_second: %f  jitter_ms: %f  lost_packets: %d  packets: %d  lost_percent: %f  sender: %b", (double) start_time, (double) receiver_time, (double) receiver_time, (int64_t) total_received, (double) total_received * 8 / receiver_time, (double) avg_jitter * 1000.0, (int64_t) lost_packets, (int64_t) receiver_total_packets, (double) lost_percent, 0));
3745                 } else {
3746                     /*
3747                      * On the client we have both sender and receiver overall summary
3748                      * stats.  On the server we have only the side that was on the
3749                      * server.  Output whatever we have.
3750                      */
3751                     if (! (test->role == 's' && !stream_must_be_sender) ) {
3752                         unit_snprintf(ubuf, UNIT_LEN, (double) total_sent, 'A');
3753                         iperf_printf(test, report_sum_bw_udp_format, mbuf, start_time, sender_time, ubuf, nbuf, 0.0, 0, sender_total_packets, 0.0, "sender");
3754                     }
3755                     if (! (test->role == 's' && stream_must_be_sender) ) {
3756 
3757                         unit_snprintf(ubuf, UNIT_LEN, (double) total_received, 'A');
3758                         /* Compute received bandwidth. */
3759                         if (end_time > 0.0) {
3760                             bandwidth = (double) total_received / (double) receiver_time;
3761                         }
3762                         else {
3763                             bandwidth = 0.0;
3764                         }
3765                         unit_snprintf(nbuf, UNIT_LEN, bandwidth, test->settings->unit_format);
3766                         iperf_printf(test, report_sum_bw_udp_format, mbuf, start_time, receiver_time, ubuf, nbuf, avg_jitter * 1000.0, lost_packets, receiver_total_packets, lost_percent, "receiver");
3767                     }
3768                 }
3769             }
3770         }
3771 
3772         if (test->json_output && current_mode == upper_mode) {
3773             cJSON_AddItemToObject(test->json_end, "cpu_utilization_percent", iperf_json_printf("host_total: %f  host_user: %f  host_system: %f  remote_total: %f  remote_user: %f  remote_system: %f", (double) test->cpu_util[0], (double) test->cpu_util[1], (double) test->cpu_util[2], (double) test->remote_cpu_util[0], (double) test->remote_cpu_util[1], (double) test->remote_cpu_util[2]));
3774             if (test->protocol->id == Ptcp) {
3775                 char *snd_congestion = NULL, *rcv_congestion = NULL;
3776                 if (stream_must_be_sender) {
3777                     snd_congestion = test->congestion_used;
3778                     rcv_congestion = test->remote_congestion_used;
3779                 }
3780                 else {
3781                     snd_congestion = test->remote_congestion_used;
3782                     rcv_congestion = test->congestion_used;
3783                 }
3784                 if (snd_congestion) {
3785                     cJSON_AddStringToObject(test->json_end, "sender_tcp_congestion", snd_congestion);
3786                 }
3787                 if (rcv_congestion) {
3788                     cJSON_AddStringToObject(test->json_end, "receiver_tcp_congestion", rcv_congestion);
3789                 }
3790             }
3791         }
3792         else {
3793             if (test->verbose) {
3794                 if (stream_must_be_sender) {
3795                     if (test->bidirectional) {
3796                         iperf_printf(test, report_cpu, report_local, stream_must_be_sender?report_sender:report_receiver, test->cpu_util[0], test->cpu_util[1], test->cpu_util[2], report_remote, stream_must_be_sender?report_receiver:report_sender, test->remote_cpu_util[0], test->remote_cpu_util[1], test->remote_cpu_util[2]);
3797                         iperf_printf(test, report_cpu, report_local, !stream_must_be_sender?report_sender:report_receiver, test->cpu_util[0], test->cpu_util[1], test->cpu_util[2], report_remote, !stream_must_be_sender?report_receiver:report_sender, test->remote_cpu_util[0], test->remote_cpu_util[1], test->remote_cpu_util[2]);
3798                     } else
3799                         iperf_printf(test, report_cpu, report_local, stream_must_be_sender?report_sender:report_receiver, test->cpu_util[0], test->cpu_util[1], test->cpu_util[2], report_remote, stream_must_be_sender?report_receiver:report_sender, test->remote_cpu_util[0], test->remote_cpu_util[1], test->remote_cpu_util[2]);
3800                 }
3801                 if (test->protocol->id == Ptcp) {
3802                     char *snd_congestion = NULL, *rcv_congestion = NULL;
3803                     if (stream_must_be_sender) {
3804                         snd_congestion = test->congestion_used;
3805                         rcv_congestion = test->remote_congestion_used;
3806                     }
3807                     else {
3808                         snd_congestion = test->remote_congestion_used;
3809                         rcv_congestion = test->congestion_used;
3810                     }
3811                     if (snd_congestion) {
3812                         iperf_printf(test, "snd_tcp_congestion %s\n", snd_congestion);
3813                     }
3814                     if (rcv_congestion) {
3815                         iperf_printf(test, "rcv_tcp_congestion %s\n", rcv_congestion);
3816                     }
3817                 }
3818             }
3819 
3820             /* Print server output if we're on the client and it was requested/provided */
3821             if (test->role == 'c' && iperf_get_test_get_server_output(test) && !test->json_output) {
3822                 if (test->json_server_output) {
3823 		    char *str = cJSON_Print(test->json_server_output);
3824                     iperf_printf(test, "\nServer JSON output:\n%s\n", str);
3825 		    cJSON_free(str);
3826                     cJSON_Delete(test->json_server_output);
3827                     test->json_server_output = NULL;
3828                 }
3829                 if (test->server_output_text) {
3830                     iperf_printf(test, "\nServer output:\n%s\n", test->server_output_text);
3831                     test->server_output_text = NULL;
3832                 }
3833             }
3834         }
3835     }
3836 
3837     /* Set real sender_has_retransmits for current side */
3838     if (test->mode == BIDIRECTIONAL)
3839         test->sender_has_retransmits = tmp_sender_has_retransmits;
3840 }
3841 
3842 /**************************************************************************/
3843 
3844 /**
3845  * Main report-printing callback.
3846  * Prints results either during a test (interval report only) or
3847  * after the entire test has been run (last interval report plus
3848  * overall summary).
3849  */
3850 void
3851 iperf_reporter_callback(struct iperf_test *test)
3852 {
3853     switch (test->state) {
3854         case TEST_RUNNING:
3855         case STREAM_RUNNING:
3856             /* print interval results for each stream */
3857             iperf_print_intermediate(test);
3858             break;
3859         case TEST_END:
3860         case DISPLAY_RESULTS:
3861             iperf_print_intermediate(test);
3862             iperf_print_results(test);
3863             break;
3864     }
3865 
3866 }
3867 
3868 /**
3869  * Print the interval results for one stream.
3870  * This function needs to know about the overall test so it can determine the
3871  * context for printing headers, separators, etc.
3872  */
3873 static void
3874 print_interval_results(struct iperf_test *test, struct iperf_stream *sp, cJSON *json_interval_streams)
3875 {
3876     char ubuf[UNIT_LEN];
3877     char nbuf[UNIT_LEN];
3878     char cbuf[UNIT_LEN];
3879     char mbuf[UNIT_LEN];
3880     char zbuf[] = "          ";
3881     double st = 0., et = 0.;
3882     struct iperf_time temp_time;
3883     struct iperf_interval_results *irp = NULL;
3884     double bandwidth, lost_percent;
3885 
3886     if (test->mode == BIDIRECTIONAL) {
3887         sprintf(mbuf, "[%s-%s]", sp->sender?"TX":"RX", test->role == 'c'?"C":"S");
3888     } else {
3889         mbuf[0] = '\0';
3890         zbuf[0] = '\0';
3891     }
3892 
3893     irp = TAILQ_LAST(&sp->result->interval_results, irlisthead); /* get last entry in linked list */
3894     if (irp == NULL) {
3895 	iperf_err(test, "print_interval_results error: interval_results is NULL");
3896         return;
3897     }
3898     if (!test->json_output) {
3899 	/* First stream? */
3900 	if (sp == SLIST_FIRST(&test->streams)) {
3901 	    /* It it's the first interval, print the header;
3902 	    ** else if there's more than one stream, print the separator;
3903 	    ** else nothing.
3904 	    */
3905 	    if (iperf_time_compare(&sp->result->start_time, &irp->interval_start_time) == 0) {
3906 		if (test->protocol->id == Ptcp || test->protocol->id == Psctp) {
3907 		    if (test->sender_has_retransmits == 1) {
3908 		        if (test->bidirectional)
3909 		            iperf_printf(test, "%s", report_bw_retrans_cwnd_header_bidir);
3910 		        else
3911 		            iperf_printf(test, "%s", report_bw_retrans_cwnd_header);
3912 		    }
3913 		    else {
3914 	                if (test->bidirectional)
3915 	                    iperf_printf(test, "%s", report_bw_header_bidir);
3916 	                else
3917 	                    iperf_printf(test, "%s", report_bw_header);
3918 	            }
3919 		} else {
3920 		    if (test->mode == SENDER) {
3921 		        iperf_printf(test, "%s", report_bw_udp_sender_header);
3922 		    } else if (test->mode == RECEIVER){
3923 		        iperf_printf(test, "%s", report_bw_udp_header);
3924 		    } else {
3925 		        /* BIDIRECTIONAL */
3926 		        iperf_printf(test, "%s", report_bw_udp_header_bidir);
3927 		    }
3928 		}
3929 	    } else if (test->num_streams > 1)
3930 		iperf_printf(test, "%s", report_bw_separator);
3931 	}
3932     }
3933 
3934     unit_snprintf(ubuf, UNIT_LEN, (double) (irp->bytes_transferred), 'A');
3935     if (irp->interval_duration > 0.0) {
3936 	bandwidth = (double) irp->bytes_transferred / (double) irp->interval_duration;
3937     }
3938     else {
3939 	bandwidth = 0.0;
3940     }
3941     unit_snprintf(nbuf, UNIT_LEN, bandwidth, test->settings->unit_format);
3942 
3943     iperf_time_diff(&sp->result->start_time, &irp->interval_start_time, &temp_time);
3944     st = iperf_time_in_secs(&temp_time);
3945     iperf_time_diff(&sp->result->start_time, &irp->interval_end_time, &temp_time);
3946     et = iperf_time_in_secs(&temp_time);
3947 
3948     if (test->protocol->id == Ptcp || test->protocol->id == Psctp) {
3949 	if (test->sender_has_retransmits == 1 && sp->sender) {
3950 	    /* Interval, TCP with retransmits. */
3951 	    if (test->json_output)
3952 		cJSON_AddItemToArray(json_interval_streams, iperf_json_printf("socket: %d  start: %f  end: %f  seconds: %f  bytes: %d  bits_per_second: %f  retransmits: %d  snd_cwnd:  %d  snd_wnd:  %d  rtt:  %d  rttvar: %d  pmtu: %d  omitted: %b sender: %b", (int64_t) sp->socket, (double) st, (double) et, (double) irp->interval_duration, (int64_t) irp->bytes_transferred, bandwidth * 8, (int64_t) irp->interval_retrans, (int64_t) irp->snd_cwnd, (int64_t) irp->snd_wnd, (int64_t) irp->rtt, (int64_t) irp->rttvar, (int64_t) irp->pmtu, irp->omitted, sp->sender));
3953 	    else {
3954 		unit_snprintf(cbuf, UNIT_LEN, irp->snd_cwnd, 'A');
3955 		iperf_printf(test, report_bw_retrans_cwnd_format, sp->socket, mbuf, st, et, ubuf, nbuf, irp->interval_retrans, cbuf, irp->omitted?report_omitted:"");
3956 	    }
3957 	} else {
3958 	    /* Interval, TCP without retransmits. */
3959 	    if (test->json_output)
3960 		cJSON_AddItemToArray(json_interval_streams, iperf_json_printf("socket: %d  start: %f  end: %f  seconds: %f  bytes: %d  bits_per_second: %f  omitted: %b sender: %b", (int64_t) sp->socket, (double) st, (double) et, (double) irp->interval_duration, (int64_t) irp->bytes_transferred, bandwidth * 8, irp->omitted, sp->sender));
3961 	    else
3962 		iperf_printf(test, report_bw_format, sp->socket, mbuf, st, et, ubuf, nbuf, irp->omitted?report_omitted:"");
3963 	}
3964     } else {
3965 	/* Interval, UDP. */
3966 	if (sp->sender) {
3967 	    if (test->json_output)
3968 		cJSON_AddItemToArray(json_interval_streams, iperf_json_printf("socket: %d  start: %f  end: %f  seconds: %f  bytes: %d  bits_per_second: %f  packets: %d  omitted: %b sender: %b", (int64_t) sp->socket, (double) st, (double) et, (double) irp->interval_duration, (int64_t) irp->bytes_transferred, bandwidth * 8, (int64_t) irp->interval_packet_count, irp->omitted, sp->sender));
3969 	    else
3970 		iperf_printf(test, report_bw_udp_sender_format, sp->socket, mbuf, st, et, ubuf, nbuf, zbuf, irp->interval_packet_count, irp->omitted?report_omitted:"");
3971 	} else {
3972 	    if (irp->interval_packet_count > 0) {
3973 		lost_percent = 100.0 * irp->interval_cnt_error / irp->interval_packet_count;
3974 	    }
3975 	    else {
3976 		lost_percent = 0.0;
3977 	    }
3978 	    if (test->json_output)
3979 		cJSON_AddItemToArray(json_interval_streams, iperf_json_printf("socket: %d  start: %f  end: %f  seconds: %f  bytes: %d  bits_per_second: %f  jitter_ms: %f  lost_packets: %d  packets: %d  lost_percent: %f  omitted: %b sender: %b", (int64_t) sp->socket, (double) st, (double) et, (double) irp->interval_duration, (int64_t) irp->bytes_transferred, bandwidth * 8, (double) irp->jitter * 1000.0, (int64_t) irp->interval_cnt_error, (int64_t) irp->interval_packet_count, (double) lost_percent, irp->omitted, sp->sender));
3980 	    else
3981 		iperf_printf(test, report_bw_udp_format, sp->socket, mbuf, st, et, ubuf, nbuf, irp->jitter * 1000.0, irp->interval_cnt_error, irp->interval_packet_count, lost_percent, irp->omitted?report_omitted:"");
3982 	}
3983     }
3984 
3985     if (test->logfile || test->forceflush)
3986         iflush(test);
3987 }
3988 
3989 /**************************************************************************/
3990 void
3991 iperf_free_stream(struct iperf_stream *sp)
3992 {
3993     struct iperf_interval_results *irp, *nirp;
3994 
3995     /* XXX: need to free interval list too! */
3996     munmap(sp->buffer, sp->test->settings->blksize);
3997     close(sp->buffer_fd);
3998     if (sp->diskfile_fd >= 0)
3999 	close(sp->diskfile_fd);
4000     for (irp = TAILQ_FIRST(&sp->result->interval_results); irp != NULL; irp = nirp) {
4001         nirp = TAILQ_NEXT(irp, irlistentries);
4002         free(irp);
4003     }
4004     free(sp->result);
4005     if (sp->send_timer != NULL)
4006 	tmr_cancel(sp->send_timer);
4007     free(sp);
4008 }
4009 
4010 /**************************************************************************/
4011 struct iperf_stream *
4012 iperf_new_stream(struct iperf_test *test, int s, int sender)
4013 {
4014     struct iperf_stream *sp;
4015     int ret = 0;
4016 
4017     char template[1024];
4018     if (test->tmp_template) {
4019         snprintf(template, sizeof(template) / sizeof(char), "%s", test->tmp_template);
4020     } else {
4021         //find the system temporary dir *unix, windows, cygwin support
4022         char* tempdir = getenv("TMPDIR");
4023         if (tempdir == 0){
4024             tempdir = getenv("TEMP");
4025         }
4026         if (tempdir == 0){
4027             tempdir = getenv("TMP");
4028         }
4029         if (tempdir == 0){
4030             tempdir = "/tmp";
4031         }
4032         snprintf(template, sizeof(template) / sizeof(char), "%s/iperf3.XXXXXX", tempdir);
4033     }
4034 
4035     sp = (struct iperf_stream *) malloc(sizeof(struct iperf_stream));
4036     if (!sp) {
4037         i_errno = IECREATESTREAM;
4038         return NULL;
4039     }
4040 
4041     memset(sp, 0, sizeof(struct iperf_stream));
4042 
4043     sp->sender = sender;
4044     sp->test = test;
4045     sp->settings = test->settings;
4046     sp->result = (struct iperf_stream_result *) malloc(sizeof(struct iperf_stream_result));
4047     if (!sp->result) {
4048         free(sp);
4049         i_errno = IECREATESTREAM;
4050         return NULL;
4051     }
4052 
4053     memset(sp->result, 0, sizeof(struct iperf_stream_result));
4054     TAILQ_INIT(&sp->result->interval_results);
4055 
4056     /* Create and randomize the buffer */
4057     sp->buffer_fd = mkstemp(template);
4058     if (sp->buffer_fd == -1) {
4059         i_errno = IECREATESTREAM;
4060         free(sp->result);
4061         free(sp);
4062         return NULL;
4063     }
4064     if (unlink(template) < 0) {
4065         i_errno = IECREATESTREAM;
4066         free(sp->result);
4067         free(sp);
4068         return NULL;
4069     }
4070     if (ftruncate(sp->buffer_fd, test->settings->blksize) < 0) {
4071         i_errno = IECREATESTREAM;
4072         free(sp->result);
4073         free(sp);
4074         return NULL;
4075     }
4076     sp->buffer = (char *) mmap(NULL, test->settings->blksize, PROT_READ|PROT_WRITE, MAP_PRIVATE, sp->buffer_fd, 0);
4077     if (sp->buffer == MAP_FAILED) {
4078         i_errno = IECREATESTREAM;
4079         free(sp->result);
4080         free(sp);
4081         return NULL;
4082     }
4083     sp->pending_size = 0;
4084 
4085     /* Set socket */
4086     sp->socket = s;
4087 
4088     sp->snd = test->protocol->send;
4089     sp->rcv = test->protocol->recv;
4090 
4091     if (test->diskfile_name != (char*) 0) {
4092 	sp->diskfile_fd = open(test->diskfile_name, sender ? O_RDONLY : (O_WRONLY|O_CREAT|O_TRUNC), S_IRUSR|S_IWUSR);
4093 	if (sp->diskfile_fd == -1) {
4094 	    i_errno = IEFILE;
4095             munmap(sp->buffer, sp->test->settings->blksize);
4096             free(sp->result);
4097             free(sp);
4098 	    return NULL;
4099 	}
4100         sp->snd2 = sp->snd;
4101 	sp->snd = diskfile_send;
4102 	sp->rcv2 = sp->rcv;
4103 	sp->rcv = diskfile_recv;
4104     } else
4105         sp->diskfile_fd = -1;
4106 
4107     /* Initialize stream */
4108     if (test->repeating_payload)
4109         fill_with_repeating_pattern(sp->buffer, test->settings->blksize);
4110     else
4111         ret = readentropy(sp->buffer, test->settings->blksize);
4112 
4113     if ((ret < 0) || (iperf_init_stream(sp, test) < 0)) {
4114         close(sp->buffer_fd);
4115         munmap(sp->buffer, sp->test->settings->blksize);
4116         free(sp->result);
4117         free(sp);
4118         return NULL;
4119     }
4120     iperf_add_stream(test, sp);
4121 
4122     return sp;
4123 }
4124 
4125 /**************************************************************************/
4126 int
4127 iperf_init_stream(struct iperf_stream *sp, struct iperf_test *test)
4128 {
4129     socklen_t len;
4130     int opt;
4131 
4132     len = sizeof(struct sockaddr_storage);
4133     if (getsockname(sp->socket, (struct sockaddr *) &sp->local_addr, &len) < 0) {
4134         i_errno = IEINITSTREAM;
4135         return -1;
4136     }
4137     len = sizeof(struct sockaddr_storage);
4138     if (getpeername(sp->socket, (struct sockaddr *) &sp->remote_addr, &len) < 0) {
4139         i_errno = IEINITSTREAM;
4140         return -1;
4141     }
4142 
4143     /* Set IP TOS */
4144     if ((opt = test->settings->tos)) {
4145         if (getsockdomain(sp->socket) == AF_INET6) {
4146 #ifdef IPV6_TCLASS
4147             if (setsockopt(sp->socket, IPPROTO_IPV6, IPV6_TCLASS, &opt, sizeof(opt)) < 0) {
4148                 i_errno = IESETCOS;
4149                 return -1;
4150             }
4151 #else
4152             i_errno = IESETCOS;
4153             return -1;
4154 #endif
4155         } else {
4156             if (setsockopt(sp->socket, IPPROTO_IP, IP_TOS, &opt, sizeof(opt)) < 0) {
4157                 i_errno = IESETTOS;
4158                 return -1;
4159             }
4160         }
4161     }
4162 
4163 #if defined(HAVE_DONT_FRAGMENT)
4164     /* Set Don't Fragment (DF). Only applicable to IPv4/UDP tests. */
4165     if (iperf_get_test_protocol_id(test) == Pudp &&
4166         getsockdomain(sp->socket) == AF_INET &&
4167         iperf_get_dont_fragment(test)) {
4168 
4169         /*
4170          * There are multiple implementations of this feature depending on the OS.
4171          * We need to handle separately Linux, UNIX, and Windows, as well as
4172          * the case that DF isn't supported at all (such as on macOS).
4173          */
4174 #if defined(IP_MTU_DISCOVER) /* Linux version of IP_DONTFRAG */
4175         opt = IP_PMTUDISC_DO;
4176         if (setsockopt(sp->socket, IPPROTO_IP, IP_MTU_DISCOVER, &opt, sizeof(opt)) < 0) {
4177             i_errno = IESETDONTFRAGMENT;
4178             return -1;
4179         }
4180 #else
4181 #if defined(IP_DONTFRAG) /* UNIX does IP_DONTFRAG */
4182         opt = 1;
4183         if (setsockopt(sp->socket, IPPROTO_IP, IP_DONTFRAG, &opt, sizeof(opt)) < 0) {
4184             i_errno = IESETDONTFRAGMENT;
4185             return -1;
4186         }
4187 #else
4188 #if defined(IP_DONTFRAGMENT) /* Windows does IP_DONTFRAGMENT */
4189         opt = 1;
4190         if (setsockopt(sp->socket, IPPROTO_IP, IP_DONTFRAGMENT, &opt, sizeof(opt)) < 0) {
4191             i_errno = IESETDONTFRAGMENT;
4192             return -1;
4193         }
4194 #else
4195 	i_errno = IESETDONTFRAGMENT;
4196 	return -1;
4197 #endif /* IP_DONTFRAGMENT */
4198 #endif /* IP_DONTFRAG */
4199 #endif /* IP_MTU_DISCOVER */
4200     }
4201 #endif /* HAVE_DONT_FRAGMENT */
4202     return 0;
4203 }
4204 
4205 /**************************************************************************/
4206 void
4207 iperf_add_stream(struct iperf_test *test, struct iperf_stream *sp)
4208 {
4209     int i;
4210     struct iperf_stream *n, *prev;
4211 
4212     if (SLIST_EMPTY(&test->streams)) {
4213         SLIST_INSERT_HEAD(&test->streams, sp, streams);
4214         sp->id = 1;
4215     } else {
4216         // for (n = test->streams, i = 2; n->next; n = n->next, ++i);
4217         i = 2;
4218         SLIST_FOREACH(n, &test->streams, streams) {
4219             prev = n;
4220             ++i;
4221         }
4222         SLIST_INSERT_AFTER(prev, sp, streams);
4223         sp->id = i;
4224     }
4225 }
4226 
4227 /* This pair of routines gets inserted into the snd/rcv function pointers
4228 ** when there's a -F flag. They handle the file stuff and call the real
4229 ** snd/rcv functions, which have been saved in snd2/rcv2.
4230 **
4231 ** The advantage of doing it this way is that in the much more common
4232 ** case of no -F flag, there is zero extra overhead.
4233 */
4234 
4235 static int
4236 diskfile_send(struct iperf_stream *sp)
4237 {
4238     int r;
4239     int buffer_left = sp->diskfile_left; // represents total data in buffer to be sent out
4240     static int rtot;
4241 
4242     /* if needed, read enough data from the disk to fill up the buffer */
4243     if (sp->diskfile_left < sp->test->settings->blksize && !sp->test->done) {
4244     	r = read(sp->diskfile_fd, sp->buffer, sp->test->settings->blksize -
4245     		 sp->diskfile_left);
4246         buffer_left += r;
4247     	rtot += r;
4248     	if (sp->test->debug) {
4249     	    printf("read %d bytes from file, %d total\n", r, rtot);
4250     	}
4251 
4252         // If the buffer doesn't contain a full buffer at this point,
4253         // adjust the size of the data to send.
4254         if (buffer_left != sp->test->settings->blksize) {
4255             if (sp->test->debug)
4256                 printf("possible eof\n");
4257             // setting data size to be sent,
4258             // which is less than full block/buffer size
4259             // (to be used by iperf_tcp_send, etc.)
4260             sp->pending_size = buffer_left;
4261         }
4262 
4263         // If there's no work left, we're done.
4264         if (buffer_left == 0) {
4265     	    sp->test->done = 1;
4266     	    if (sp->test->debug)
4267     		  printf("done\n");
4268     	}
4269     }
4270 
4271     // If there's no data left in the file or in the buffer, we're done.
4272     // No more data available to be sent.
4273     // Return without sending data to the network
4274     if( sp->test->done || buffer_left == 0 ){
4275         if (sp->test->debug)
4276               printf("already done\n");
4277         sp->test->done = 1;
4278         return 0;
4279     }
4280 
4281     r = sp->snd2(sp);
4282     if (r < 0) {
4283 	return r;
4284     }
4285     /*
4286      * Compute how much data is in the buffer but didn't get sent.
4287      * If there are bytes that got left behind, slide them to the
4288      * front of the buffer so they can hopefully go out on the next
4289      * pass.
4290      */
4291     sp->diskfile_left = buffer_left - r;
4292     if (sp->diskfile_left && sp->diskfile_left < sp->test->settings->blksize) {
4293 	memcpy(sp->buffer,
4294 	       sp->buffer + (sp->test->settings->blksize - sp->diskfile_left),
4295 	       sp->diskfile_left);
4296 	if (sp->test->debug)
4297 	    printf("Shifting %d bytes by %d\n", sp->diskfile_left, (sp->test->settings->blksize - sp->diskfile_left));
4298     }
4299     return r;
4300 }
4301 
4302 static int
4303 diskfile_recv(struct iperf_stream *sp)
4304 {
4305     int r;
4306 
4307     r = sp->rcv2(sp);
4308     if (r > 0) {
4309 	(void) write(sp->diskfile_fd, sp->buffer, r);
4310     }
4311     return r;
4312 }
4313 
4314 
4315 void
4316 iperf_catch_sigend(void (*handler)(int))
4317 {
4318 #ifdef SIGINT
4319     signal(SIGINT, handler);
4320 #endif
4321 #ifdef SIGTERM
4322     signal(SIGTERM, handler);
4323 #endif
4324 #ifdef SIGHUP
4325     signal(SIGHUP, handler);
4326 #endif
4327 }
4328 
4329 /**
4330  * Called as a result of getting a signal.
4331  * Depending on the current state of the test (and the role of this
4332  * process) compute and report one more set of ending statistics
4333  * before cleaning up and exiting.
4334  */
4335 void
4336 iperf_got_sigend(struct iperf_test *test)
4337 {
4338     /*
4339      * If we're the client, or if we're a server and running a test,
4340      * then dump out the accumulated stats so far.
4341      */
4342     if (test->role == 'c' ||
4343       (test->role == 's' && test->state == TEST_RUNNING)) {
4344 
4345 	test->done = 1;
4346 	cpu_util(test->cpu_util);
4347 	test->stats_callback(test);
4348 	test->state = DISPLAY_RESULTS; /* change local state only */
4349 	if (test->on_test_finish)
4350 	    test->on_test_finish(test);
4351 	test->reporter_callback(test);
4352     }
4353 
4354     if (test->ctrl_sck >= 0) {
4355 	test->state = (test->role == 'c') ? CLIENT_TERMINATE : SERVER_TERMINATE;
4356 	(void) Nwrite(test->ctrl_sck, (char*) &test->state, sizeof(signed char), Ptcp);
4357     }
4358     i_errno = (test->role == 'c') ? IECLIENTTERM : IESERVERTERM;
4359     iperf_errexit(test, "interrupt - %s", iperf_strerror(i_errno));
4360 }
4361 
4362 /* Try to write a PID file if requested, return -1 on an error. */
4363 int
4364 iperf_create_pidfile(struct iperf_test *test)
4365 {
4366     if (test->pidfile) {
4367 	int fd;
4368 	char buf[8];
4369 
4370 	/* See if the file already exists and we can read it. */
4371 	fd = open(test->pidfile, O_RDONLY, 0);
4372 	if (fd >= 0) {
4373 	    if (read(fd, buf, sizeof(buf) - 1) >= 0) {
4374 
4375 		/* We read some bytes, see if they correspond to a valid PID */
4376 		pid_t pid;
4377 		pid = atoi(buf);
4378 		if (pid > 0) {
4379 
4380 		    /* See if the process exists. */
4381 		    if (kill(pid, 0) == 0) {
4382 			/*
4383 			 * Make sure not to try to delete existing PID file by
4384 			 * scribbling over the pathname we'd use to refer to it.
4385 			 * Then exit with an error.
4386 			 */
4387 			free(test->pidfile);
4388 			test->pidfile = NULL;
4389 			iperf_errexit(test, "Another instance of iperf3 appears to be running");
4390 		    }
4391 		}
4392 	    }
4393 	}
4394 
4395 	/*
4396 	 * File didn't exist, we couldn't read it, or it didn't correspond to
4397 	 * a running process.  Try to create it.
4398 	 */
4399 	fd = open(test->pidfile, O_WRONLY | O_CREAT | O_TRUNC, S_IRUSR|S_IWUSR);
4400 	if (fd < 0) {
4401 	    return -1;
4402 	}
4403 	snprintf(buf, sizeof(buf), "%d", getpid()); /* no trailing newline */
4404 	if (write(fd, buf, strlen(buf)) < 0) {
4405 	    return -1;
4406 	}
4407 	if (close(fd) < 0) {
4408 	    return -1;
4409 	};
4410     }
4411     return 0;
4412 }
4413 
4414 /* Get rid of a PID file, return -1 on error. */
4415 int
4416 iperf_delete_pidfile(struct iperf_test *test)
4417 {
4418     if (test->pidfile) {
4419 	if (unlink(test->pidfile) < 0) {
4420 	    return -1;
4421 	}
4422     }
4423     return 0;
4424 }
4425 
4426 int
4427 iperf_json_start(struct iperf_test *test)
4428 {
4429     test->json_top = cJSON_CreateObject();
4430     if (test->json_top == NULL)
4431         return -1;
4432     test->json_start = cJSON_CreateObject();
4433     if (test->json_start == NULL)
4434         return -1;
4435     cJSON_AddItemToObject(test->json_top, "start", test->json_start);
4436     test->json_connected = cJSON_CreateArray();
4437     if (test->json_connected == NULL)
4438         return -1;
4439     cJSON_AddItemToObject(test->json_start, "connected", test->json_connected);
4440     test->json_intervals = cJSON_CreateArray();
4441     if (test->json_intervals == NULL)
4442         return -1;
4443     cJSON_AddItemToObject(test->json_top, "intervals", test->json_intervals);
4444     test->json_end = cJSON_CreateObject();
4445     if (test->json_end == NULL)
4446         return -1;
4447     cJSON_AddItemToObject(test->json_top, "end", test->json_end);
4448     return 0;
4449 }
4450 
4451 int
4452 iperf_json_finish(struct iperf_test *test)
4453 {
4454     if (test->title)
4455 	cJSON_AddStringToObject(test->json_top, "title", test->title);
4456     if (test->extra_data)
4457 	cJSON_AddStringToObject(test->json_top, "extra_data", test->extra_data);
4458     /* Include server output */
4459     if (test->json_server_output) {
4460 	cJSON_AddItemToObject(test->json_top, "server_output_json", test->json_server_output);
4461     }
4462     if (test->server_output_text) {
4463 	cJSON_AddStringToObject(test->json_top, "server_output_text", test->server_output_text);
4464     }
4465     // Get ASCII rendering of JSON structure.  Then make our
4466     // own copy of it and return the storage that cJSON allocated
4467     // on our behalf.  We keep our own copy around.
4468     char *str = cJSON_Print(test->json_top);
4469     if (str == NULL)
4470 	return -1;
4471     test->json_output_string = strdup(str);
4472     cJSON_free(str);
4473     if (test->json_output_string == NULL)
4474         return -1;
4475     fprintf(test->outfile, "%s\n", test->json_output_string);
4476     iflush(test);
4477     cJSON_Delete(test->json_top);
4478     test->json_top = test->json_start = test->json_connected = test->json_intervals = test->json_server_output = test->json_end = NULL;
4479     return 0;
4480 }
4481 
4482 
4483 /* CPU affinity stuff - Linux, FreeBSD, and Windows only. */
4484 
4485 int
4486 iperf_setaffinity(struct iperf_test *test, int affinity)
4487 {
4488 #if defined(HAVE_SCHED_SETAFFINITY)
4489     cpu_set_t cpu_set;
4490 
4491     CPU_ZERO(&cpu_set);
4492     CPU_SET(affinity, &cpu_set);
4493     if (sched_setaffinity(0, sizeof(cpu_set_t), &cpu_set) != 0) {
4494 	i_errno = IEAFFINITY;
4495         return -1;
4496     }
4497     return 0;
4498 #elif defined(HAVE_CPUSET_SETAFFINITY)
4499     cpuset_t cpumask;
4500 
4501     if(cpuset_getaffinity(CPU_LEVEL_WHICH, CPU_WHICH_PID, -1,
4502                           sizeof(cpuset_t), &test->cpumask) != 0) {
4503         i_errno = IEAFFINITY;
4504         return -1;
4505     }
4506 
4507     CPU_ZERO(&cpumask);
4508     CPU_SET(affinity, &cpumask);
4509 
4510     if(cpuset_setaffinity(CPU_LEVEL_WHICH,CPU_WHICH_PID, -1,
4511                           sizeof(cpuset_t), &cpumask) != 0) {
4512         i_errno = IEAFFINITY;
4513         return -1;
4514     }
4515     return 0;
4516 #elif defined(HAVE_SETPROCESSAFFINITYMASK)
4517 	HANDLE process = GetCurrentProcess();
4518 	DWORD_PTR processAffinityMask = 1 << affinity;
4519 
4520 	if (SetProcessAffinityMask(process, processAffinityMask) == 0) {
4521 		i_errno = IEAFFINITY;
4522 		return -1;
4523 	}
4524 	return 0;
4525 #else /* neither HAVE_SCHED_SETAFFINITY nor HAVE_CPUSET_SETAFFINITY nor HAVE_SETPROCESSAFFINITYMASK */
4526     i_errno = IEAFFINITY;
4527     return -1;
4528 #endif /* neither HAVE_SCHED_SETAFFINITY nor HAVE_CPUSET_SETAFFINITY nor HAVE_SETPROCESSAFFINITYMASK */
4529 }
4530 
4531 int
4532 iperf_clearaffinity(struct iperf_test *test)
4533 {
4534 #if defined(HAVE_SCHED_SETAFFINITY)
4535     cpu_set_t cpu_set;
4536     int i;
4537 
4538     CPU_ZERO(&cpu_set);
4539     for (i = 0; i < CPU_SETSIZE; ++i)
4540 	CPU_SET(i, &cpu_set);
4541     if (sched_setaffinity(0, sizeof(cpu_set_t), &cpu_set) != 0) {
4542 	i_errno = IEAFFINITY;
4543         return -1;
4544     }
4545     return 0;
4546 #elif defined(HAVE_CPUSET_SETAFFINITY)
4547     if(cpuset_setaffinity(CPU_LEVEL_WHICH,CPU_WHICH_PID, -1,
4548                           sizeof(cpuset_t), &test->cpumask) != 0) {
4549         i_errno = IEAFFINITY;
4550         return -1;
4551     }
4552     return 0;
4553 #elif defined(HAVE_SETPROCESSAFFINITYMASK)
4554 	HANDLE process = GetCurrentProcess();
4555 	DWORD_PTR processAffinityMask;
4556 	DWORD_PTR lpSystemAffinityMask;
4557 
4558 	if (GetProcessAffinityMask(process, &processAffinityMask, &lpSystemAffinityMask) == 0
4559 			|| SetProcessAffinityMask(process, lpSystemAffinityMask) == 0) {
4560 		i_errno = IEAFFINITY;
4561 		return -1;
4562 	}
4563 	return 0;
4564 #else /* neither HAVE_SCHED_SETAFFINITY nor HAVE_CPUSET_SETAFFINITY nor HAVE_SETPROCESSAFFINITYMASK */
4565     i_errno = IEAFFINITY;
4566     return -1;
4567 #endif /* neither HAVE_SCHED_SETAFFINITY nor HAVE_CPUSET_SETAFFINITY nor HAVE_SETPROCESSAFFINITYMASK */
4568 }
4569 
4570 static char iperf_timestr[100];
4571 static char linebuffer[1024];
4572 
4573 int
4574 iperf_printf(struct iperf_test *test, const char* format, ...)
4575 {
4576     va_list argp;
4577     int r = 0, r0;
4578     time_t now;
4579     struct tm *ltm = NULL;
4580     char *ct = NULL;
4581 
4582     /* Timestamp if requested */
4583     if (iperf_get_test_timestamps(test)) {
4584 	time(&now);
4585 	ltm = localtime(&now);
4586 	strftime(iperf_timestr, sizeof(iperf_timestr), iperf_get_test_timestamp_format(test), ltm);
4587 	ct = iperf_timestr;
4588     }
4589 
4590     /*
4591      * There are roughly two use cases here.  If we're the client,
4592      * want to print stuff directly to the output stream.
4593      * If we're the sender we might need to buffer up output to send
4594      * to the client.
4595      *
4596      * This doesn't make a whole lot of difference except there are
4597      * some chunks of output on the client (on particular the whole
4598      * of the server output with --get-server-output) that could
4599      * easily exceed the size of the line buffer, but which don't need
4600      * to be buffered up anyway.
4601      */
4602     if (test->role == 'c') {
4603 	if (ct) {
4604             r0 = fprintf(test->outfile, "%s", ct);
4605             if (r0 < 0)
4606                 return r0;
4607             r += r0;
4608 	}
4609 	if (test->title) {
4610 	    r0 = fprintf(test->outfile, "%s:  ", test->title);
4611             if (r0 < 0)
4612                 return r0;
4613             r += r0;
4614         }
4615 	va_start(argp, format);
4616 	r0 = vfprintf(test->outfile, format, argp);
4617 	va_end(argp);
4618         if (r0 < 0)
4619             return r0;
4620         r += r0;
4621     }
4622     else if (test->role == 's') {
4623 	if (ct) {
4624 	    r0 = snprintf(linebuffer, sizeof(linebuffer), "%s", ct);
4625             if (r0 < 0)
4626                 return r0;
4627             r += r0;
4628 	}
4629         /* Should always be true as long as sizeof(ct) < sizeof(linebuffer) */
4630         if (r < sizeof(linebuffer)) {
4631             va_start(argp, format);
4632             r0 = vsnprintf(linebuffer + r, sizeof(linebuffer) - r, format, argp);
4633             va_end(argp);
4634             if (r0 < 0)
4635                 return r0;
4636             r += r0;
4637         }
4638 	fprintf(test->outfile, "%s", linebuffer);
4639 
4640 	if (test->role == 's' && iperf_get_test_get_server_output(test)) {
4641 	    struct iperf_textline *l = (struct iperf_textline *) malloc(sizeof(struct iperf_textline));
4642 	    l->line = strdup(linebuffer);
4643 	    TAILQ_INSERT_TAIL(&(test->server_output_list), l, textlineentries);
4644 	}
4645     }
4646     return r;
4647 }
4648 
4649 int
4650 iflush(struct iperf_test *test)
4651 {
4652     return fflush(test->outfile);
4653 }
4654