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schweikert / fping / 20098393543

10 Dec 2025 12:20PM UTC coverage: 86.535% (-0.04%) from 86.573%
20098393543

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schweikert
json: simplify recv and timeout output (and code)

31 of 36 new or added lines in 1 file covered. (86.11%)

2 existing lines in 1 file now uncovered.

1581 of 1827 relevant lines covered (86.54%)

327.95 hits per line

Source File
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86.53
/src/fping.c
1
/*
2
 * fping: fast-ping, file-ping, favorite-ping, funky-ping
3
 *
4
 *   Ping a list of target hosts in a round robin fashion.
5
 *   A better ping overall.
6
 *
7
 * fping website:  http://www.fping.org
8
 *
9
 * Current maintainer of fping: David Schweikert
10
 * Please send suggestions and patches to: david@schweikert.ch
11
 *
12
 *
13
 * Original author:  Roland Schemers  <schemers@stanford.edu>
14
 * IPv6 Support:     Jeroen Massar    <jeroen@unfix.org / jeroen@ipng.nl>
15
 * Improved main loop: David Schweikert <david@schweikert.ch>
16
 * Debian Merge, TOS settings: Tobi Oetiker <tobi@oetiker.ch>
17
 * Bugfixes, byte order & senseful seq.-numbers: Stephan Fuhrmann (stephan.fuhrmann AT 1und1.de)
18
 *
19
 *
20
 * Redistribution and use in source and binary forms are permitted
21
 * provided that the above copyright notice and this paragraph are
22
 * duplicated in all such forms and that any documentation,
23
 * advertising materials, and other materials related to such
24
 * distribution and use acknowledge that the software was developed
25
 * by Stanford University.  The name of the University may not be used
26
 * to endorse or promote products derived from this software without
27
 * specific prior written permission.
28
 * THIS SOFTWARE IS PROVIDED ``AS IS'' AND WITHOUT ANY EXPRESS OR
29
 * IMPLIED WARRANTIES, INCLUDING, WITHOUT LIMITATION, THE IMPLIED
30
 * WARRANTIES OF MERCHANTIBILITY AND FITNESS FOR A PARTICULAR PURPOSE.
31
 */
32

33
#ifdef __cplusplus
34
extern "C" {
35
#endif /* __cplusplus */
36

37
#include "config.h"
38
#include "fping.h"
39
#include "options.h"
40
#include "optparse.h"
41

42
#include <errno.h>
43
#include <inttypes.h>
44
#include <limits.h>
45
#include <signal.h>
46
#include <stdarg.h>
47
#include <stdint.h>
48
#include <stdio.h>
49
#include <time.h>
50

51
#include "seqmap.h"
52

53
#ifdef HAVE_UNISTD_H
54
#include <unistd.h>
55
#endif /* HAVE_UNISTD_H */
56

57
#ifdef HAVE_STDLIB_H
58
#include <stdlib.h>
59
#endif /* HAVE_STDLIB_H */
60

61
#include <stddef.h>
62
#include <string.h>
63

64
#include <sys/socket.h>
65
#include <sys/time.h>
66
#include <sys/types.h>
67

68
#if HAVE_SYS_FILE_H
69
#include <sys/file.h>
70
#endif /* HAVE_SYS_FILE_H */
71

72
#ifdef IPV6
73
#include <netinet/icmp6.h>
74
#include <netinet/ip6.h>
75
#endif
76
#include <netinet/in_systm.h>
77

78
#include <netinet/ip.h>
79
#include <netinet/ip_icmp.h>
80

81
#include <arpa/inet.h>
82
#include <ctype.h>
83
#include <netdb.h>
84

85
#include <sys/select.h>
86

87
/*** compatibility ***/
88

89
/* Mac OS X's getaddrinfo() does not fail if we use an invalid combination,
90
 * e.g. AF_INET6 with "127.0.0.1". If we pass AI_UNUSABLE to flags, it behaves
91
 * like other platforms. But AI_UNUSABLE isn't available on other platforms,
92
 * and we can safely use 0 for flags instead.
93
 */
94
#ifndef AI_UNUSABLE
95
#define AI_UNUSABLE 0
96
#endif
97

98
/* MSG_TRUNC available on Linux kernel 2.2+, makes recvmsg return the full
99
 * length of the raw packet received, even if the buffer is smaller */
100
#ifndef MSG_TRUNC
101
#define MSG_TRUNC 0
102
#define RECV_BUFSIZE 4096
103
#else
104
#define RECV_BUFSIZE 128
105
#endif
106

107
/*** externals ***/
108

109
extern char *optarg;
110
extern int optind, opterr;
111
#ifndef h_errno
112
extern int h_errno;
113
#endif
114

115
#ifdef __cplusplus
116
}
117
#endif /* __cplusplus */
118

119
/*** Constants ***/
120

121
/* CLOCK_MONTONIC starts under macOS, OpenBSD and FreeBSD with undefined positive point and can not be use
122
 * see github PR #217
123
 * The configure script detect the predefined operating systems an set CLOCK_REALTIME using over ONLY_CLOCK_REALTIME variable
124
 */
125
#if HAVE_SO_TIMESTAMPNS || ONLY_CLOCK_REALTIME
126
#define CLOCKID CLOCK_REALTIME
127
#endif
128

129
#if !defined(CLOCKID)
130
#if defined(CLOCK_MONOTONIC)
131
#define CLOCKID CLOCK_MONOTONIC
132
#else
133
#define CLOCKID CLOCK_REALTIME
134
#endif
135
#endif
136

137
/*** Ping packet defines ***/
138

139
#define MAX_IP_PACKET 65535 /* (theoretical) max IPv4 packet size */
140
#define SIZE_IP_HDR 20 /* min IPv4 header size */
141
#define SIZE_ICMP_HDR 8 /* from ip_icmp.h */
142
#define MAX_PING_DATA (MAX_IP_PACKET - SIZE_IP_HDR - SIZE_ICMP_HDR)
143

144
#define MAX_GENERATE 131072 /* maximum number of hosts that -g can generate */
145
#define MAX_TARGET_NAME_LEN 255 /* maximum target name length read from file */
146

147
/* sized so as to be like traditional ping */
148
#define DEFAULT_PING_DATA_SIZE 56
149

150
/* ICMP Timestamp has a fixed payload size of 12 bytes */
151
#define ICMP_TIMESTAMP_DATA_SIZE 12
152

153
#ifdef FPING_SAFE_LIMITS
154
#define MIN_INTERVAL_MS 1 /* in millisec */
155
#define MIN_PERHOST_INTERVAL_MS 10 /* in millisec */
156
#else
157
#define MIN_INTERVAL_MS 0
158
/* Set a very low limit for the per-host interval, even if safe limits are
159
 * disabled, so that the memory allocation of the event storage is not
160
 * unreasonably high. 0.001 ms would mean in theory at least 592 mbps of data
161
 * sent to a single host, which probably doesn't make sense in any scenario. */
162
#define MIN_PERHOST_INTERVAL_MS 0.001
163
#endif
164

165
/* response time array flags */
166
#define RESP_WAITING -1
167
#define RESP_UNUSED -2
168
#define RESP_ERROR -3
169
#define RESP_TIMEOUT -4
170

171
/* debugging flags */
172
#if defined(DEBUG) || defined(_DEBUG)
173
#define DBG_TRACE 1
174
#define DBG_SENT_TIMES 2
175
#define DBG_RANDOM_LOSE_FEW 4
176
#define DBG_RANDOM_LOSE_MANY 8
177
#define DBG_PRINT_PER_SYSTEM 16
178
#define DBG_REPORT_ALL_RTTS 32
179
#endif /* DEBUG || _DEBUG */
180

181
/* Long names for ICMP packet types */
182
#define ICMP_TYPE_STR_MAX 18
183
char *icmp_type_str[19] = {
184
    "ICMP Echo Reply", /* 0 */
185
    "",
186
    "",
187
    "ICMP Unreachable", /* 3 */
188
    "ICMP Source Quench", /* 4 */
189
    "ICMP Redirect", /* 5 */
190
    "",
191
    "",
192
    "ICMP Echo", /* 8 */
193
    "",
194
    "",
195
    "ICMP Time Exceeded", /* 11 */
196
    "ICMP Parameter Problem", /* 12 */
197
    "ICMP Timestamp Request", /* 13 */
198
    "ICMP Timestamp Reply", /* 14 */
199
    "ICMP Information Request", /* 15 */
200
    "ICMP Information Reply", /* 16 */
201
    "ICMP Mask Request", /* 17 */
202
    "ICMP Mask Reply" /* 18 */
203
};
204

205
char *icmp_unreach_str[16] = {
206
    "ICMP Network Unreachable", /* 0 */
207
    "ICMP Host Unreachable", /* 1 */
208
    "ICMP Protocol Unreachable", /* 2 */
209
    "ICMP Port Unreachable", /* 3 */
210
    "ICMP Unreachable (Fragmentation Needed)", /* 4 */
211
    "ICMP Unreachable (Source Route Failed)", /* 5 */
212
    "ICMP Unreachable (Destination Network Unknown)", /* 6 */
213
    "ICMP Unreachable (Destination Host Unknown)", /* 7 */
214
    "ICMP Unreachable (Source Host Isolated)", /* 8 */
215
    "ICMP Unreachable (Communication with Network Prohibited)", /* 9 */
216
    "ICMP Unreachable (Communication with Host Prohibited)", /* 10 */
217
    "ICMP Unreachable (Network Unreachable For Type Of Service)", /* 11 */
218
    "ICMP Unreachable (Host Unreachable For Type Of Service)", /* 12 */
219
    "ICMP Unreachable (Communication Administratively Prohibited)", /* 13 */
220
    "ICMP Unreachable (Host Precedence Violation)", /* 14 */
221
    "ICMP Unreachable (Precedence cutoff in effect)" /* 15 */
222
};
223

224
#define ICMP_UNREACH_MAXTYPE 15
225

226
#ifdef IPV6
227
/* Long names for ICMPv6 unreachable codes */
228
#define ICMP6_UNREACH_MAXCODE 9
229
char *icmp6_unreach_str[ICMP6_UNREACH_MAXCODE + 1] = {
230
    "No route to destination", /* 0 */
231
    "Communication with destination administratively prohibited", /* 1 */
232
    "Beyond scope of source address", /* 2 */
233
    "Address unreachable", /* 3 */
234
    "Port unreachable", /* 4 */
235
    "Source address failed ingress/egress policy", /* 5 */
236
    "Reject route to destination", /* 6 */
237
    "Error in Source Routing Header", /* 7 */
238
    "Headers too long", /* 8 */
239
    "Error in P-Route", /* 9 */
240
};
241

242
/* Long names for ICMPv6 time exceeded codes */
243
#define ICMP6_TIME_EXCEEDED_MAXCODE 1
244
char *icmp6_time_exceeded_str[ICMP6_TIME_EXCEEDED_MAXCODE + 1] = {
245
    "Hop limit exceeded in transit", /* 0 */
246
    "Fragment reassembly time exceeded", /* 1 */
247
};
248

249
/* Long names for ICMPv6 parameter problem codes */
250
#define ICMP6_PARAM_PROB_MAXCODE 10
251
char *icmp6_param_prob_str[ICMP6_PARAM_PROB_MAXCODE + 1] = {
252
    "Erroneous header field encountered", /* 0 */
253
    "Unrecognized Next Header type encountered", /* 1 */
254
    "Unrecognized IPv6 option encountered", /* 2 */
255
    "IPv6 First Fragment has incomplete IPv6 Header Chain", /* 3 */
256
    "SR Upper-layer Header Error", /* 4 */
257
    "Unrecognized Next Header type encountered by intermediate node", /* 5 */
258
    "Extension header too big", /* 6 */
259
    "Extension header chain too long", /* 7 */
260
    "Too many extension headers", /* 8 */
261
    "Too many options in extension header", /* 9 */
262
    "Option too big", /* 10 */
263
};
264
#endif
265

266
typedef struct ip_header_result {
267
    int tos;
268
    int ttl;
269
    uint32_t otime_ms;
270
    uint32_t rtime_ms;
271
    uint32_t ttime_ms;
272
} IP_HEADER_RESULT;
273

274
IP_HEADER_RESULT default_ip_header_result() {
2,753✔
275
    return (IP_HEADER_RESULT){-1, -1, 0x80000000U, 0x80000000U, 0x80000000U};
2,753✔
276
}
277

278
struct event;
279
typedef struct host_entry {
280
    int i; /* index into array */
281
    char *name; /* name as given by user */
282
    char *host; /* text description of host */
283
    struct sockaddr_storage saddr; /* internet address */
284
    socklen_t saddr_len;
285
    int64_t timeout; /* time to wait for response */
286
    int64_t last_send_time; /* time of last packet sent */
287
    int num_sent; /* number of ping packets sent (for statistics) */
288
    int num_recv; /* number of pings received (duplicates ignored) */
289
    int num_recv_total; /* number of pings received, including duplicates */
290
    int64_t max_reply; /* longest response time */
291
    int64_t min_reply; /* shortest response time */
292
    int64_t total_time; /* sum of response times */
293
    /* _i -> splits (reset on every report interval) */
294
    int num_sent_i; /* number of ping packets sent */
295
    int num_recv_i; /* number of pings received */
296
    int64_t max_reply_i; /* longest response time */
297
    int64_t min_reply_i; /* shortest response time */
298
    int64_t total_time_i; /* sum of response times */
299
    int64_t *resp_times; /* individual response times */
300

301
    /* to avoid allocating two struct events each time that we send a ping, we
302
     * preallocate here two struct events for each ping that we might send for
303
     * this host. */
304
    struct event *event_storage_ping;
305
    struct event *event_storage_timeout;
306
} HOST_ENTRY;
307

308
int event_storage_count; /* how many events can be stored in host_entry->event_storage_xxx */
309

310
/* basic algorithm to ensure that we have correct data at all times:
311
 *
312
 * 1. when a ping is sent:
313
 *    - two events get added into event_queue:
314
 *      - t+PERIOD: ping event
315
 *      - t+TIMEOUT: timeout event
316
 *
317
 * 2. when a ping is received:
318
 *    - record statistics (increase num_sent and num_received)
319
 *    - remove timeout event (we store the event in seqmap, so that we can retrieve it when the response is received)
320
 *
321
 * 3. when a timeout happens:
322
 *    - record statistics (increase num_sent only)
323
 */
324

325
#define EV_TYPE_PING 1
326
#define EV_TYPE_TIMEOUT 2
327

328
struct event {
329
    struct event *ev_prev;
330
    struct event *ev_next;
331
    int64_t ev_time;
332
    struct host_entry *host;
333
    int ping_index;
334
};
335

336
struct event_queue {
337
    struct event *first;
338
    struct event *last;
339
};
340

341
/*** globals ***/
342

343
HOST_ENTRY **table = NULL; /* array of pointers to items in the list */
344

345
/* we keep two separate queues: a ping queue, for when the next ping should be
346
 * sent, and a timeout queue. the reason for having two separate queues is that
347
 * the ping period and the timeout value are different, so if we put them in
348
 * the same event queue, we would need to scan many more entries when inserting
349
 * into the sorted list.
350
 */
351
struct event_queue event_queue_ping;
352
struct event_queue event_queue_timeout;
353

354
char *prog;
355
int ident4 = 0; /* our icmp identity field */
356
int ident6 = 0;
357
const int sock_opt_on = 1; /* to activate a socket option */
358
int socket4 = -1;
359
int socktype4 = -1;
360
int using_sock_dgram4 = 0;
361
#ifndef IPV6
362
int hints_ai_family = AF_INET;
363
#else
364
int socket6 = -1;
365
int socktype6 = -1;
366
int hints_ai_family = AF_UNSPEC;
367
#endif
368

369
volatile sig_atomic_t status_snapshot = 0;
370
volatile sig_atomic_t finish_requested = 0;
371

372
unsigned int debugging = 0;
373

374
/* all time-related values are int64_t nanoseconds */
375
unsigned int retry = DEFAULT_RETRY;
376
int64_t timeout = (int64_t)DEFAULT_TIMEOUT * 1000000;
377
int64_t seqmap_timeout = (int64_t)DEFAULT_SEQMAP_TIMEOUT * 1000000;
378
int64_t interval = (int64_t)DEFAULT_INTERVAL * 1000000;
379
int64_t perhost_interval = (int64_t)DEFAULT_PERHOST_INTERVAL * 1000000;
380
float backoff = DEFAULT_BACKOFF_FACTOR;
381
unsigned int ping_data_size = DEFAULT_PING_DATA_SIZE;
382
unsigned int count = 1, min_reachable = 0;
383
unsigned int trials;
384
int64_t report_interval = 0;
385
unsigned int ttl = 0;
386
int src_addr_set = 0;
387
struct in_addr src_addr;
388
#ifdef IPV6
389
int src_addr6_set = 0;
390
struct in6_addr src_addr6;
391
#endif
392

393
/* global stats */
394
int64_t max_reply = 0;
395
int64_t min_reply = 0;
396
int64_t total_replies = 0;
397
int64_t sum_replies = 0;
398
int max_hostname_len = 0;
399
int num_hosts = 0; /* total number of hosts */
400
int num_alive = 0, /* total number alive */
401
    num_unreachable = 0, /* total number unreachable */
402
    num_noaddress = 0; /* total number of addresses not found */
403
int num_timeout = 0, /* number of times select timed out */
404
    num_pingsent = 0, /* total pings sent */
405
    num_pingreceived = 0, /* total pings received */
406
    num_othericmprcvd = 0; /* total non-echo-reply ICMP received */
407

408
struct timespec current_time; /* current time (pseudo) */
409
int64_t current_time_ns;
410
int64_t start_time;
411
int64_t end_time;
412
int64_t last_send_time; /* time last ping was sent */
413
int64_t next_report_time; /* time next -Q report is expected */
414

415
/* switches */
416
int generate_flag = 0; /* flag for IP list generation */
417
int verbose_flag, quiet_flag, stats_flag, unreachable_flag, alive_flag;
418
int elapsed_flag, version_flag, count_flag, loop_flag, netdata_flag, json_flag;
419
int per_recv_flag, report_all_rtts_flag, name_flag, addr_flag, backoff_flag, rdns_flag;
420
int multif_flag, timeout_flag, fast_reachable;
421
int outage_flag = 0;
422
int timestamp_flag = 0;
423
int timestamp_format_flag = 0;
424
int random_data_flag = 0;
425
int cumulative_stats_flag = 0;
426
int check_source_flag = 0;
427
int icmp_request_typ = 0;
428
int print_tos_flag = 0;
429
int print_ttl_flag = 0;
430
int size_flag = 0;
431
#if defined(DEBUG) || defined(_DEBUG)
432
int randomly_lose_flag, trace_flag, print_per_system_flag;
433
int lose_factor;
434
#endif /* DEBUG || _DEBUG */
435

436
unsigned int fwmark = 0;
437

438
char *filename = NULL; /* file containing hosts to ping */
439

440
/*** forward declarations ***/
441

442
void add_name(char *name);
443
void add_addr(char *name, char *host, struct sockaddr *ipaddr, socklen_t ipaddr_len);
444
char *na_cat(char *name, struct in_addr ipaddr);
445
void crash_and_burn(char *message);
446
void errno_crash_and_burn(char *message);
447
char *get_host_by_address(struct in_addr in);
448
int send_ping(HOST_ENTRY *h, int index);
449
void usage(int);
450
int wait_for_reply(int64_t);
451
void print_recv(HOST_ENTRY *h, int64_t recv_time, int result, int this_count, int64_t this_reply, int avg);
452
void print_timeout(HOST_ENTRY *h, int ping_index);
453
void print_recv_ext(IP_HEADER_RESULT *ip_header_res, int64_t recv_time, int64_t this_reply);
454
void print_recv_ext_json(IP_HEADER_RESULT *ip_header_res, int64_t recv_time, int64_t this_reply);
455
void print_per_system_stats(void);
456
void print_per_system_stats_json(void);
457
void print_per_system_splits(void);
458
void print_per_system_splits_json(void);
459
void stats_reset_interval(HOST_ENTRY *h);
460
void print_netdata(void);
461
void print_global_stats(void);
462
void print_global_stats_json(void);
463
void main_loop();
464
void signal_handler(int);
465
void finish();
466
const char *sprint_tm(int64_t t);
467
void ev_enqueue(struct event_queue *queue, struct event *event);
468
struct event *ev_dequeue(struct event_queue *queue);
469
void ev_remove(struct event_queue *queue, struct event *event);
470
void add_cidr(char *);
471
void add_cidr_ipv4(unsigned long, unsigned long);
472
void add_range(char *, char *);
473
void add_addr_range_ipv4(unsigned long, unsigned long);
474
#ifdef IPV6
475
uint64_t be_octets_to_uint64(uint8_t*);
476
void uint64_to_be_octets(uint64_t, uint8_t*);
477
void add_cidr_ipv6(uint64_t, uint64_t, unsigned long, const char *);
478
void add_addr_range_ipv6(uint64_t, uint64_t, uint64_t, uint64_t, const char *);
479
#endif
480
void print_warning(char *fmt, ...);
481
int addr_cmp(struct sockaddr *a, struct sockaddr *b);
482
void host_add_ping_event(HOST_ENTRY *h, int index, int64_t ev_time);
483
void host_add_timeout_event(HOST_ENTRY *h, int index, int64_t ev_time);
484
struct event *host_get_timeout_event(HOST_ENTRY *h, int index);
485
void stats_add(HOST_ENTRY *h, int index, int success, int64_t latency);
486
void update_current_time();
487
void print_timestamp_format(int64_t current_time_ns, int timestamp_format);
488
static uint32_t ms_since_midnight_utc(int64_t time_val);
489

490
/************************************************************
491

492
  Function: p_setsockopt
493

494
*************************************************************
495

496
  Inputs:  p_uid: privileged uid. Others as per setsockopt(2)
497

498
  Description:
499

500
  Elevates privileges to p_uid when required, calls
501
  setsockopt, and drops privileges back.
502

503
************************************************************/
504

505
int p_setsockopt(uid_t p_uid, int sockfd, int level, int optname,
22✔
506
    const void *optval, socklen_t optlen)
507
{
508
    const uid_t saved_uid = geteuid();
22✔
509
    int res;
510

511
    if (p_uid != saved_uid && seteuid(p_uid)) {
22✔
512
        perror("cannot elevate privileges for setsockopt");
×
513
    }
514

515
    res = setsockopt(sockfd, level, optname, optval, optlen);
22✔
516

517
    if (p_uid != saved_uid && seteuid(saved_uid)) {
22✔
518
        perror("fatal error: could not drop privileges after setsockopt");
×
519
        /* continuing would be a security hole */
520
        exit(4);
×
521
    }
522

523
    return res;
22✔
524
}
525

526
/************************************************************
527

528
  Function: main
529

530
*************************************************************
531

532
  Inputs:  int argc, char** argv
533

534
  Description:
535

536
  Main program entry point
537

538
************************************************************/
539

540
int main(int argc, char **argv)
722✔
541
{
542
/* Debug: CPU Performance */
543
#if defined(DEBUG) || defined(_DEBUG)
544
    clock_t perf_cpu_start, perf_cpu_end;
545
    double perf_cpu_time_used;
546
    perf_cpu_start = clock();
547
#endif /* DEBUG || _DEBUG */
548

549
    int c;
550
    const uid_t suid = geteuid();
722✔
551
    int tos = 0;
722✔
552
    struct optparse optparse_state;
553
#ifdef USE_SIGACTION
554
    struct sigaction act;
555
#endif
556

557
    /* pre-parse -h/--help, so that we also can output help information
558
     * without trying to open the socket, which might fail */
559
    prog = argv[0];
722✔
560
    if (argc == 2 && (strcmp(argv[1], "-h") == 0 || strcmp(argv[1], "--help") == 0)) {
722✔
561
        usage(0);
3✔
562
    }
1✔
563

564
    socket4 = open_ping_socket_ipv4(&socktype4);
720✔
565
#ifdef __linux__
566
    /* We only treat SOCK_DGRAM differently on Linux, where the IPv4 header
567
     * structure is missing in the message.
568
     */
569
    using_sock_dgram4 = (socktype4 == SOCK_DGRAM);
504✔
570
#endif
571

572
#ifdef IPV6
573
    socket6 = open_ping_socket_ipv6(&socktype6);
720✔
574
    /* if called (sym-linked) via 'fping6', imply '-6'
575
     * for backward compatibility */
576
    if (strstr(prog, "fping6")) {
720✔
577
        hints_ai_family = AF_INET6;
×
578
    }
579
#endif
580

581
    memset(&src_addr, 0, sizeof(src_addr));
720✔
582
#ifdef IPV6
583
    memset(&src_addr6, 0, sizeof(src_addr6));
720✔
584
#endif
585

586
    if (!suid && suid != getuid()) {
720✔
587
        /* *temporarily* drop privileges */
588
        if (seteuid(getuid()) == -1)
677✔
589
            perror("cannot setuid");
×
590
    }
185✔
591

592
    optparse_init(&optparse_state, argv);
720✔
593
    ident4 = ident6 = htons(getpid() & 0xFFFF);
720✔
594
    verbose_flag = 1;
720✔
595
    backoff_flag = 1;
720✔
596
    opterr = 1;
720✔
597

598
    /* get command line options */
599

600
    struct optparse_long longopts[] = {
720✔
601
        { "ipv4", '4', OPTPARSE_NONE },
602
        { "ipv6", '6', OPTPARSE_NONE },
603
        { "alive", 'a', OPTPARSE_NONE },
604
        { "addr", 'A', OPTPARSE_NONE },
605
        { "size", 'b', OPTPARSE_REQUIRED },
606
        { "backoff", 'B', OPTPARSE_REQUIRED },
607
        { "count", 'c', OPTPARSE_REQUIRED },
608
        { "vcount", 'C', OPTPARSE_REQUIRED },
609
        { "rdns", 'd', OPTPARSE_NONE },
610
        { "timestamp", 'D', OPTPARSE_NONE },
611
        { "timestamp-format", '0', OPTPARSE_REQUIRED },
612
        { "elapsed", 'e', OPTPARSE_NONE },
613
        { "file", 'f', OPTPARSE_REQUIRED },
614
        { "generate", 'g', OPTPARSE_NONE },
615
        { "help", 'h', OPTPARSE_NONE },
616
        { "ttl", 'H', OPTPARSE_REQUIRED },
617
        { "interval", 'i', OPTPARSE_REQUIRED },
618
        { "iface", 'I', OPTPARSE_REQUIRED },
619
        { "json", 'J', OPTPARSE_NONE },
620
        { "icmp-timestamp", '0', OPTPARSE_NONE },
621
#ifdef SO_MARK
622
        { "fwmark", 'k', OPTPARSE_REQUIRED },
623
#endif
624
        { "loop", 'l', OPTPARSE_NONE },
625
        { "all", 'm', OPTPARSE_NONE },
626
        { "dontfrag", 'M', OPTPARSE_NONE },
627
        { "name", 'n', OPTPARSE_NONE },
628
        { "netdata", 'N', OPTPARSE_NONE },
629
        { "outage", 'o', OPTPARSE_NONE },
630
        { "tos", 'O', OPTPARSE_REQUIRED },
631
        { "period", 'p', OPTPARSE_REQUIRED },
632
        { "quiet", 'q', OPTPARSE_NONE },
633
        { "squiet", 'Q', OPTPARSE_REQUIRED },
634
        { "retry", 'r', OPTPARSE_REQUIRED },
635
        { "random", 'R', OPTPARSE_NONE },
636
        { "stats", 's', OPTPARSE_NONE },
637
        { "src", 'S', OPTPARSE_REQUIRED },
638
        { "timeout", 't', OPTPARSE_REQUIRED },
639
        { NULL, 'T', OPTPARSE_REQUIRED },
640
        { "unreach", 'u', OPTPARSE_NONE },
641
        { "version", 'v', OPTPARSE_NONE },
642
        { "reachable", 'x', OPTPARSE_REQUIRED },
643
        { "fast-reachable", 'X', OPTPARSE_REQUIRED },
644
        { "check-source", '0', OPTPARSE_NONE },
645
        { "print-tos", '0', OPTPARSE_NONE },
646
        { "print-ttl", '0', OPTPARSE_NONE },
647
        { "seqmap-timeout", '0', OPTPARSE_REQUIRED },
648
#if defined(DEBUG) || defined(_DEBUG)
649
        { NULL, 'z', OPTPARSE_REQUIRED },
650
#endif
651
        { 0, 0, 0 }
652
    };
653

654
    float opt_value_float;
655
    while ((c = optparse_long(&optparse_state, longopts, NULL)) != EOF) {
1,791✔
656
        switch (c) {
1,180✔
657
        case '0':
102✔
658
            if(strstr(optparse_state.optlongname, "timestamp-format") != NULL) {
129✔
659
                if(strcmp(optparse_state.optarg, "ctime") == 0) {
24✔
660
                  timestamp_format_flag = 1;
6✔
661
                }else if(strcmp(optparse_state.optarg, "iso") == 0) {
20✔
662
                  timestamp_format_flag = 2;
6✔
663
                }else if(strcmp(optparse_state.optarg, "rfc3339") == 0) {
14✔
664
                  timestamp_format_flag = 3;
6✔
665
                }else{
2✔
666
                  usage(1);
6✔
667
                }
668
            } else if (strstr(optparse_state.optlongname, "check-source") != NULL) {
113✔
669
                check_source_flag = 1;
9✔
670
            } else if (strstr(optparse_state.optlongname, "icmp-timestamp") != NULL) {
97✔
671
#ifdef IPV6
672
                if (hints_ai_family != AF_UNSPEC && hints_ai_family != AF_INET) {
29✔
673
                    fprintf(stderr, "%s: ICMP Timestamp is IPv4 only\n", prog);
2✔
674
                    exit(1);
2✔
675
                }
676
                hints_ai_family = AF_INET;
27✔
677
#endif
678
                icmp_request_typ = 13;
27✔
679
                ping_data_size = ICMP_TIMESTAMP_DATA_SIZE;
27✔
680
            } else if (strstr(optparse_state.optlongname, "print-tos") != NULL) {
70✔
681
                print_tos_flag = 1;
29✔
682
                if (socket4 >= 0 && (socktype4 == SOCK_DGRAM)) {
29✔
683
                    if (setsockopt(socket4, IPPROTO_IP, IP_RECVTOS, &sock_opt_on, sizeof(sock_opt_on))) {
2✔
684
                        perror("setsockopt IP_RECVTOS");
×
685
                    }
686
                }
687
#if defined(IPV6) && defined(IPV6_RECVTCLASS)
688
                if (socket6 >= 0) {
29✔
689
                    if (setsockopt(socket6, IPPROTO_IPV6, IPV6_RECVTCLASS, &sock_opt_on, sizeof(sock_opt_on))) {
29✔
690
                        perror("setsockopt IPV6_RECVTCLASS");
×
691
                    }
692
                }
7✔
693
#endif
694
            } else if (strstr(optparse_state.optlongname, "print-ttl") != NULL) {
45✔
695
                print_ttl_flag = 1;
26✔
696
                if (socket4 >= 0 && (socktype4 == SOCK_DGRAM)) {
26✔
697
                    if (setsockopt(socket4, IPPROTO_IP, IP_RECVTTL, &sock_opt_on, sizeof(sock_opt_on))) {
2✔
698
                        perror("setsockopt IP_RECVTTL");
×
699
                    }
700
                }
701
#if defined(IPV6) && defined(IPV6_RECVHOPLIMIT)
702
                if (socket6 >= 0) {
26✔
703
                    if (setsockopt(socket6, IPPROTO_IPV6, IPV6_RECVHOPLIMIT, &sock_opt_on, sizeof(sock_opt_on))) {
26✔
704
                        perror("setsockopt IPV6_RECVHOPLIMIT");
×
705
                    }
706
                }
6✔
707
#endif
708
            } else if (strstr(optparse_state.optlongname, "seqmap-timeout") != NULL) {
18✔
709
                if (sscanf(optparse_state.optarg, "%f", &opt_value_float) != 1)
12✔
710
                    usage(1);
6✔
711
                if (opt_value_float < 0)
8✔
712
                    usage(1);
3✔
713
                seqmap_timeout = opt_value_float * 1000000;
6✔
714
            } else {
2✔
715
                usage(1);
×
716
            }
717
            break;
117✔
718
        case '4':
32✔
719
#ifdef IPV6
720
            if (hints_ai_family != AF_UNSPEC && hints_ai_family != AF_INET) {
43✔
721
                fprintf(stderr, "%s: can't specify both -4 and -6\n", prog);
3✔
722
                exit(1);
3✔
723
            }
724
            hints_ai_family = AF_INET;
40✔
725
#endif
726
            break;
40✔
727
        case '6':
28✔
728
#ifdef IPV6
729
            if (hints_ai_family != AF_UNSPEC && hints_ai_family != AF_INET6) {
31✔
730
                fprintf(stderr, "%s: can't specify both -4 and -6\n", prog);
5✔
731
                exit(1);
5✔
732
            }
733
            hints_ai_family = AF_INET6;
26✔
734
#else
735
            fprintf(stderr, "%s: IPv6 not supported by this binary\n", prog);
736
            exit(1);
737
#endif
738
            break;
26✔
739
        case 'M':
2✔
740
#ifdef IP_MTU_DISCOVER
741
            if (socket4 >= 0) {
2✔
742
                int val = IP_PMTUDISC_DO;
2✔
743
                if (setsockopt(socket4, IPPROTO_IP, IP_MTU_DISCOVER, &val, sizeof(val))) {
2✔
744
                    perror("setsockopt IP_MTU_DISCOVER");
745
                }
746
            }
747
#ifdef IPV6
748
            if (socket6 >= 0) {
2✔
749
                int val = IPV6_PMTUDISC_DO;
2✔
750
                if (setsockopt(socket6, IPPROTO_IPV6, IPV6_MTU_DISCOVER, &val, sizeof(val))) {
2✔
751
                    perror("setsockopt IPV6_MTU_DISCOVER");
752
                }
753
            }
754
#endif
755
#else
756
            fprintf(stderr, "%s, -M option not supported on this platform\n", prog);
757
            exit(1);
758
#endif
759
            break;
2✔
760

761
        case 't':
40✔
762
            if (sscanf(optparse_state.optarg, "%f", &opt_value_float) != 1)
45✔
763
                usage(1);
6✔
764
            if (opt_value_float < 0) {
41✔
765
                usage(1);
3✔
766
            }
1✔
767
            timeout = opt_value_float * 1000000;
39✔
768
            timeout_flag = 1;
39✔
769
            break;
39✔
770

771
        case 'r':
36✔
772
            if (sscanf(optparse_state.optarg, "%u", &retry) != 1)
40✔
773
                usage(1);
6✔
774
            break;
36✔
775

776
        case 'i':
30✔
777
            if (sscanf(optparse_state.optarg, "%f", &opt_value_float) != 1)
36✔
778
                usage(1);
6✔
779
            if (opt_value_float < 0) {
32✔
780
                usage(1);
3✔
781
            }
1✔
782
            interval = opt_value_float * 1000000;
30✔
783
            break;
30✔
784

785
        case 'p':
70✔
786
            if (sscanf(optparse_state.optarg, "%f", &opt_value_float) != 1)
102✔
787
                usage(1);
6✔
788
            if (opt_value_float < 0) {
98✔
789
                usage(1);
3✔
790
            }
1✔
791
            perhost_interval = opt_value_float * 1000000;
96✔
792

793
            break;
96✔
794

795
        case 'c':
90✔
796
            if (!(count = (unsigned int)atoi(optparse_state.optarg)))
129✔
797
                usage(1);
6✔
798

799
            count_flag = 1;
125✔
800
            break;
125✔
801

802
        case 'C':
34✔
803
            if (!(count = (unsigned int)atoi(optparse_state.optarg)))
48✔
804
                usage(1);
6✔
805

806
            count_flag = 1;
44✔
807
            report_all_rtts_flag = 1;
44✔
808
            break;
44✔
809

810
        case 'b':
14✔
811
            if (sscanf(optparse_state.optarg, "%u", &ping_data_size) != 1)
21✔
812
                usage(1);
6✔
813
            size_flag = 1;
17✔
814
            break;
17✔
815

816
        case 'h':
2✔
817
            usage(0);
3✔
818
            break;
1✔
819

820
        case 'q':
26✔
821
            verbose_flag = 0;
38✔
822
            quiet_flag = 1;
38✔
823
            break;
38✔
824

825
        case 'Q':
24✔
826
            verbose_flag = 0;
36✔
827
            quiet_flag = 1;
36✔
828
            if (sscanf(optparse_state.optarg, "%f", &opt_value_float) != 1)
36✔
829
                usage(1);
6✔
830
            if (opt_value_float < 0) {
32✔
831
                usage(1);
3✔
832
            }
1✔
833
            report_interval = opt_value_float * 1e9;
30✔
834

835
            /* recognize keyword(s) after number, ignore everything else */
836
            {
837
                char *comma = strchr(optparse_state.optarg, ',');
30✔
838
                if ((comma != NULL) && (strcmp(++comma, "cumulative") == 0)) {
30✔
839
                    cumulative_stats_flag = 1;
6✔
840
                }
2✔
841
            }
842

843
            break;
30✔
844

845
        case 'e':
6✔
846
            elapsed_flag = 1;
8✔
847
            break;
8✔
848

849
        case 'm':
850
            multif_flag = 1;
×
851
            break;
×
852

853
        case 'N':
2✔
854
            netdata_flag = 1;
3✔
855
            break;
3✔
856

857
        case 'n':
4✔
858
            name_flag = 1;
6✔
859
            if (rdns_flag) {
6✔
860
                fprintf(stderr, "%s: use either one of -d or -n\n", prog);
3✔
861
                exit(1);
3✔
862
            }
863
            break;
3✔
864

865
        case 'd':
6✔
866
            rdns_flag = 1;
9✔
867
            if (name_flag) {
9✔
868
                fprintf(stderr, "%s: use either one of -d or -n\n", prog);
3✔
869
                exit(1);
3✔
870
            }
871
            break;
6✔
872

873
        case 'A':
2✔
874
            addr_flag = 1;
3✔
875
            break;
3✔
876

877
        case 'B':
10✔
878
            if (!(backoff = atof(optparse_state.optarg)))
14✔
879
                usage(1);
6✔
880

881
            break;
10✔
882

883
        case 's':
8✔
884
            stats_flag = 1;
12✔
885
            break;
12✔
886

887
        case 'D':
22✔
888
            timestamp_flag = 1;
33✔
889
            break;
33✔
890

891
        case 'R':
4✔
892
            random_data_flag = 1;
5✔
893
            break;
5✔
894

895
        case 'l':
2✔
896
            loop_flag = 1;
3✔
897
            backoff_flag = 0;
3✔
898
            break;
3✔
899

900
        case 'u':
8✔
901
            unreachable_flag = 1;
12✔
902
            break;
12✔
903

904
        case 'a':
18✔
905
            alive_flag = 1;
26✔
906
            break;
26✔
907

908
        case 'H':
8✔
909
            if (!(ttl = (unsigned int)atoi(optparse_state.optarg)))
12✔
910
                usage(1);
6✔
911
            break;
8✔
912

913
#if defined(DEBUG) || defined(_DEBUG)
914
        case 'z':
915
            if (sscanf(optparse_state.optarg, "0x%x", &debugging) != 1)
916
                if (sscanf(optparse_state.optarg, "%u", &debugging) != 1)
917
                    usage(1);
918

919
            break;
920
#endif /* DEBUG || _DEBUG */
921

922
        case 'v':
4✔
923
            printf("%s: Version %s\n", prog, VERSION);
6✔
924
            exit(0);
6✔
925

926
        case 'x':
8✔
927
            if (!(min_reachable = (unsigned int)atoi(optparse_state.optarg)))
12✔
928
                usage(1);
6✔
929
            break;
8✔
930

931
        case 'X':
6✔
932
            if (!(min_reachable = (unsigned int)atoi(optparse_state.optarg)))
9✔
933
                usage(1);
6✔
934
            fast_reachable = 1;
5✔
935
            break;
5✔
936

937
        case 'f':
18✔
938
            filename = optparse_state.optarg;
27✔
939
            break;
27✔
940
#ifdef SO_MARK
941
        case 'k':
10✔
942
            if (!(fwmark = (unsigned int)atol(optparse_state.optarg)))
10✔
943
                usage(1);
4✔
944

945
            if (socket4 >= 0)
6✔
946
                if(-1 == p_setsockopt(suid, socket4, SOL_SOCKET, SO_MARK, &fwmark, sizeof fwmark))
6✔
947
                    perror("fwmark ipv4");
4✔
948

949
#ifdef IPV6
950
            if (socket6 >= 0)
6✔
951
                if(-1 == p_setsockopt(suid, socket6, SOL_SOCKET, SO_MARK, &fwmark, sizeof fwmark))
6✔
952
                    perror("fwmark ipv6");
4✔
953
#endif
954

955
            break;
6✔
956
#endif
957

958
        case 'g':
100✔
959
            /* use IP list generation */
960
            /* mutually exclusive with using file input or command line targets */
961
            generate_flag = 1;
120✔
962
            break;
120✔
963

964
        case 'S':
10✔
965
            if (inet_pton(AF_INET, optparse_state.optarg, &src_addr)) {
13✔
966
                src_addr_set = 1;
6✔
967
                break;
6✔
968
            }
969
#ifdef IPV6
970
            if (inet_pton(AF_INET6, optparse_state.optarg, &src_addr6)) {
7✔
971
                src_addr6_set = 1;
4✔
972
                break;
4✔
973
            }
974
#endif
975
            fprintf(stderr, "%s: can't parse source address: %s\n", prog, optparse_state.optarg);
3✔
976
            exit(1);
3✔
977

978
        case 'I':
6✔
979
#ifdef SO_BINDTODEVICE
980
            if (socket4 >= 0) {
6✔
981
                if (p_setsockopt(suid, socket4, SOL_SOCKET, SO_BINDTODEVICE, optparse_state.optarg, strlen(optparse_state.optarg))) {
6✔
982
                    perror("binding to specific interface (SO_BINDTODEVICE)");
2✔
983
                    exit(1);
2✔
984
                }
985
            }
986
#ifdef IPV6
987
            if (socket6 >= 0) {
4✔
988
                if (p_setsockopt(suid, socket6, SOL_SOCKET, SO_BINDTODEVICE, optparse_state.optarg, strlen(optparse_state.optarg))) {
4✔
989
                    perror("binding to specific interface (SO_BINDTODEVICE), IPV6");
×
990
                    exit(1);
×
991
                }
992
            }
993
#endif
994
#else
995
            printf("%s: cant bind to a particular net interface since SO_BINDTODEVICE is not supported on your os.\n", prog);
996
            exit(3);
997
            ;
998
#endif
999
            break;
4✔
1000

1001
        case 'J':
42✔
1002
            json_flag = 1;
62✔
1003
            break;
62✔
1004

1005
        case 'T':
2✔
1006
            /* This option is ignored for compatibility reasons ("select timeout" is not meaningful anymore) */
1007
            break;
3✔
1008

1009
        case 'O':
10✔
1010
            if (sscanf(optparse_state.optarg, "%i", &tos) == 1) {
15✔
1011
                if (socket4 >= 0) {
9✔
1012
                    if (setsockopt(socket4, IPPROTO_IP, IP_TOS, &tos, sizeof(tos))) {
9✔
1013
                        perror("setting type of service octet IP_TOS");
×
1014
                    }
1015
                }
3✔
1016
#if defined(IPV6) && defined(IPV6_TCLASS)
1017
                if (socket6 >= 0) {
9✔
1018
                    if (setsockopt(socket6, IPPROTO_IPV6, IPV6_TCLASS, &tos, sizeof(tos))) {
9✔
1019
                        perror("setting type of service octet IPV6_TCLASS");
×
1020
                    }
1021
                }
3✔
1022
#endif
1023
            }
3✔
1024
            else {
1025
                usage(1);
6✔
1026
            }
1027
            break;
11✔
1028

1029
        case 'o':
6✔
1030
            outage_flag = 1;
9✔
1031
            break;
9✔
1032

1033
        case '?':
4✔
1034
            fprintf(stderr, "%s: %s\n", argv[0], optparse_state.errmsg);
6✔
1035
            fprintf(stderr, "see 'fping -h' for usage information\n");
6✔
1036
            exit(1);
6✔
1037
            break;
1038
        }
1039
    }
1040

1041
    /* permanently drop privileges */
1042
    if (suid != getuid() && setuid(getuid())) {
545✔
1043
        perror("fatal: failed to permanently drop privileges");
×
1044
        /* continuing would be a security hole */
1045
        exit(4);
×
1046
    }
1047

1048
    /* validate various option settings */
1049

1050
#ifndef IPV6
1051
    if (socket4 < 0) {
1052
        crash_and_burn("can't create socket (must run as root?)");
1053
    }
1054
#else
1055
    if ((socket4 < 0 && socket6 < 0) || (hints_ai_family == AF_INET6 && socket6 < 0)) {
545✔
1056
        crash_and_burn("can't create socket (must run as root?)");
×
1057
    }
1058
#endif
1059

1060
    if (ttl > 255) {
543✔
1061
        fprintf(stderr, "%s: ttl %u out of range\n", prog, ttl);
3✔
1062
        exit(1);
3✔
1063
    }
1064

1065
    if (unreachable_flag && alive_flag) {
540✔
1066
        fprintf(stderr, "%s: specify only one of a, u\n", prog);
3✔
1067
        exit(1);
3✔
1068
    }
1069

1070
    if (count_flag && loop_flag) {
537✔
1071
        fprintf(stderr, "%s: specify only one of c, l\n", prog);
3✔
1072
        exit(1);
3✔
1073
    }
1074

1075
    if (json_flag && !count_flag && !loop_flag) {
534✔
1076
        fprintf(stderr, "%s: option -J, --json requires -c, -C, or -l\n", prog);
3✔
1077
        exit(1);
3✔
1078
    }
1079

1080
    if (interval < (float)MIN_INTERVAL_MS * 1000000 && getuid()) {
531✔
1081
        fprintf(stderr, "%s: -i must be >= %g\n", prog, (float)MIN_INTERVAL_MS);
3✔
1082
        exit(1);
3✔
1083
    }
1084

1085
    if (perhost_interval < (float)MIN_PERHOST_INTERVAL_MS * 1000000 && getuid()) {
528✔
1086
        fprintf(stderr, "%s: -p must be >= %g\n", prog, (float)MIN_PERHOST_INTERVAL_MS);
3✔
1087
        exit(1);
3✔
1088
    }
1089

1090
    if (ping_data_size > MAX_PING_DATA) {
525✔
1091
        fprintf(stderr, "%s: data size %u not valid, must not be larger than %u\n",
4✔
1092
            prog, ping_data_size, (unsigned int)MAX_PING_DATA);
1✔
1093
        exit(1);
3✔
1094
    }
1095

1096
    if ((backoff > MAX_BACKOFF_FACTOR) || (backoff < MIN_BACKOFF_FACTOR)) {
522✔
1097
        fprintf(stderr, "%s: backoff factor %.1f not valid, must be between %.1f and %.1f\n",
8✔
1098
            prog, backoff, MIN_BACKOFF_FACTOR, MAX_BACKOFF_FACTOR);
2✔
1099
        exit(1);
6✔
1100
    }
1101

1102
    if (icmp_request_typ == 13 && size_flag != 0) {
516✔
1103
        fprintf(stderr, "%s: cannot change ICMP Timestamp size\n", prog);
9✔
1104
        exit(1);
9✔
1105
    }
1106

1107
    if (count_flag) {
507✔
1108
        if (verbose_flag)
159✔
1109
            per_recv_flag = 1;
94✔
1110

1111
        alive_flag = unreachable_flag = verbose_flag = 0;
159✔
1112
    }
47✔
1113

1114
    if (loop_flag) {
507✔
1115
        if (!report_interval)
×
1116
            per_recv_flag = 1;
×
1117

1118
        alive_flag = unreachable_flag = verbose_flag = 0;
×
1119
    }
1120

1121
    if (alive_flag || unreachable_flag || min_reachable)
507✔
1122
        verbose_flag = 0;
37✔
1123

1124
    trials = (count > retry + 1) ? count : retry + 1;
523✔
1125

1126
    /* auto-tune default timeout for count/loop modes
1127
     * see also github #32 */
1128
    if (loop_flag || count_flag) {
523✔
1129
        if (!timeout_flag) {
159✔
1130
            timeout = perhost_interval;
154✔
1131
            if (timeout > (int64_t)AUTOTUNE_TIMEOUT_MAX * 1000000) {
154✔
1132
                timeout = (int64_t)AUTOTUNE_TIMEOUT_MAX * 1000000;
×
1133
            }
1134
        }
46✔
1135
    }
47✔
1136

1137
#if defined(DEBUG) || defined(_DEBUG)
1138
    if (debugging & DBG_TRACE)
1139
        trace_flag = 1;
1140

1141
    if (debugging & DBG_RANDOM_LOSE_FEW) {
1142
        randomly_lose_flag = 1;
1143
        lose_factor = 1; /* ie, 1/4 */
1144
    }
1145

1146
    if (debugging & DBG_RANDOM_LOSE_MANY) {
1147
        randomly_lose_flag = 1;
1148
        lose_factor = 5; /* ie, 3/4 */
1149
    }
1150

1151
    if (debugging & DBG_PRINT_PER_SYSTEM)
1152
        print_per_system_flag = 1;
1153

1154
    if ((debugging & DBG_REPORT_ALL_RTTS) && !loop_flag)
1155
        report_all_rtts_flag = 1;
1156

1157
    if (trace_flag) {
1158
        fprintf(stderr, "%s:\n  count: %u, retry: %u, interval: %.0f ms\n",
1159
            prog, count, retry, interval / 1e6);
1160
        fprintf(stderr, "  perhost_interval: %.0f ms, timeout: %.0f\n",
1161
            perhost_interval / 1e6, timeout / 1e6);
1162
        fprintf(stderr, "  seqmap_timeout: %.0f\n", seqmap_timeout / 1e6);
1163
        fprintf(stderr, "  ping_data_size = %u, trials = %u\n",
1164
            ping_data_size, trials);
1165

1166
        if (verbose_flag)
1167
            fprintf(stderr, "  verbose_flag set\n");
1168
        if (multif_flag)
1169
            fprintf(stderr, "  multif_flag set\n");
1170
        if (name_flag)
1171
            fprintf(stderr, "  name_flag set\n");
1172
        if (addr_flag)
1173
            fprintf(stderr, "  addr_flag set\n");
1174
        if (stats_flag)
1175
            fprintf(stderr, "  stats_flag set\n");
1176
        if (unreachable_flag)
1177
            fprintf(stderr, "  unreachable_flag set\n");
1178
        if (alive_flag)
1179
            fprintf(stderr, "  alive_flag set\n");
1180
        if (elapsed_flag)
1181
            fprintf(stderr, "  elapsed_flag set\n");
1182
        if (version_flag)
1183
            fprintf(stderr, "  version_flag set\n");
1184
        if (count_flag)
1185
            fprintf(stderr, "  count_flag set\n");
1186
        if (loop_flag)
1187
            fprintf(stderr, "  loop_flag set\n");
1188
        if (backoff_flag)
1189
            fprintf(stderr, "  backoff_flag set\n");
1190
        if (per_recv_flag)
1191
            fprintf(stderr, "  per_recv_flag set\n");
1192
        if (report_all_rtts_flag)
1193
            fprintf(stderr, "  report_all_rtts_flag set\n");
1194
        if (randomly_lose_flag)
1195
            fprintf(stderr, "  randomly_lose_flag set\n");
1196
        if (print_per_system_flag)
1197
            fprintf(stderr, "  print_per_system_flag set\n");
1198
        if (outage_flag)
1199
            fprintf(stderr, "  outage_flag set\n");
1200
        if (netdata_flag)
1201
            fprintf(stderr, "  netdata_flag set\n");
1202
        if (json_flag)
1203
            fprintf(stderr, "  json_flag set\n");
1204
    }
1205
#endif /* DEBUG || _DEBUG */
1206

1207
    /* set the TTL, if the -H option was set (otherwise ttl will be = 0) */
1208
    if (ttl > 0) {
523✔
1209
        if (socket4 >= 0) {
3✔
1210
            if (setsockopt(socket4, IPPROTO_IP, IP_TTL, &ttl, sizeof(ttl))) {
3✔
1211
                perror("setting time to live");
×
1212
            }
1213
        }
1✔
1214
#ifdef IPV6
1215
        if (socket6 >= 0) {
3✔
1216
            if (setsockopt(socket6, IPPROTO_IPV6, IPV6_UNICAST_HOPS, &ttl, sizeof(ttl))) {
3✔
1217
                perror("setting time to live");
×
1218
            }
1219
        }
1✔
1220
#endif
1221
    }
1✔
1222

1223
#if HAVE_SO_TIMESTAMPNS
1224
    {
1225
        int opt = 1;
380✔
1226
        if (socket4 >= 0) {
380✔
1227
            if (setsockopt(socket4, SOL_SOCKET, SO_TIMESTAMPNS, &opt, sizeof(opt))) {
380✔
1228
                if (setsockopt(socket4, SOL_SOCKET, SO_TIMESTAMP, &opt, sizeof(opt))) {
1229
                    perror("setting SO_TIMESTAMPNS and SO_TIMESTAMP option");
1230
                }
1231
            }
1232
        }
1233
#ifdef IPV6
1234
        if (socket6 >= 0) {
380✔
1235
            if (setsockopt(socket6, SOL_SOCKET, SO_TIMESTAMPNS, &opt, sizeof(opt))) {
380✔
1236
                if (setsockopt(socket6, SOL_SOCKET, SO_TIMESTAMP, &opt, sizeof(opt))) {
1237
                    perror("setting SO_TIMESTAMPNS and SO_TIMESTAMP option (IPv6)");
1238
                }
1239
            }
1240
        }
1241
#endif
1242
    }
1243
#endif
1244

1245
    update_current_time();
523✔
1246
    start_time = current_time_ns;
523✔
1247

1248
    /* handle host names supplied on command line or in a file */
1249
    /* if the generate_flag is on, then generate the IP list */
1250

1251
    argv = &argv[optparse_state.optind];
523✔
1252
    argc -= optparse_state.optind;
523✔
1253

1254
    /* calculate how many ping can be in-flight per host */
1255
    if (count_flag) {
523✔
1256
        event_storage_count = count;
174✔
1257
    }
62✔
1258
    else if (loop_flag) {
349✔
1259
        if (perhost_interval > timeout) {
×
1260
            event_storage_count = 1;
×
1261
        }
1262
        else {
1263
            event_storage_count = 1 + timeout / perhost_interval;
×
1264
        }
1265
    }
1266
    else {
1267
        event_storage_count = 1;
349✔
1268
    }
1269

1270
    /* file and generate are mutually exclusive */
1271
    /* file and command line are mutually exclusive */
1272
    /* generate requires command line parameters beyond the switches */
1273
    if ((*argv && filename) || (filename && generate_flag) || (generate_flag && !*argv))
523✔
1274
        usage(1);
19✔
1275

1276
    /* if no conditions are specified, then assume input from stdin */
1277
    if (!*argv && !filename && !generate_flag)
505✔
1278
        filename = "-";
69✔
1279

1280
    if (*argv && !generate_flag) {
505✔
1281
        while (*argv) {
651✔
1282
            add_name(*argv);
356✔
1283
            ++argv;
356✔
1284
        }
1285
    }
77✔
1286
    else if (filename) {
210✔
1287
        FILE *ping_file;
1288
        char line[MAX_TARGET_NAME_LEN + 1];
1289
        char host[MAX_TARGET_NAME_LEN + 1];
1290
        char scratch[MAX_TARGET_NAME_LEN + 1];
1291
        int skip, non_empty;
1292

1293
        if (strcmp(filename, "-") == 0)
96✔
1294
            ping_file = fdopen(0, "r");
72✔
1295
        else
1296
            ping_file = fopen(filename, "r");
24✔
1297

1298
        if (!ping_file)
96✔
1299
            errno_crash_and_burn("fopen");
3✔
1300

1301
        /*
1302
         * Read the first word of every non-comment line, skip everything else.
1303
         * (Empty and blank lines are ignored.  Lines where the first non-blank
1304
         * character is a '#' are interpreted as comments and ignored.)
1305
        */
1306
        while (fgets(line, sizeof(line), ping_file)) {
379✔
1307
            skip = non_empty = 0;
309✔
1308

1309
            /* skip over a prefix of the line where sscanf finds nothing */
1310
            if ((sscanf(line, "%s", host) != 1) || (!*host)) {
309✔
1311
                continue;
99✔
1312
            }
1313

1314
            /* the first word of the line can indicate a comment line */
1315
            if (host[0] == '#') {
210✔
1316
                skip = 1; /* skip remainder of line */
42✔
1317
            } else {
14✔
1318
                non_empty = 1; /* we have something to add as a target name */
168✔
1319
                /*
1320
                 * We have found the start of a word.
1321
                 * This part of the line may contain all of the first word.
1322
                 */
1323
                if (!strchr(line, '\n') && (strlen(line) == sizeof(line) - 1)) {
168✔
1324
                    char discard1[MAX_TARGET_NAME_LEN + 1];
1325
                    char discard2[MAX_TARGET_NAME_LEN + 1];
1326
                    if (sscanf(line, "%s%s", discard1, discard2) == 2) {
102✔
1327
                        skip = 1; /* a second word starts in this part */
6✔
1328
                    }
2✔
1329
                    if (isspace(line[sizeof(line) - 2])) {
102✔
1330
                        skip = 1; /* the first word ends in this part */
42✔
1331
                    }
14✔
1332
                }
34✔
1333
            }
1334
            /* read remainder of this input line */
1335
            while (!strchr(line, '\n') && fgets(line, sizeof(line), ping_file)) {
336✔
1336
                if (skip) {
150✔
1337
                    continue; /* skip rest of data in this input line */
102✔
1338
                }
1339
                if (isspace(line[0])) {
48✔
1340
                    skip = 1; /* first word ended in previous part */
6✔
1341
                    continue;
6✔
1342
                }
1343
                if ((sscanf(line, "%s", scratch) != 1) || (!*scratch)) {
42✔
1344
                    skip = 1; /* empty or blank part of line, skip the rest */
×
1345
                    continue;
×
1346
                }
1347
                if (sizeof(host) - strlen(host) < strlen(scratch) + 1) {
42✔
1348
                    fprintf(stderr, "%s: target name too long\n", prog);
24✔
1349
                    exit(1);
24✔
1350
                }
1351
                /* append remainder of word started in previous line part */
1352
                strncat(host, scratch, sizeof(host) - strlen(host) - 1);
18✔
1353
                /*
1354
                 * Since the "host" buffer is the same size as the "line"
1355
                 * buffer, a target name that fits into the "host" buffer
1356
                 * cannot use more than two consecutive line parts.
1357
                 * A target name that uses two consecutive line parts
1358
                 * and fits into the "host" buffer must end before the
1359
                 * end of the second "line" buffer.  Thus the rest of
1360
                 * the line can be skipped.
1361
                 */
1362
                skip = 1;
18✔
1363
            }
1364

1365
            if (non_empty)
186✔
1366
                add_name(host);
144✔
1367
        }
1368

1369
        fclose(ping_file);
70✔
1370
    }
24✔
1371
    else if (*argv && generate_flag) {
114✔
1372
        if (argc == 1) {
114✔
1373
            /* one target: we expect a cidr range (n.n.n.n/m) */
1374
            add_cidr(argv[0]);
59✔
1375
        }
11✔
1376
        else if (argc == 2) {
55✔
1377
            add_range(argv[0], argv[1]);
52✔
1378
        }
6✔
1379
        else {
1380
            usage(1);
3✔
1381
        }
1382
    }
18✔
1383
    else {
1384
        usage(1);
×
1385
    }
1386

1387
    if (!num_hosts) {
425✔
1388
        exit(num_noaddress ? 2 : 1);
36✔
1389
    }
1390

1391
    if (socket4 >= 0 && (src_addr_set || socktype4 == SOCK_DGRAM)) {
389✔
1392
        socket_set_src_addr_ipv4(socket4, &src_addr, (socktype4 == SOCK_DGRAM) ? &ident4 : NULL);
18✔
1393
    }
2✔
1394
#ifdef IPV6
1395
    if (socket6 >= 0 && (src_addr6_set || socktype6 == SOCK_DGRAM)) {
387✔
1396
        socket_set_src_addr_ipv6(socket6, &src_addr6, (socktype6 == SOCK_DGRAM) ? &ident6 : NULL);
16✔
1397
    }
1398
#endif
1399

1400
    /* allocate and initialize array to map host nr to host_entry */
1401
    {
1402
        struct event *cursor = event_queue_ping.first;
385✔
1403
        int i = 0;
385✔
1404
        table = (HOST_ENTRY **)calloc(num_hosts, sizeof(HOST_ENTRY *));
385✔
1405
        if (!table)
385✔
1406
            crash_and_burn("Can't malloc array of hosts");
×
1407
        /* initialize table of hosts. we know that we have ping events scheduled
1408
         * for each of them */
1409
        for (cursor = event_queue_ping.first; cursor; cursor = cursor->ev_next) {
960✔
1410
            table[i] = cursor->host;
575✔
1411
            cursor->host->i = i;
575✔
1412
            i++;
575✔
1413
        }
157✔
1414
    }
1415

1416
    init_ping_buffer_ipv4(ping_data_size);
385✔
1417
#ifdef IPV6
1418
    init_ping_buffer_ipv6(ping_data_size);
385✔
1419
#endif
1420

1421
#ifdef USE_SIGACTION
1422
    memset(&act, 0, sizeof(act));
385✔
1423
    act.sa_handler = signal_handler;
385✔
1424
    sigemptyset(&act.sa_mask);
385✔
1425
    sigaddset(&act.sa_mask, SIGINT);
385✔
1426
    sigaddset(&act.sa_mask, SIGQUIT);
385✔
1427
    act.sa_flags = SA_RESTART;
385✔
1428
    if (sigaction(SIGQUIT, &act, NULL) || sigaction(SIGINT, &act, NULL)) {
385✔
1429
        crash_and_burn("failure to set signal handler");
24✔
1430
    }
24✔
1431
#else
1432
    signal(SIGINT, signal_handler);
1433
    signal(SIGQUIT, signal_handler);
1434
#endif
1435
    setlinebuf(stdout);
361✔
1436

1437
    if (report_interval) {
361✔
1438
        next_report_time = current_time_ns + report_interval;
27✔
1439
    }
9✔
1440

1441
    last_send_time = 0;
361✔
1442

1443
    seqmap_init(seqmap_timeout);
361✔
1444

1445
    /* main loop */
1446
    main_loop();
361✔
1447

1448
/* Debug: CPU Performance */
1449
#if defined(DEBUG) || defined(_DEBUG)
1450
    perf_cpu_end = clock();
1451
    perf_cpu_time_used = ((double) (perf_cpu_end - perf_cpu_start)) / CLOCKS_PER_SEC;
1452
    printf("[DEBUG] CPU time used: %f sec\n", perf_cpu_time_used);
1453
#endif /* DEBUG || _DEBUG */
1454

1455
    finish();
361✔
1456

1457
    return 0;
85✔
1458
}
1459

1460
static inline int64_t timespec_ns(struct timespec *a)
5,656✔
1461
{
1462
    return ((int64_t)a->tv_sec * 1000000000) + a->tv_nsec;
5,656✔
1463
}
1464

1465
#if HAVE_SO_TIMESTAMPNS
1466
/* convert a struct timeval to nanoseconds */
1467
static inline int64_t timeval_ns(struct timeval *a)
1468
{
1469
    return ((int64_t)a->tv_sec * 1000000000) + ((int64_t)a->tv_usec * 1000);
1470
}
1471
#endif /* HAVE_SO_TIMESTAMPNS */
1472

1473
void add_cidr(char *addr)
57✔
1474
{
1475
    char *addr_end;
1476
    char *mask_str;
1477
    unsigned long mask;
1478
    int ret;
1479
    struct addrinfo addr_hints;
1480
    struct addrinfo *addr_res;
1481
    unsigned long net_addr;
1482
#ifdef IPV6
1483
    uint64_t net_upper, net_lower;
1484
    char *scope_str;
1485
#endif /* IPV6 */
1486

1487
    /* Split address from mask */
1488
    addr_end = strrchr(addr, '/');
57✔
1489
    if (addr_end == NULL) {
57✔
1490
        usage(1);
3✔
1491
    }
1✔
1492
    mask_str = addr_end + 1;
55✔
1493

1494
#ifdef IPV6
1495
    /* IPv6 addresses can have a scope */
1496
    scope_str = strchr(addr, '%');
55✔
1497
    if (scope_str && mask_str < scope_str) {
55✔
1498
        fprintf(stderr, "%s: address scope must precede prefix length\n", prog);
2✔
1499
        exit(1);
2✔
1500
    }
1501
#endif /*IPV6 */
1502

1503
    *addr_end = '\0';
53✔
1504
    mask = atoi(mask_str);
53✔
1505

1506
    /* parse address */
1507
    memset(&addr_hints, 0, sizeof(struct addrinfo));
53✔
1508
    addr_hints.ai_family = hints_ai_family;
53✔
1509
    addr_hints.ai_flags = AI_NUMERICHOST;
53✔
1510
    ret = getaddrinfo(addr, NULL, &addr_hints, &addr_res);
53✔
1511
    if (ret) {
53✔
1512
        fprintf(stderr, "%s, can't parse address %s: %s\n", prog, addr, gai_strerror(ret));
7✔
1513
        exit(1);
7✔
1514
    }
1515
    if (addr_res->ai_family == AF_INET) {
46✔
1516
        net_addr = ntohl(((struct sockaddr_in*)addr_res->ai_addr)->sin_addr.s_addr);
24✔
1517
        freeaddrinfo(addr_res);
24✔
1518
        add_cidr_ipv4(net_addr, mask);
24✔
1519
#ifdef IPV6
1520
    } else if (addr_res->ai_family == AF_INET6) {
30✔
1521
        uint8_t *ipv6_addr = ((struct sockaddr_in6*)addr_res->ai_addr)->sin6_addr.s6_addr;
22✔
1522
        net_upper = be_octets_to_uint64(ipv6_addr);
22✔
1523
        net_lower = be_octets_to_uint64(ipv6_addr + 8);
22✔
1524
        freeaddrinfo(addr_res);
22✔
1525
        add_cidr_ipv6(net_upper, net_lower, mask, scope_str);
22✔
1526
#endif /* IPV6 */
1527
    } else {
1528
        freeaddrinfo(addr_res);
×
1529
        fprintf(stderr, "%s: -g does not support this address family\n", prog);
×
1530
        exit(1);
×
1531
    }
1532
}
30✔
1533

1534
void add_cidr_ipv4(unsigned long net_addr, unsigned long mask)
24✔
1535
{
1536
    unsigned long bitmask;
1537
    unsigned long net_last;
1538

1539
    /* check mask */
1540
    if (mask < 1 || mask > 32) {
24✔
1541
        fprintf(stderr, "%s: netmask must be between 1 and 32 (is: %lu)\n", prog, mask);
6✔
1542
        exit(1);
6✔
1543
    }
1544

1545
    /* convert mask integer from 1 to 32 to a bitmask */
1546
    bitmask = ((unsigned long)0xFFFFFFFF) << (32 - mask);
18✔
1547

1548
    /* calculate network range */
1549
    net_addr &= bitmask;
18✔
1550
    net_last = net_addr + ((unsigned long)0x1 << (32 - mask)) - 1;
18✔
1551

1552
    /* exclude network and broadcast address for regular prefixes */
1553
    if (mask < 31) {
18✔
1554
        net_last--;
12✔
1555
        net_addr++;
12✔
1556
    }
4✔
1557

1558
    /* add all hosts in that network (net_addr and net_last inclusive) */
1559
    add_addr_range_ipv4(net_addr, net_last);
18✔
1560
}
16✔
1561

1562
#ifdef IPV6
1563
void add_cidr_ipv6(uint64_t net_upper, uint64_t net_lower, unsigned long mask, const char *scope_str)
23✔
1564
{
1565
    uint64_t bitmask_lower;
1566
    uint64_t last_lower;
1567

1568
    /* check mask -- 2^63 addresses should suffice for now */
1569
    if (mask < 65 || mask > 128) {
23✔
1570
        fprintf(stderr, "%s: netmask must be between 65 and 128 (is: %lu)\n", prog, mask);
7✔
1571
        exit(1);
7✔
1572
    }
1573

1574
    /* convert mask integer from 65 to 128 to the lower part of a bitmask */
1575
    bitmask_lower = ((uint64_t)-1) << (128 - mask);
16✔
1576

1577
    /* calculate network range */
1578
    net_lower &= bitmask_lower;
16✔
1579
    last_lower = net_lower + ((uint64_t)1 << (128 - mask)) - 1;
16✔
1580

1581
    add_addr_range_ipv6(net_upper, net_lower, net_upper, last_lower, scope_str);
16✔
1582
}
12✔
1583
#endif /* IPV6 */
1584

1585
void add_range(char *start, char *end)
52✔
1586
{
1587
    struct addrinfo addr_hints;
1588
    struct addrinfo *addr_res;
1589
    unsigned long start_long;
1590
    unsigned long end_long;
1591
    int ret;
1592
#ifdef IPV6
1593
    uint64_t start_upper, start_lower;
1594
    uint64_t end_upper, end_lower;
1595
    char *start_scope_str, *end_scope_str;
1596

1597
    /*
1598
     * The compiler does not know that setting the address family hint to
1599
     * ensure that start and end are from the same address family also
1600
     * ensures that either start_long and end_long are initialized and used,
1601
     * or start_upper, start_lower, end_upper, and end_lower are initialized
1602
     * and used.  Thus initialize all variables when both IPv4 and IPv6 are
1603
     * supported to suppress compiler warnings.
1604
     */
1605
    start_long = -1;
52✔
1606
    end_long = 0;
52✔
1607
    start_upper = start_lower = -1;
52✔
1608
    end_upper = end_lower = 0;
52✔
1609
    start_scope_str = end_scope_str = NULL;
52✔
1610
#endif /* IPV6 */
1611

1612
    /* parse start address */
1613
    memset(&addr_hints, 0, sizeof(struct addrinfo));
52✔
1614
    addr_hints.ai_family = hints_ai_family;
52✔
1615
    addr_hints.ai_flags = AI_NUMERICHOST;
52✔
1616
    ret = getaddrinfo(start, NULL, &addr_hints, &addr_res);
52✔
1617
    if (ret) {
52✔
1618
        fprintf(stderr, "%s: can't parse address %s: %s\n", prog, start, gai_strerror(ret));
9✔
1619
        exit(1);
9✔
1620
    }
1621
    /* start and end must be from the same address family */
1622
    hints_ai_family = addr_res->ai_family;
43✔
1623
    if (addr_res->ai_family == AF_INET) {
43✔
1624
        start_long = ntohl(((struct sockaddr_in*)addr_res->ai_addr)->sin_addr.s_addr);
17✔
1625
        freeaddrinfo(addr_res);
17✔
1626
#ifdef IPV6
1627
    } else if (addr_res->ai_family == AF_INET6) {
31✔
1628
        uint8_t *ipv6_addr = ((struct sockaddr_in6*)addr_res->ai_addr)->sin6_addr.s6_addr;
26✔
1629
        start_upper = be_octets_to_uint64(ipv6_addr);
26✔
1630
        start_lower = be_octets_to_uint64(ipv6_addr + 8);
26✔
1631
        freeaddrinfo(addr_res);
26✔
1632
#endif /* IPV6 */
1633
    } else {
1634
        freeaddrinfo(addr_res);
×
1635
        fprintf(stderr, "%s: -g does not support this address family\n", prog);
×
1636
        exit(1);
×
1637
    }
1638

1639
#ifdef IPV6
1640
    /* IPv6 addresses can have a scope */
1641
    if (hints_ai_family == AF_INET6) {
43✔
1642
        start_scope_str = strchr(start, '%');
26✔
1643
        end_scope_str = strchr(end, '%');
26✔
1644
        if ((!start_scope_str && end_scope_str) ||
26✔
1645
            (start_scope_str && !end_scope_str) ||
24✔
1646
            (start_scope_str && end_scope_str && strcmp(start_scope_str, end_scope_str) != 0)) {
4✔
1647
                fprintf(stderr, "%s: different scopes for start and end addresses\n", prog);
6✔
1648
                exit(1);
6✔
1649
        }
1650
    }
1651
#endif
1652

1653
    /* parse end address */
1654
    memset(&addr_hints, 0, sizeof(struct addrinfo));
37✔
1655
    addr_hints.ai_family = hints_ai_family;
37✔
1656
    addr_hints.ai_flags = AI_NUMERICHOST;
37✔
1657
    ret = getaddrinfo(end, NULL, &addr_hints, &addr_res);
37✔
1658
    if (ret) {
37✔
1659
        fprintf(stderr, "%s: can't parse address %s: %s\n", prog, end, gai_strerror(ret));
7✔
1660
        exit(1);
7✔
1661
    }
1662
    if (addr_res->ai_family == AF_INET) {
30✔
1663
        end_long = ntohl(((struct sockaddr_in*)addr_res->ai_addr)->sin_addr.s_addr);
12✔
1664
        freeaddrinfo(addr_res);
12✔
1665
        add_addr_range_ipv4(start_long, end_long);
12✔
1666
#ifdef IPV6
1667
    } else if (addr_res->ai_family == AF_INET6) {
22✔
1668
        uint8_t *ipv6_addr = ((struct sockaddr_in6*)addr_res->ai_addr)->sin6_addr.s6_addr;
18✔
1669
        end_upper = be_octets_to_uint64(ipv6_addr);
18✔
1670
        end_lower = be_octets_to_uint64(ipv6_addr + 8);
18✔
1671
        freeaddrinfo(addr_res);
18✔
1672
        add_addr_range_ipv6(start_upper, start_lower, end_upper, end_lower, start_scope_str);
18✔
1673
#endif /* IPV6 */
1674
    } else {
1675
        freeaddrinfo(addr_res);
×
1676
        fprintf(stderr, "%s: -g does not support this address family\n", prog);
×
1677
        exit(1);
×
1678
    }
1679
}
24✔
1680

1681
void add_addr_range_ipv4(unsigned long start_long, unsigned long end_long)
30✔
1682
{
1683
    /* check if generator limit is exceeded */
1684
    if (end_long >= start_long + MAX_GENERATE) {
30✔
1685
        fprintf(stderr, "%s: -g parameter generates too many addresses\n", prog);
6✔
1686
        exit(1);
6✔
1687
    }
1688

1689
    /* generate */
1690
    for (; start_long <= end_long; start_long++) {
93✔
1691
        struct in_addr in_addr_tmp;
1692
        char buffer[20];
1693
        in_addr_tmp.s_addr = htonl(start_long);
69✔
1694
        inet_ntop(AF_INET, &in_addr_tmp, buffer, sizeof(buffer));
69✔
1695
        add_name(buffer);
69✔
1696
    }
23✔
1697
}
24✔
1698

1699
#ifdef IPV6
1700
uint64_t be_octets_to_uint64(uint8_t *be_octets)
134✔
1701
{
1702
    int i;
1703
    uint64_t ret = 0;
134✔
1704
    for (i = 0; i < 8; i++) {
1,206✔
1705
        ret |= (uint64_t)be_octets[7 - i] << (i * 8);
1,072✔
1706
    }
16✔
1707
    return ret;
134✔
1708
}
1709

1710
void uint64_to_be_octets(uint64_t num, uint8_t *be_octets)
80✔
1711
{
1712
    int i;
1713
    for (i = 0; i < 8; i++) {
720✔
1714
        be_octets[7 - i] = (uint8_t)((num >> (i * 8)) & 0xff);
640✔
1715
    }
1716
}
80✔
1717

1718
void add_addr_range_ipv6(uint64_t start_upper, uint64_t start_lower,
34✔
1719
                         uint64_t end_upper, uint64_t end_lower,
1720
                         const char *scope_str)
1721
{
1722
    struct in6_addr in6_addr_tmp;
1723
    char buffer[100];
1724

1725
    /* prevent generating too many addresses */
1726
    if ((start_upper + 1 < end_upper) ||
34✔
1727
        (start_upper + 1 == end_upper && end_lower >= start_lower) ||
34✔
1728
        (start_upper + 1 == end_upper && end_lower - MAX_GENERATE >= start_lower) ||
32✔
1729
        (start_upper == end_upper && end_lower - MAX_GENERATE >= start_lower &&
28✔
1730
                                     start_lower + MAX_GENERATE <= end_lower)) {
18✔
1731
        fprintf(stderr, "%s: -g parameter generates too many addresses\n", prog);
8✔
1732
        exit(1);
8✔
1733
    }
1734

1735
    while ((start_upper < end_upper) ||
66✔
1736
           (start_upper == end_upper && start_lower <= end_lower)) {
60✔
1737
        uint64_to_be_octets(start_upper, in6_addr_tmp.s6_addr);
40✔
1738
        uint64_to_be_octets(start_lower, in6_addr_tmp.s6_addr + 8);
40✔
1739
        inet_ntop(AF_INET6, &in6_addr_tmp, buffer, sizeof(buffer));
40✔
1740
        if (scope_str) {
40✔
1741
            if (strlen(buffer) + strlen(scope_str) + 1 > sizeof(buffer)) {
6✔
1742
                fprintf(stderr, "%s: scope identifier is too long\n", prog);
×
1743
                exit(1);
×
1744
            }
1745
            strncat(buffer, scope_str, sizeof(buffer) - strlen(buffer) - 1);
6✔
1746
        }
1747
        add_name(buffer);
40✔
1748
        start_lower++;
40✔
1749
        if (start_lower == 0) {
40✔
1750
            start_upper++;
2✔
1751
        }
1752
    }
1753
}
26✔
1754
#endif /* IPv6 */
1755

1756
void main_loop()
373✔
1757
{
1758
    int64_t lt;
1759
    int64_t wait_time_ns;
1760
    struct event *event;
1761
    struct host_entry *h;
1762

1763
    while (event_queue_ping.first || event_queue_timeout.first) {
1,948✔
1764
        dbg_printf("%s", "# main_loop\n");
1765

1766
        /* timeout event ? */
1767
        if (event_queue_timeout.first && event_queue_timeout.first->ev_time - current_time_ns <= 0) {
1,592✔
1768
            event = ev_dequeue(&event_queue_timeout);
113✔
1769
            h = event->host;
113✔
1770

1771
            dbg_printf("%s [%d]: timeout event\n", h->host, event->ping_index);
1772

1773
            stats_add(h, event->ping_index, 0, -1);
113✔
1774

1775
            if (per_recv_flag) {
113✔
1776
                print_timeout(h, event->ping_index);
25✔
1777
            }
7✔
1778

1779
            /* do we need to send a retry? */
1780
            if (!loop_flag && !count_flag) {
113✔
1781
                if (h->num_sent < retry + 1) {
64✔
1782
                    if (backoff_flag) {
39✔
1783
                        h->timeout *= backoff;
39✔
1784
                    }
9✔
1785
                    send_ping(h, event->ping_index);
39✔
1786
                }
9✔
1787
            }
14✔
1788

1789
            /* note: we process first timeout events, because we might need to
1790
             * wait to process ping events, while we for sure never need to
1791
             * wait for timeout events.
1792
             */
1793
            continue;
113✔
1794
        }
1795

1796
        /* ping event ? */
1797
        if (event_queue_ping.first && event_queue_ping.first->ev_time - current_time_ns <= 0) {
1,738✔
1798
            /* Make sure that we don't ping more than once every "interval" */
1799
            lt = current_time_ns - last_send_time;
1,154✔
1800
            if (lt < interval)
1,154✔
1801
                goto wait_for_reply;
261✔
1802

1803
            /* Dequeue the event */
1804
            event = ev_dequeue(&event_queue_ping);
893✔
1805
            h = event->host;
893✔
1806

1807
            dbg_printf("%s [%d]: ping event\n", h->host, event->ping_index);
1808

1809
            /* Send the ping */
1810
            send_ping(h, event->ping_index);
893✔
1811

1812
            /* Loop and count mode: schedule next ping */
1813
            if (loop_flag || (count_flag && event->ping_index + 1 < count)) {
893✔
1814
                host_add_ping_event(h, event->ping_index + 1, event->ev_time + perhost_interval);
333✔
1815
            }
107✔
1816
        }
259✔
1817

1818
    wait_for_reply:
645✔
1819

1820
        /* When is the next ping next event? */
1821
        wait_time_ns = -1;
1,479✔
1822
        if (event_queue_ping.first) {
1,479✔
1823
            wait_time_ns = event_queue_ping.first->ev_time - current_time_ns;
1,027✔
1824
            if (wait_time_ns < 0)
1,027✔
1825
                wait_time_ns = 0;
549✔
1826
            /* make sure that we wait enough, so that the inter-ping delay is
1827
             * bigger than 'interval' */
1828
            if (wait_time_ns < interval) {
1,027✔
1829
                lt = current_time_ns - last_send_time;
551✔
1830
                if (lt < interval) {
551✔
1831
                    wait_time_ns = interval - lt;
549✔
1832
                }
193✔
1833
            }
195✔
1834

1835
            dbg_printf("next ping event in %.0f ms (%s)\n", wait_time_ns / 1e6, event_queue_ping.first->host->host);
1836
        }
326✔
1837

1838
        /* When is the next timeout event? */
1839
        if (event_queue_timeout.first) {
1,479✔
1840
            int64_t wait_time_timeout = event_queue_timeout.first->ev_time - current_time_ns;
957✔
1841
            if (wait_time_ns < 0 || wait_time_timeout < wait_time_ns) {
957✔
1842
                wait_time_ns = wait_time_timeout;
448✔
1843
                if (wait_time_ns < 0) {
448✔
1844
                    wait_time_ns = 0;
×
1845
                }
1846
            }
119✔
1847

1848
            dbg_printf("next timeout event in %.0f ms (%s)\n", wait_time_timeout / 1e6, event_queue_timeout.first->host->host);
1849
        }
284✔
1850

1851
        /* When is the next report due? */
1852
        if (report_interval && (loop_flag || count_flag)) {
1,479✔
1853
            int64_t wait_time_next_report = next_report_time - current_time_ns;
216✔
1854
            if (wait_time_next_report < wait_time_ns) {
216✔
1855
                wait_time_ns = wait_time_next_report;
72✔
1856
                if (wait_time_ns < 0) {
72✔
1857
                    wait_time_ns = 0;
×
1858
                }
1859
            }
24✔
1860

1861
            dbg_printf("next report  event in %0.f ms\n", wait_time_next_report / 1e6);
1862
        }
72✔
1863

1864
        /* if wait_time is still -1, it means that we are waiting for nothing... */
1865
        if (wait_time_ns == -1) {
1,479✔
1866
            break;
14✔
1867
        }
1868

1869
        /* end of loop was requested by interrupt signal handler */
1870
        if (finish_requested) {
1,465✔
1871
            break;
3✔
1872
        }
1873

1874
        /* Receive replies */
1875
        /* (this is what sleeps during each loop iteration) */
1876
        dbg_printf("waiting up to %.0f ms\n", wait_time_ns / 1e6);
1877
        if (wait_for_reply(wait_time_ns)) {
1,462✔
1878
            while (wait_for_reply(0))
1,291✔
1879
                ; /* process other replies in the queue */
1880
        }
243✔
1881

1882
        update_current_time();
1,462✔
1883

1884
        if (status_snapshot) {
1,462✔
1885
            status_snapshot = 0;
×
1886
            if (json_flag)
×
1887
                print_per_system_splits_json();
×
1888
            else
1889
                print_per_system_splits();
×
1890
        }
1891

1892
        /* Print report */
1893
        if (report_interval && (loop_flag || count_flag) && (current_time_ns >= next_report_time)) {
1,462✔
1894
            if (netdata_flag) {
45✔
1895
                print_netdata();
3✔
1896
            }
1✔
1897
            else if (json_flag) {
42✔
1898
                print_per_system_splits_json();
3✔
1899
            }
1✔
1900
            else {
1901
                print_per_system_splits();
39✔
1902
            }
1903

1904
            while (current_time_ns >= next_report_time) {
90✔
1905
                next_report_time += report_interval;
45✔
1906
            }
1907
        }
15✔
1908
    }
1909
}
373✔
1910

1911
/************************************************************
1912

1913
  Function: signal_handler
1914

1915
*************************************************************
1916

1917
  Inputs:  int signum
1918

1919
  Description:
1920

1921
  SIGQUIT signal handler - set flag and return
1922
  SIGINT signal handler - set flag and return
1923

1924
************************************************************/
1925

1926
void signal_handler(int signum)
×
1927
{
1928
    switch (signum) {
×
1929
    case SIGINT:
1930
        finish_requested = 1;
×
1931
        break;
×
1932

1933
    case SIGQUIT:
1934
        status_snapshot = 1;
×
1935
        break;
×
1936
    }
1937
}
×
1938

1939
/************************************************************
1940

1941
  Function: update_current_time
1942

1943
*************************************************************/
1944

1945
void update_current_time()
4,608✔
1946
{
1947
    clock_gettime(CLOCKID, &current_time);
4,608✔
1948
    current_time_ns = timespec_ns(&current_time);
4,608✔
1949
}
4,608✔
1950

1951
/************************************************************
1952

1953
  Function: finish
1954

1955
*************************************************************
1956

1957
  Inputs:  void (none)
1958

1959
  Description:
1960

1961
  Main program clean up and exit point
1962

1963
************************************************************/
1964

1965
void finish()
373✔
1966
{
1967
    int i;
1968
    HOST_ENTRY *h;
1969

1970
    update_current_time();
373✔
1971
    end_time = current_time_ns;
373✔
1972

1973
    /* tot up unreachables */
1974
    for (i = 0; i < num_hosts; i++) {
948✔
1975
        h = table[i];
575✔
1976

1977
        if (!h->num_recv) {
575✔
1978
            num_unreachable++;
89✔
1979

1980
            if (verbose_flag || unreachable_flag) {
89✔
1981
                printf("%s", h->host);
47✔
1982

1983
                if (verbose_flag)
47✔
1984
                    printf(" is unreachable");
44✔
1985

1986
                printf("\n");
47✔
1987
            }
3✔
1988
        }
15✔
1989
    }
157✔
1990

1991
    if (count_flag || loop_flag) {
373✔
1992
        if (json_flag)
156✔
1993
            print_per_system_stats_json();
56✔
1994
        else
1995
            print_per_system_stats();
100✔
1996
    }
46✔
1997
#if defined(DEBUG) || defined(_DEBUG)
1998
    else if (print_per_system_flag) {
1999
        if (json_flag)
2000
            print_per_system_stats_json();
2001
        else
2002
            print_per_system_stats();
2003
    }
2004
#endif /* DEBUG || _DEBUG */
2005

2006
    if (stats_flag) {
373✔
2007
        if (json_flag)
12✔
2008
            print_global_stats_json();
3✔
2009
        else
2010
            print_global_stats();
9✔
2011
    }
4✔
2012

2013
    if (min_reachable) {
373✔
2014
        if ((num_hosts - num_unreachable) >= min_reachable) {
9✔
2015
            printf("Enough hosts reachable (required: %d, reachable: %d)\n", min_reachable, num_hosts - num_unreachable);
6✔
2016
            exit(0);
6✔
2017
        }
2018
        else {
2019
            printf("Not enough hosts reachable (required: %d, reachable: %d)\n", min_reachable, num_hosts - num_unreachable);
3✔
2020
            exit(1);
3✔
2021
        }
2022
    }
2023

2024
    if (num_noaddress)
364✔
2025
        exit(2);
3✔
2026
    else if (num_alive != num_hosts)
361✔
2027
        exit(1);
50✔
2028

2029
    exit(0);
311✔
2030
}
2031

2032
/************************************************************
2033

2034
  Function: print_recv
2035

2036
*************************************************************
2037

2038
  Inputs: HOST_ENTRY *h, int64_t recv_time, int result,
2039
          int this_count, int64_t this_reply, int avg
2040

2041
  Description:
2042

2043
************************************************************/
2044

2045
void print_recv(HOST_ENTRY *h, int64_t recv_time, int result, int this_count, int64_t this_reply, int avg) {
186✔
2046
    if (json_flag) {
186✔
2047
        printf("{\"resp\": {");
35✔
2048

2049
        if (timestamp_flag)
35✔
2050
            print_timestamp_format(recv_time, timestamp_format_flag);
15✔
2051

2052
        printf("\"host\": \"%s\", ", h->host);
35✔
2053
        printf("\"seq\": %d, ", this_count);
35✔
2054
        printf("\"size\": %d, ", result);
35✔
2055
        printf("\"rtt\": %s", sprint_tm(this_reply));
35✔
2056
        return;
35✔
2057
    }
2058

2059
    /* Normal Output */
2060
    if (timestamp_flag)
151✔
2061
        print_timestamp_format(recv_time, timestamp_format_flag);
30✔
2062

2063
    printf("%-*s : [%d], %d bytes, %s ms",
151✔
2064
        max_hostname_len, h->host, this_count, result, sprint_tm(this_reply));
45✔
2065

2066
    printf(" (%s avg, ", sprint_tm(avg));
151✔
2067

2068
    if (h->num_recv <= h->num_sent) {
151✔
2069
        printf("%d%% loss)",
151✔
2070
            ((h->num_sent - h->num_recv) * 100) / h->num_sent);
151✔
2071
    }
45✔
2072
    else {
2073
        printf("%d%% return)",
×
2074
            (h->num_recv_total * 100) / h->num_sent);
×
2075
    }
2076
}
56✔
2077

2078
/************************************************************
2079

2080
  Function: print_timeout
2081

2082
*************************************************************
2083

2084
  Inputs: HOST_ENTRY *h, int ping_index
2085

2086
  Description:
2087

2088
************************************************************/
2089

2090
void print_timeout(HOST_ENTRY *h, int ping_index) {
25✔
2091
    if (json_flag) {
25✔
2092
        printf("{\"timeout\": {");
6✔
2093
        if (timestamp_flag)
6✔
NEW
2094
            print_timestamp_format(current_time_ns, timestamp_format_flag);
×
2095

2096
        printf("\"host\": \"%s\", ", h->host);
6✔
2097
        printf("\"seq\": %d", ping_index);
6✔
2098
        printf("}}\n");
6✔
2099
        return;
6✔
2100
    }
2101

2102
    /* Normal Output */
2103
    if (timestamp_flag)
19✔
NEW
2104
        print_timestamp_format(current_time_ns, timestamp_format_flag);
×
2105

2106
    printf("%-*s : [%d], timed out",
19✔
2107
        max_hostname_len, h->host, ping_index);
5✔
2108

2109
    if (h->num_recv > 0) {
19✔
NEW
2110
        printf(" (%s avg, ", sprint_tm(h->total_time / h->num_recv));
×
2111
    }
2112
    else {
2113
        printf(" (NaN avg, ");
19✔
2114
    }
2115

2116
    if (h->num_recv <= h->num_sent) {
19✔
2117
        printf("%d%% loss)",
19✔
2118
            ((h->num_sent - h->num_recv) * 100) / h->num_sent);
19✔
2119
    }
5✔
2120
    else {
NEW
2121
        printf("%d%% return)",
×
NEW
2122
            (h->num_recv_total * 100) / h->num_sent);
×
2123
    }
2124
    printf("\n");
19✔
2125
}
7✔
2126

2127
/************************************************************
2128

2129
  Function: print_recv_ext
2130

2131
*************************************************************
2132

2133
  Inputs:  IP_HEADER_RESULT *ip_header_res,
2134
           int64_t recv_time, int64_t this_reply
2135

2136
  Description:
2137

2138
************************************************************/
2139

2140
void print_recv_ext(IP_HEADER_RESULT *ip_header_res, int64_t recv_time, int64_t this_reply) { 
450✔
2141
    if (icmp_request_typ == 13) {
450✔
2142
        printf("%s timestamps: Originate=%u Receive=%u Transmit=%u Localreceive=%u",
28✔
2143
            alive_flag ? "" : ",",
14✔
2144
            ip_header_res->otime_ms, ip_header_res->rtime_ms, ip_header_res->ttime_ms,
2145
            ms_since_midnight_utc(recv_time));
2146
    }
2147

2148
    if(print_tos_flag) {
450✔
2149
        if(ip_header_res->tos != -1) {
43✔
2150
            printf(" (TOS %d)", ip_header_res->tos);
43✔
2151
        }
11✔
2152
        else {
2153
            printf(" (TOS unknown)");
×
2154
        }
2155
    }
11✔
2156

2157
    if (print_ttl_flag) {
450✔
2158
        if(ip_header_res->ttl != -1) {
43✔
2159
            printf(" (TTL %d)", ip_header_res->ttl);
43✔
2160
        }
11✔
2161
        else {
2162
            printf(" (TTL unknown)");
×
2163
        }
2164
    }
11✔
2165

2166
    if (elapsed_flag && !per_recv_flag)
450✔
2167
        printf(" (%s ms)", sprint_tm(this_reply));
8✔
2168
    
2169
    printf("\n");
450✔
2170
}
450✔
2171

2172
/************************************************************
2173

2174
  Function: print_recv_ext_json
2175

2176
*************************************************************
2177

2178
  Inputs:  IP_HEADER_RESULT *ip_header_res,
2179
           int64_t recv_time, int64_t this_reply
2180

2181
  Description:
2182

2183
************************************************************/
2184

2185
void print_recv_ext_json(IP_HEADER_RESULT *ip_header_res, int64_t recv_time, int64_t this_reply) {
35✔
2186
    if (icmp_request_typ == 13) {
35✔
2187
        printf(", \"timestamps\": {");
2✔
2188
        printf("\"originate\": %u, ", ip_header_res->otime_ms);
2✔
2189
        printf("\"receive\": %u, ", ip_header_res->rtime_ms);
2✔
2190
        printf("\"transmit\": %u, ", ip_header_res->ttime_ms);
2✔
2191
        printf("\"localreceive\": %u}", ms_since_midnight_utc(recv_time));
2✔
2192
    }
2193

2194
    if(print_tos_flag) {
35✔
2195
        if(ip_header_res->tos != -1) {
6✔
2196
            printf(", \"tos\": %d", ip_header_res->tos);
6✔
2197
        }
2✔
2198
        else {
2199
            printf(", \"tos\": -1");
×
2200
        }
2201
    }
2✔
2202

2203
    if (print_ttl_flag) {
35✔
2204
        if(ip_header_res->ttl != -1) {
6✔
2205
            printf(", \"ttl\": %d", ip_header_res->ttl);
6✔
2206
        }
2✔
2207
        else {
2208
            printf(", \"ttl\": -1");
×
2209
        }
2210
    }
2✔
2211

2212
    if (elapsed_flag && !per_recv_flag)
35✔
2213
        printf(" (%s ms)", sprint_tm(this_reply));
×
2214

2215
    printf("}}");
35✔
2216
    printf("\n");
35✔
2217
}
35✔
2218

2219
/************************************************************
2220

2221
  Function: print_per_system_stats
2222

2223
*************************************************************
2224

2225
  Inputs:  void (none)
2226

2227
  Description:
2228

2229

2230
************************************************************/
2231

2232
void print_per_system_stats(void)
100✔
2233
{
2234
    int i, j, avg, outage_ms;
2235
    HOST_ENTRY *h;
2236
    int64_t resp;
2237

2238
    if (verbose_flag || per_recv_flag)
100✔
2239
        fprintf(stderr, "\n");
59✔
2240

2241
    for (i = 0; i < num_hosts; i++) {
234✔
2242
        h = table[i];
134✔
2243
        fprintf(stderr, "%-*s :", max_hostname_len, h->host);
134✔
2244

2245
        if (report_all_rtts_flag) {
134✔
2246
            for (j = 0; j < h->num_sent; j++) {
248✔
2247
                if ((resp = h->resp_times[j]) >= 0)
204✔
2248
                    fprintf(stderr, " %s", sprint_tm(resp));
196✔
2249
                else
2250
                    fprintf(stderr, " -");
8✔
2251
            }
64✔
2252

2253
            fprintf(stderr, "\n");
44✔
2254
        }
12✔
2255
        else {
2256
            if (h->num_recv <= h->num_sent) {
90✔
2257
                fprintf(stderr, " xmt/rcv/%%loss = %d/%d/%d%%",
116✔
2258
                    h->num_sent, h->num_recv, h->num_sent > 0 ? ((h->num_sent - h->num_recv) * 100) / h->num_sent : 0);
90✔
2259

2260
                if (outage_flag) {
90✔
2261
                    /* Time outage total */
2262
                    outage_ms = (h->num_sent - h->num_recv) * perhost_interval / 1e6;
9✔
2263
                    fprintf(stderr, ", outage(ms) = %d", outage_ms);
9✔
2264
                }
3✔
2265
            }
26✔
2266
            else {
2267
                fprintf(stderr, " xmt/rcv/%%return = %d/%d/%d%%",
×
2268
                    h->num_sent, h->num_recv,
2269
                    h->num_sent > 0 ? ((h->num_recv * 100) / h->num_sent) : 0);
×
2270
            }
2271

2272
            if (h->num_recv) {
90✔
2273
                avg = h->total_time / h->num_recv;
79✔
2274
                fprintf(stderr, ", min/avg/max = %s", sprint_tm(h->min_reply));
79✔
2275
                fprintf(stderr, "/%s", sprint_tm(avg));
79✔
2276
                fprintf(stderr, "/%s", sprint_tm(h->max_reply));
79✔
2277
            }
23✔
2278

2279
            fprintf(stderr, "\n");
90✔
2280
        }
2281
    }
38✔
2282
}
100✔
2283

2284
/************************************************************
2285

2286
  Function: print_per_system_stats_json
2287

2288
*************************************************************
2289

2290
  Inputs:  void (none)
2291

2292
  Description:
2293

2294

2295
************************************************************/
2296

2297
void print_per_system_stats_json(void)
56✔
2298
{
2299
    int i, j, avg, outage_ms;
2300
    HOST_ENTRY *h;
2301
    int64_t resp;
2302

2303
    for (i = 0; i < num_hosts; i++) {
118✔
2304
        h = table[i];
62✔
2305

2306
        if (report_all_rtts_flag)
62✔
2307
            fprintf(stdout, "{\"vSum\": {");
18✔
2308
        else
2309
            fprintf(stdout, "{\"summary\": {");
44✔
2310

2311
        fprintf(stdout, "\"host\": \"%s\", ", h->host);
62✔
2312

2313
        if (report_all_rtts_flag) {
62✔
2314
            fprintf(stdout, "\"values\": [");
18✔
2315
            for (j = 0; j < h->num_sent; j++) {
42✔
2316
                if (j > 0)
24✔
2317
                  fprintf(stdout, ", ");
6✔
2318
                
2319
                if ((resp = h->resp_times[j]) >= 0)
24✔
2320
                    fprintf(stdout, "%s", sprint_tm(resp));
21✔
2321
                else
2322
                    fprintf(stdout, "null");
3✔
2323
            }
8✔
2324

2325
            fprintf(stdout, "]}");
18✔
2326
        }
6✔
2327
        else {
2328
            if (h->num_recv <= h->num_sent) {
44✔
2329
                fprintf(stdout, "\"xmt\": %d, ", h->num_sent);
44✔
2330
                fprintf(stdout, "\"rcv\": %d, ", h->num_recv);
44✔
2331
                fprintf(stdout, "\"loss\": %d", h->num_sent > 0 ? ((h->num_sent - h->num_recv) * 100) / h->num_sent : 0);
44✔
2332

2333
                if (outage_flag) {
44✔
2334
                    /* Time outage total */
2335
                    outage_ms = (h->num_sent - h->num_recv) * perhost_interval / 1e6;
×
2336
                    fprintf(stdout, ", \"outage(ms)\": %d", outage_ms);
×
2337
                }
2338
            }
14✔
2339
            else {
2340
                fprintf(stdout, "\"xmt\": %d, ", h->num_sent);
×
2341
                fprintf(stdout, "\"rcv\": %d, ", h->num_recv);
×
2342
                fprintf(stdout, "\"return\": %d", h->num_sent > 0 ? ((h->num_recv * 100) / h->num_sent) : 0);
×
2343
            }
2344

2345
            if (h->num_recv) {
44✔
2346
                avg = h->total_time / h->num_recv;
41✔
2347
                fprintf(stdout, ", \"rttMin\": %s", sprint_tm(h->min_reply));
41✔
2348
                fprintf(stdout, ", \"rttAvg\": %s", sprint_tm(avg));
41✔
2349
                fprintf(stdout, ", \"rttMax\": %s", sprint_tm(h->max_reply));
41✔
2350
            }
13✔
2351

2352
            fprintf(stdout, "}");
44✔
2353
        }
2354
        fprintf(stdout, "}\n");
62✔
2355
    }
20✔
2356
}
56✔
2357

2358
/************************************************************
2359

2360
  Function: print_netdata
2361

2362
*************************************************************
2363

2364
  Inputs:  void (none)
2365

2366
  Description:
2367

2368

2369
************************************************************/
2370

2371
void print_netdata(void)
3✔
2372
{
2373
    static int sent_charts = 0;
2374

2375
    int i;
2376
    int64_t avg;
2377
    HOST_ENTRY *h;
2378

2379
    for (i = 0; i < num_hosts; i++) {
6✔
2380
        h = table[i];
3✔
2381

2382
        if (!sent_charts) {
3✔
2383
            printf("CHART fping.%s_packets '' 'FPing Packets' packets '%s' fping.packets line 110020 %.0f\n", h->name, h->host, report_interval / 1e9);
3✔
2384
            printf("DIMENSION xmt sent absolute 1 1\n");
3✔
2385
            printf("DIMENSION rcv received absolute 1 1\n");
3✔
2386
        }
1✔
2387

2388
        printf("BEGIN fping.%s_packets\n", h->name);
3✔
2389
        printf("SET xmt = %d\n", h->num_sent_i);
3✔
2390
        printf("SET rcv = %d\n", h->num_recv_i);
3✔
2391
        printf("END\n");
3✔
2392

2393
        if (!sent_charts) {
3✔
2394
            printf("CHART fping.%s_quality '' 'FPing Quality' percentage '%s' fping.quality area 110010 %.0f\n", h->name, h->host, report_interval / 1e9);
3✔
2395
            printf("DIMENSION returned '' absolute 1 1\n");
3✔
2396
            /* printf("DIMENSION lost '' absolute 1 1\n"); */
2397
        }
1✔
2398

2399
        printf("BEGIN fping.%s_quality\n", h->name);
3✔
2400
        /*
2401
        if( h->num_recv_i <= h->num_sent_i )
2402
            printf("SET lost = %d\n", h->num_sent_i > 0 ? ( ( h->num_sent_i - h->num_recv_i ) * 100 ) / h->num_sent_i : 0 );
2403
        else
2404
            printf("SET lost = 0\n");
2405
*/
2406

2407
        printf("SET returned = %d\n", h->num_sent_i > 0 ? ((h->num_recv_i * 100) / h->num_sent_i) : 0);
3✔
2408
        printf("END\n");
3✔
2409

2410
        if (!sent_charts) {
3✔
2411
            printf("CHART fping.%s_latency '' 'FPing Latency' ms '%s' fping.latency area 110000 %.0f\n", h->name, h->host, report_interval / 1e9);
3✔
2412
            printf("DIMENSION min minimum absolute 1 1000000\n");
3✔
2413
            printf("DIMENSION max maximum absolute 1 1000000\n");
3✔
2414
            printf("DIMENSION avg average absolute 1 1000000\n");
3✔
2415
        }
1✔
2416

2417
        printf("BEGIN fping.%s_latency\n", h->name);
3✔
2418
        if (h->num_recv_i) {
3✔
2419
            avg = h->total_time_i / h->num_recv_i;
3✔
2420
            printf("SET min = %" PRId64 "\n", h->min_reply_i);
3✔
2421
            printf("SET avg = %" PRId64 "\n", avg);
3✔
2422
            printf("SET max = %" PRId64 "\n", h->max_reply_i);
3✔
2423
        }
1✔
2424
        printf("END\n");
3✔
2425

2426
        stats_reset_interval(h);
3✔
2427
    }
1✔
2428

2429
    sent_charts = 1;
3✔
2430
}
3✔
2431

2432
/************************************************************
2433

2434
  Function: print_per_system_splits
2435

2436
*************************************************************
2437

2438
  Inputs:  void (none)
2439

2440
  Description:
2441

2442

2443
************************************************************/
2444

2445
void print_per_system_splits(void)
39✔
2446
{
2447
    int i, avg, outage_ms_i;
2448
    HOST_ENTRY *h;
2449
    struct tm *curr_tm;
2450

2451
    if (verbose_flag || per_recv_flag)
39✔
2452
        fprintf(stderr, "\n");
×
2453

2454
    update_current_time();
39✔
2455
    curr_tm = localtime((time_t *)&current_time.tv_sec);
39✔
2456
    fprintf(stderr, "[%2.2d:%2.2d:%2.2d]\n", curr_tm->tm_hour,
52✔
2457
        curr_tm->tm_min, curr_tm->tm_sec);
13✔
2458

2459
    for (i = 0; i < num_hosts; i++) {
78✔
2460
        h = table[i];
39✔
2461
        fprintf(stderr, "%-*s :", max_hostname_len, h->host);
39✔
2462

2463
        if (h->num_recv_i <= h->num_sent_i) {
39✔
2464
            fprintf(stderr, " xmt/rcv/%%loss = %d/%d/%d%%",
52✔
2465
                h->num_sent_i, h->num_recv_i, h->num_sent_i > 0 ? ((h->num_sent_i - h->num_recv_i) * 100) / h->num_sent_i : 0);
39✔
2466

2467
            if (outage_flag) {
39✔
2468
                /* Time outage  */
2469
                outage_ms_i = (h->num_sent_i - h->num_recv_i) * perhost_interval / 1e6;
12✔
2470
                fprintf(stderr, ", outage(ms) = %d", outage_ms_i);
12✔
2471
            }
4✔
2472
        }
13✔
2473
        else {
2474
            fprintf(stderr, " xmt/rcv/%%return = %d/%d/%d%%",
×
2475
                h->num_sent_i, h->num_recv_i, h->num_sent_i > 0 ? ((h->num_recv_i * 100) / h->num_sent_i) : 0);
×
2476
        }
2477

2478
        if (h->num_recv_i) {
39✔
2479
            avg = h->total_time_i / h->num_recv_i;
27✔
2480
            fprintf(stderr, ", min/avg/max = %s", sprint_tm(h->min_reply_i));
27✔
2481
            fprintf(stderr, "/%s", sprint_tm(avg));
27✔
2482
            fprintf(stderr, "/%s", sprint_tm(h->max_reply_i));
27✔
2483
        }
9✔
2484

2485
        fprintf(stderr, "\n");
39✔
2486
        if (!cumulative_stats_flag) {
39✔
2487
            stats_reset_interval(h);
27✔
2488
        }
9✔
2489
    }
13✔
2490
}
39✔
2491

2492
/************************************************************
2493

2494
  Function: print_per_system_splits_json
2495

2496
*************************************************************
2497

2498
  Inputs:  void (none)
2499

2500
  Description:
2501

2502

2503
************************************************************/
2504

2505
void print_per_system_splits_json(void)
3✔
2506
{
2507
    int i, avg, outage_ms_i;
2508
    HOST_ENTRY *h;
2509

2510
    update_current_time();
3✔
2511

2512
    for (i = 0; i < num_hosts; i++) {
6✔
2513
        h = table[i];
3✔
2514
        fprintf(stdout, "{\"intSum\": {");
3✔
2515
        fprintf(stdout, "\"time\": %" PRId64 ",", current_time.tv_sec);
3✔
2516
        fprintf(stdout, "\"host\": \"%s\", ", h->host);
3✔
2517

2518
        if (h->num_recv_i <= h->num_sent_i) {
3✔
2519
            fprintf(stdout, "\"xmt\": %d, ", h->num_sent_i);
3✔
2520
            fprintf(stdout, "\"rcv\": %d, ", h->num_recv_i);
3✔
2521
            fprintf(stdout, "\"loss\": %d", h->num_sent_i > 0 ? ((h->num_sent_i - h->num_recv_i) * 100) / h->num_sent_i : 0);
3✔
2522

2523
            if (outage_flag) {
3✔
2524
                /* Time outage  */
2525
                outage_ms_i = (h->num_sent_i - h->num_recv_i) * perhost_interval / 1e6;
×
2526
                fprintf(stdout, ", \"outage(ms)\": %d", outage_ms_i);
×
2527
            }
2528
        }
1✔
2529
        else {
2530
            fprintf(stdout, "\"xmt\": %d, ", h->num_sent_i);
×
2531
            fprintf(stdout, "\"rcv\": %d, ", h->num_recv_i);
×
2532
            fprintf(stdout, "\"loss\": %d", h->num_sent_i > 0 ? ((h->num_recv_i * 100) / h->num_sent_i) : 0);
×
2533
        }
2534

2535
        if (h->num_recv_i) {
3✔
2536
            avg = h->total_time_i / h->num_recv_i;
3✔
2537
            fprintf(stdout, ", \"rttMin\": %s, ", sprint_tm(h->min_reply_i));
3✔
2538
            fprintf(stdout, "\"rttAvg\": %s, ", sprint_tm(avg));
3✔
2539
            fprintf(stdout, "\"rttMax\": %s", sprint_tm(h->max_reply_i));
3✔
2540
        }
1✔
2541

2542
        fprintf(stdout, "}}\n");
3✔
2543
        if (!cumulative_stats_flag) {
3✔
2544
            stats_reset_interval(h);
3✔
2545
        }
1✔
2546
    }
1✔
2547
}
3✔
2548

2549
/************************************************************
2550

2551
  Function: print_global_stats
2552

2553
*************************************************************
2554

2555
  Inputs:  void (none)
2556

2557
  Description:
2558

2559

2560
************************************************************/
2561

2562
void print_global_stats(void)
9✔
2563
{
2564
    fprintf(stderr, "\n");
9✔
2565
    fprintf(stderr, " %7d targets\n", num_hosts);
9✔
2566
    fprintf(stderr, " %7d alive\n", num_alive);
9✔
2567
    fprintf(stderr, " %7d unreachable\n", num_unreachable);
9✔
2568
    fprintf(stderr, " %7d unknown addresses\n", num_noaddress);
9✔
2569
    fprintf(stderr, "\n");
9✔
2570
    fprintf(stderr, " %7d timeouts (waiting for response)\n", num_timeout);
9✔
2571
    fprintf(stderr, " %7d ICMP Echos sent\n", num_pingsent);
9✔
2572
    fprintf(stderr, " %7d ICMP Echo Replies received\n", num_pingreceived);
9✔
2573
    fprintf(stderr, " %7d other ICMP received\n", num_othericmprcvd);
9✔
2574
    fprintf(stderr, "\n");
9✔
2575

2576
    if (total_replies == 0) {
9✔
2577
        min_reply = 0;
3✔
2578
        max_reply = 0;
3✔
2579
        total_replies = 1;
3✔
2580
        sum_replies = 0;
3✔
2581
    }
1✔
2582

2583
    fprintf(stderr, " %s ms (min round trip time)\n", sprint_tm(min_reply));
9✔
2584
    fprintf(stderr, " %s ms (avg round trip time)\n",
12✔
2585
        sprint_tm(sum_replies / total_replies));
3✔
2586
    fprintf(stderr, " %s ms (max round trip time)\n", sprint_tm(max_reply));
9✔
2587
    fprintf(stderr, " %12.3f sec (elapsed real time)\n",
12✔
2588
        (end_time - start_time) / 1e9);
9✔
2589
    fprintf(stderr, "\n");
9✔
2590
}
9✔
2591

2592
/************************************************************
2593

2594
  Function: print_global_stats_json
2595

2596
*************************************************************
2597

2598
  Inputs:  void (none)
2599

2600
  Description:
2601

2602

2603
************************************************************/
2604

2605
void print_global_stats_json(void)
3✔
2606
{
2607
    fprintf(stdout, "{\"globalSum\": {");
3✔
2608
    fprintf(stdout, "\"targets\": %d, ", num_hosts);
3✔
2609
    fprintf(stdout, "\"alive\": %d, ", num_alive);
3✔
2610
    fprintf(stdout, "\"unreachable\": %d, ", num_unreachable);
3✔
2611
    fprintf(stdout, "\"unknown addresses\": %d, ", num_noaddress);
3✔
2612
    fprintf(stdout, "\"timeouts (waiting for response)\": %d, ", num_timeout);
3✔
2613
    fprintf(stdout, "\"ICMP Echos sent\": %d, ", num_pingsent);
3✔
2614
    fprintf(stdout, "\"ICMP Echo Replies received\": %d, ", num_pingreceived);
3✔
2615
    fprintf(stdout, "\"other ICMP received\": %d, ", num_othericmprcvd);
3✔
2616

2617
    if (total_replies == 0) {
3✔
2618
        min_reply = 0;
×
2619
        max_reply = 0;
×
2620
        total_replies = 1;
×
2621
        sum_replies = 0;
×
2622
    }
2623

2624
    fprintf(stdout, "\"ms (min round trip time)\": %s, ", sprint_tm(min_reply));
3✔
2625
    fprintf(stdout, "\"ms (avg round trip time)\": %s, ", sprint_tm(sum_replies / total_replies));
3✔
2626
    fprintf(stdout, "\"ms (max round trip time)\": %s, ", sprint_tm(max_reply));
3✔
2627
    fprintf(stdout, "\"sec (elapsed real time)\": %.3f", (end_time - start_time) / 1e9);
3✔
2628
    fprintf(stdout, "}}\n");
3✔
2629
}
3✔
2630

2631
/************************************************************
2632

2633
  Function: send_ping
2634

2635
*************************************************************
2636

2637
  Inputs:  int s, HOST_ENTRY *h
2638

2639
  Description:
2640

2641
  Compose and transmit an ICMP_ECHO REQUEST packet.  The IP packet
2642
  will be added on by the kernel.  The ID field is our UNIX process ID,
2643
  and the sequence number is an index into an array of outstanding
2644
  ping requests. The sequence number will later be used to quickly
2645
  figure out who the ping reply came from.
2646

2647
************************************************************/
2648

2649
int send_ping(HOST_ENTRY *h, int index)
932✔
2650
{
2651
    int n;
2652
    int myseq;
2653
    int ret = 1;
932✔
2654
    uint8_t proto = ICMP_ECHO;
932✔
2655

2656
    update_current_time();
932✔
2657
    h->last_send_time = current_time_ns;
932✔
2658
    myseq = seqmap_add(h->i, index, current_time_ns);
932✔
2659

2660
    dbg_printf("%s [%d]: send ping\n", h->host, index);
2661

2662
    if (h->saddr.ss_family == AF_INET && socket4 >= 0) {
932✔
2663
        if(icmp_request_typ == 13)
809✔
2664
            proto = ICMP_TSTAMP;
18✔
2665
        n = socket_sendto_ping_ipv4(socket4, (struct sockaddr *)&h->saddr, h->saddr_len, myseq, ident4, proto);
809✔
2666
    }
253✔
2667
#ifdef IPV6
2668
    else if (h->saddr.ss_family == AF_INET6 && socket6 >= 0) {
123✔
2669
        n = socket_sendto_ping_ipv6(socket6, (struct sockaddr *)&h->saddr, h->saddr_len, myseq, ident6);
123✔
2670
    }
15✔
2671
#endif
2672
    else {
2673
        return 0;
×
2674
    }
2675

2676
    /* error sending? */
2677
    if (
664✔
2678
        (n < 0)
268✔
2679
#if defined(EHOSTDOWN)
2680
        && errno != EHOSTDOWN
302✔
2681
#endif
2682
    ) {
2683
        if (verbose_flag) {
34✔
2684
            print_warning("%s: error while sending ping: %s\n", h->host, strerror(errno));
28✔
2685
        }
2686
        else {
2687
            dbg_printf("%s: error while sending ping: %s\n", h->host, strerror(errno));
2688
        }
2689

2690
        h->num_sent++;
34✔
2691
        h->num_sent_i++;
34✔
2692
        if (!loop_flag)
34✔
2693
            h->resp_times[index] = RESP_ERROR;
34✔
2694

2695
        ret = 0;
34✔
2696
    }
2697
    else {
2698
        /* schedule timeout */
2699
        host_add_timeout_event(h, index, current_time_ns + h->timeout);
898✔
2700

2701
        /* mark this trial as outstanding */
2702
        if (!loop_flag) {
898✔
2703
            h->resp_times[index] = RESP_WAITING;
898✔
2704
        }
268✔
2705
    }
2706

2707
    num_pingsent++;
932✔
2708
    last_send_time = h->last_send_time;
932✔
2709

2710
    return (ret);
932✔
2711
}
268✔
2712

2713
int socket_can_read(struct timeval *timeout)
2,753✔
2714
{
2715
    int nfound;
2716
    fd_set readset;
2717
    int socketmax;
2718

2719
#ifndef IPV6
2720
    socketmax = socket4;
2721
#else
2722
    socketmax = socket4 > socket6 ? socket4 : socket6;
2,753✔
2723
#endif
2724

2725
select_again:
2,069✔
2726
    FD_ZERO(&readset);
35,857✔
2727
    if (socket4 >= 0)
2,753✔
2728
        FD_SET(socket4, &readset);
2,753✔
2729
#ifdef IPV6
2730
    if (socket6 >= 0)
2,753✔
2731
        FD_SET(socket6, &readset);
2,753✔
2732
#endif
2733

2734
    nfound = select(socketmax + 1, &readset, NULL, NULL, timeout);
2,753✔
2735
    if (nfound < 0) {
2,753✔
2736
        if (errno == EINTR) {
×
2737
            /* interrupted system call: redo the select */
2738
            goto select_again;
×
2739
        }
2740
        else {
2741
            perror("select");
×
2742
        }
2743
    }
2744

2745
    if (nfound > 0) {
2,753✔
2746
        if (socket4 >= 0 && FD_ISSET(socket4, &readset)) {
1,291✔
2747
            return socket4;
1,200✔
2748
        }
2749
#ifdef IPV6
2750
        if (socket6 >= 0 && FD_ISSET(socket6, &readset)) {
91✔
2751
            return socket6;
91✔
2752
        }
2753
#endif
2754
    }
2755

2756
    return -1;
1,462✔
2757
}
684✔
2758

2759
int receive_packet(int64_t wait_time,
2,753✔
2760
#if HAVE_SO_TIMESTAMPNS
2761
    int64_t *reply_timestamp,
2762
#else
2763
    int64_t *reply_timestamp __attribute__((unused)),
2764
#endif
2765
    struct sockaddr *reply_src_addr,
2766
    size_t reply_src_addr_len,
2767
    char *reply_buf,
2768
    size_t reply_buf_len,
2769
    int *ip_header_tos,
2770
    int *ip_header_ttl)
2771
{
2772
    struct timeval to;
2773
    int s = 0;
2,753✔
2774
    int recv_len;
2775
    static unsigned char msg_control[128];
2776
    struct iovec msg_iov = {
4,121✔
2777
        reply_buf,
684✔
2778
        reply_buf_len
684✔
2779
    };
2780
    struct msghdr recv_msghdr = {0};
2,753✔
2781
    recv_msghdr.msg_name = reply_src_addr;
2,753✔
2782
    recv_msghdr.msg_namelen = reply_src_addr_len;
2,753✔
2783
    recv_msghdr.msg_iov = &msg_iov;
2,753✔
2784
    recv_msghdr.msg_iovlen = 1;
2,753✔
2785
    recv_msghdr.msg_control = &msg_control;
2,753✔
2786
    recv_msghdr.msg_controllen = sizeof(msg_control);
2,753✔
2787
    struct cmsghdr *cmsg;
2788

2789
    /* Wait for a socket to become ready */
2790
    if (wait_time) {
2,753✔
2791
        to.tv_sec = wait_time / UINT64_C(1000000000);
1,462✔
2792
        to.tv_usec = (wait_time % UINT64_C(1000000000)) / 1000 + 1;
1,462✔
2793
    }
441✔
2794
    else {
2795
        to.tv_sec = 0;
1,291✔
2796
        to.tv_usec = 0;
1,291✔
2797
    }
2798
    s = socket_can_read(&to);
2,753✔
2799
    if (s == -1) {
2,753✔
2800
        return 0; /* timeout */
1,462✔
2801
    }
2802

2803
    recv_len = recvmsg(s, &recv_msghdr, MSG_TRUNC);
1,291✔
2804
    if (recv_len <= 0) {
1,291✔
2805
        return 0;
×
2806
    }
2807

2808
    /* ancilliary data */
2809
    {
2810
#if HAVE_SO_TIMESTAMPNS
2811
        struct timespec reply_timestamp_ts;
2812
        struct timeval reply_timestamp_tv;
2813
#endif
2814
        for (cmsg = CMSG_FIRSTHDR(&recv_msghdr);
1,291✔
2815
             cmsg != NULL;
2,347✔
2816
             cmsg = CMSG_NXTHDR(&recv_msghdr, cmsg)) {
1,056✔
2817
#if HAVE_SO_TIMESTAMPNS
2818
            if (cmsg->cmsg_level == SOL_SOCKET && cmsg->cmsg_type == SCM_TIMESTAMPNS) {
1,056✔
2819
                memcpy(&reply_timestamp_ts, CMSG_DATA(cmsg), sizeof(reply_timestamp_ts));
1,048✔
2820
                *reply_timestamp = timespec_ns(&reply_timestamp_ts);
1,048✔
2821
            }
2822
            if (cmsg->cmsg_level == SOL_SOCKET && cmsg->cmsg_type == SCM_TIMESTAMP) {
1,056✔
2823
                memcpy(&reply_timestamp_tv, CMSG_DATA(cmsg), sizeof(reply_timestamp_tv));
2824
                *reply_timestamp = timeval_ns(&reply_timestamp_tv);
2825
            }
2826
#endif
2827
            if (cmsg->cmsg_level == IPPROTO_IP && cmsg->cmsg_type == IP_TOS) {
1,056✔
2828
                memcpy(ip_header_tos, CMSG_DATA(cmsg), sizeof(*ip_header_tos));
2✔
2829
            }
2830
            if (cmsg->cmsg_level == IPPROTO_IP && cmsg->cmsg_type == IP_TTL) {
1,056✔
2831
                memcpy(ip_header_ttl, CMSG_DATA(cmsg), sizeof(*ip_header_ttl));
2✔
2832
            }
2833
#ifdef IPV6
2834
            if (cmsg->cmsg_level == IPPROTO_IPV6 && cmsg->cmsg_type == IPV6_TCLASS) {
1,056✔
2835
                memcpy(ip_header_tos, CMSG_DATA(cmsg), sizeof(*ip_header_tos));
2✔
2836
            }
2837
            if (cmsg->cmsg_level == IPPROTO_IPV6 && cmsg->cmsg_type == IPV6_HOPLIMIT) {
1,056✔
2838
                memcpy(ip_header_ttl, CMSG_DATA(cmsg), sizeof(*ip_header_ttl));
2✔
2839
            }
2840
#endif
2841
        }
2842
    }
2843

2844
#if defined(DEBUG) || defined(_DEBUG)
2845
    if (randomly_lose_flag) {
2846
        if ((random() & 0x07) <= lose_factor)
2847
            return 0;
2848
    }
2849
#endif
2850

2851
    return recv_len;
1,291✔
2852
}
684✔
2853

2854
/* stats_add: update host statistics for a single packet that was received (or timed out)
2855
 * h: host entry to update
2856
 * index: if in count mode: index number for this ping packet (-1 otherwise)
2857
 * success: 1 if response received, 0 otherwise
2858
 * latency: response time, in ns
2859
 */
2860
void stats_add(HOST_ENTRY *h, int index, int success, int64_t latency)
898✔
2861
{
2862
    /* sent count - we update only on receive/timeout, so that we don't get
2863
     * weird loss percentage, just because a packet was note recived yet.
2864
     */
2865
    h->num_sent++;
898✔
2866
    h->num_sent_i++;
898✔
2867

2868
    if (!success) {
898✔
2869
        if (!loop_flag && index >= 0) {
113✔
2870
            h->resp_times[index] = RESP_TIMEOUT;
113✔
2871
        }
29✔
2872
        num_timeout++;
113✔
2873
        return;
113✔
2874
    }
2875

2876
    /* received count */
2877
    h->num_recv++;
785✔
2878
    h->num_recv_i++;
785✔
2879

2880
    /* maximum */
2881
    if (!h->max_reply || latency > h->max_reply) {
785✔
2882
        h->max_reply = latency;
631✔
2883
    }
192✔
2884
    if (!h->max_reply_i || latency > h->max_reply_i) {
785✔
2885
        h->max_reply_i = latency;
644✔
2886
    }
195✔
2887

2888
    /* minimum */
2889
    if (!h->min_reply || latency < h->min_reply) {
785✔
2890
        h->min_reply = latency;
519✔
2891
    }
155✔
2892
    if (!h->min_reply_i || latency < h->min_reply_i) {
785✔
2893
        h->min_reply_i = latency;
549✔
2894
    }
165✔
2895

2896
    /* total time (for average) */
2897
    h->total_time += latency;
785✔
2898
    h->total_time_i += latency;
785✔
2899

2900
    /* response time per-packet (count mode) */
2901
    if (!loop_flag && index >= 0) {
785✔
2902
        h->resp_times[index] = latency;
785✔
2903
    }
239✔
2904
}
268✔
2905

2906
/* stats_reset_interval: reset interval statistics
2907
 * h: host entry to update
2908
 */
2909
void stats_reset_interval(HOST_ENTRY *h)
33✔
2910
{
2911
    h->num_sent_i = 0;
33✔
2912
    h->num_recv_i = 0;
33✔
2913
    h->max_reply_i = 0;
33✔
2914
    h->min_reply_i = 0;
33✔
2915
    h->total_time_i = 0;
33✔
2916
}
33✔
2917

2918
int decode_icmp_ipv4(
1,200✔
2919
    struct sockaddr *response_addr,
2920
    size_t response_addr_len,
2921
    char *reply_buf,
2922
    size_t reply_buf_len,
2923
    unsigned short *id,
2924
    unsigned short *seq,
2925
    IP_HEADER_RESULT *ip_header_res)
2926
{
2927
    struct icmp *icp;
2928
    int hlen = 0;
1,200✔
2929

2930
    if (!using_sock_dgram4) {
1,200✔
2931
        struct ip *ip = (struct ip *)reply_buf;
1,192✔
2932
        ip_header_res->tos = ip->ip_tos;
1,192✔
2933
        ip_header_res->ttl = ip->ip_ttl;
1,192✔
2934

2935
#if defined(__alpha__) && __STDC__ && !defined(__GLIBC__) && !defined(__NetBSD__) && !defined(__OpenBSD__)
2936
        /* The alpha headers are decidedly broken.
2937
         * Using an ANSI compiler, it provides ip_vhl instead of ip_hl and
2938
         * ip_v.  So, to get ip_hl, we mask off the bottom four bits.
2939
         */
2940
        hlen = (ip->ip_vhl & 0x0F) << 2;
2941
#else
2942
        hlen = ip->ip_hl << 2;
1,192✔
2943
#endif
2944
    }
228✔
2945

2946
    if (reply_buf_len < hlen + ICMP_MINLEN) {
1,200✔
2947
        /* too short */
2948
        if (verbose_flag) {
×
2949
            char buf[INET6_ADDRSTRLEN];
2950
            getnameinfo(response_addr, response_addr_len, buf, INET6_ADDRSTRLEN, NULL, 0, NI_NUMERICHOST);
×
2951
            printf("received packet too short for ICMP (%d bytes from %s)\n", (int)reply_buf_len, buf);
×
2952
        }
2953
        return -1;
×
2954
    }
2955

2956
    icp = (struct icmp *)(reply_buf + hlen);
1,200✔
2957

2958
    if ((icmp_request_typ == 0 && icp->icmp_type != ICMP_ECHOREPLY) ||
1,200✔
2959
        (icmp_request_typ == 13 && icp->icmp_type != ICMP_TSTAMPREPLY)) {
506✔
2960
        /* Handle other ICMP packets */
2961
        struct icmp *sent_icmp;
2962
        SEQMAP_VALUE *seqmap_value;
2963
        char addr_ascii[INET6_ADDRSTRLEN];
2964
        HOST_ENTRY *h;
2965

2966
        /* reply icmp packet (hlen + ICMP_MINLEN) followed by "sent packet" (ip + icmp headers) */
2967
        if (reply_buf_len < hlen + ICMP_MINLEN + sizeof(struct ip) + ICMP_MINLEN) {
938✔
2968
            /* discard ICMP message if we can't tell that it was caused by us (i.e. if the "sent packet" is not included). */
2969
            return -1;
×
2970
        }
2971

2972
        sent_icmp = (struct icmp *)(reply_buf + hlen + ICMP_MINLEN + sizeof(struct ip));
482✔
2973

2974
        if ((icmp_request_typ == 0 && sent_icmp->icmp_type != ICMP_ECHO) ||
482✔
2975
            (icmp_request_typ == 13 && sent_icmp->icmp_type != ICMP_TSTAMP) ||
16✔
2976
            sent_icmp->icmp_id != ident4) {
×
2977
            /* not caused by us */
2978
            return -1;
482✔
2979
        }
2980

2981
        seqmap_value = seqmap_fetch(ntohs(sent_icmp->icmp_seq), current_time_ns);
×
2982
        if (seqmap_value == NULL) {
×
2983
            return -1;
×
2984
        }
2985

2986
        getnameinfo(response_addr, response_addr_len, addr_ascii, INET6_ADDRSTRLEN, NULL, 0, NI_NUMERICHOST);
×
2987

2988
        switch (icp->icmp_type) {
×
2989
        case ICMP_UNREACH:
2990
            h = table[seqmap_value->host_nr];
×
2991
            if (icp->icmp_code > ICMP_UNREACH_MAXTYPE) {
×
2992
                print_warning("ICMP Unreachable (Invalid Code) from %s for ICMP Echo sent to %s",
×
2993
                    addr_ascii, h->host);
2994
            }
2995
            else {
2996
                print_warning("%s from %s for ICMP Echo sent to %s",
×
2997
                    icmp_unreach_str[icp->icmp_code], addr_ascii, h->host);
×
2998
            }
2999

3000
            print_warning("\n");
×
3001
            num_othericmprcvd++;
×
3002
            break;
×
3003

3004
        case ICMP_SOURCEQUENCH:
3005
        case ICMP_REDIRECT:
3006
        case ICMP_TIMXCEED:
3007
        case ICMP_PARAMPROB:
3008
            h = table[seqmap_value->host_nr];
×
3009
            if (icp->icmp_type <= ICMP_TYPE_STR_MAX) {
×
3010
                print_warning("%s from %s for ICMP Echo sent to %s",
×
3011
                    icmp_type_str[icp->icmp_type], addr_ascii, h->host);
×
3012
            }
3013
            else {
3014
                print_warning("ICMP %d from %s for ICMP Echo sent to %s",
×
3015
                    icp->icmp_type, addr_ascii, h->host);
×
3016
            }
3017
            print_warning("\n");
×
3018
            num_othericmprcvd++;
×
3019
            break;
×
3020
        }
3021

3022
        return -1;
×
3023
    }
3024

3025
    *id = icp->icmp_id;
718✔
3026
    *seq = ntohs(icp->icmp_seq);
718✔
3027
    if(icp->icmp_type == ICMP_TSTAMPREPLY) {
718✔
3028

3029
        /* Check that reply_buf_len is sufficiently big to contain the timestamps */
3030
        if (reply_buf_len < hlen + ICMP_MINLEN + ICMP_TIMESTAMP_DATA_SIZE) {
16✔
3031
            if (verbose_flag) {
×
3032
                char buf[INET6_ADDRSTRLEN];
3033
                getnameinfo(response_addr, response_addr_len, buf, INET6_ADDRSTRLEN, NULL, 0, NI_NUMERICHOST);
×
3034
                printf("received packet too short for ICMP Timestamp Reply (%d bytes from %s)\n", (int)reply_buf_len, buf);
×
3035
            }
3036
            return -1;
×
3037
        }
3038

3039
        ip_header_res->otime_ms = ntohl(icp->icmp_dun.id_ts.its_otime);
16✔
3040
        ip_header_res->rtime_ms = ntohl(icp->icmp_dun.id_ts.its_rtime);
16✔
3041
        ip_header_res->ttime_ms = ntohl(icp->icmp_dun.id_ts.its_ttime);
16✔
3042
    }
3043

3044
    return hlen;
718✔
3045
}
228✔
3046

3047
#ifdef IPV6
3048
int decode_icmp_ipv6(
91✔
3049
    struct sockaddr *response_addr,
3050
    size_t response_addr_len,
3051
    char *reply_buf,
3052
    size_t reply_buf_len,
3053
    unsigned short *id,
3054
    unsigned short *seq)
3055
{
3056
    struct icmp6_hdr *icp;
3057

3058
    if (reply_buf_len < sizeof(struct icmp6_hdr)) {
91✔
3059
        if (verbose_flag) {
×
3060
            char buf[INET6_ADDRSTRLEN];
3061
            getnameinfo(response_addr, response_addr_len, buf, INET6_ADDRSTRLEN, NULL, 0, NI_NUMERICHOST);
×
3062
            printf("received packet too short for ICMPv6 (%d bytes from %s)\n", (int)reply_buf_len, buf);
×
3063
        }
3064
        return 0; /* too short */
×
3065
    }
3066

3067
    icp = (struct icmp6_hdr *)reply_buf;
91✔
3068

3069
    if (icp->icmp6_type != ICMP6_ECHO_REPLY) {
91✔
3070
        /* Handle other ICMPv6 packets */
3071
        struct ip6_hdr *sent_ipv6;
3072
        struct icmp6_hdr *sent_icmp;
3073
        SEQMAP_VALUE *seqmap_value;
3074
        char addr_ascii[INET6_ADDRSTRLEN];
3075
        HOST_ENTRY *h;
3076

3077
        /* reply icmp packet (ICMPv6 header) followed by "sent packet" (IPv6 + ICMPv6 header) */
3078
        if (reply_buf_len < ICMP_MINLEN + sizeof(struct ip6_hdr) + sizeof(struct icmp6_hdr)) {
×
3079
            /* discard ICMPv6 message if we can't tell that it was caused by us (i.e. if the "sent packet" is not included). */
3080
            return 0;
×
3081
        }
3082

3083
        sent_ipv6 = (struct ip6_hdr *)(reply_buf + sizeof(struct icmp6_hdr));
×
3084
        if (sent_ipv6->ip6_nxt != IPPROTO_ICMPV6) {
×
3085
            /* discard ICMPv6 message if we can't tell that it was caused by
3086
             * us, because the IPv6 header is not directly followed by an
3087
             * ICMPv6 header
3088
             */
3089
            dbg_printf("invoking packet next header is %d\n", sent_ipv6->ip6_nxt);
3090
            return 0;
×
3091
        }
3092
        sent_icmp = (struct icmp6_hdr *)(reply_buf + sizeof(struct icmp6_hdr) + sizeof(struct ip6_hdr));
×
3093

3094
        if (sent_icmp->icmp6_type != ICMP6_ECHO_REQUEST || sent_icmp->icmp6_id != ident6) {
×
3095
            /* not caused by us */
3096
            return 0;
×
3097
        }
3098

3099
        seqmap_value = seqmap_fetch(ntohs(sent_icmp->icmp6_seq), current_time_ns);
×
3100
        if (seqmap_value == NULL) {
×
3101
            return 0;
×
3102
        }
3103

3104
        getnameinfo(response_addr, response_addr_len, addr_ascii, INET6_ADDRSTRLEN, NULL, 0, NI_NUMERICHOST);
×
3105
        h = table[seqmap_value->host_nr];
×
3106

3107
        switch (icp->icmp6_type) {
×
3108
        case ICMP6_DST_UNREACH:
3109
            if (icp->icmp6_code > ICMP6_UNREACH_MAXCODE) {
×
3110
                print_warning("ICMPv6 Destination Unreachable (Code %d) from %s for ICMPv6 Echo Request sent to %s",
×
3111
                    icp->icmp6_code, addr_ascii, h->host);
×
3112
            } else {
3113
                print_warning("ICMPv6 Destination Unreachable (%s) from %s for ICMPv6 Echo Request sent to %s",
×
3114
                    icmp6_unreach_str[icp->icmp6_code], addr_ascii, h->host);
×
3115
            }
3116
            print_warning("\n");
×
3117
            num_othericmprcvd++;
×
3118
            break;
×
3119

3120
        case ICMP6_PACKET_TOO_BIG:
3121
            print_warning("ICMPv6 Packet Too Big from %s for ICMPv6 Echo Request sent to %s\n",
×
3122
                addr_ascii, h->host);
3123
            num_othericmprcvd++;
×
3124
            break;
×
3125

3126
        case ICMP6_TIME_EXCEEDED:
3127
            if (icp->icmp6_code > ICMP6_TIME_EXCEEDED_MAXCODE) {
×
3128
                print_warning("ICMPv6 Time Exceeded (Code %d) from %s for ICMPv6 Echo Request sent to %s",
×
3129
                    icp->icmp6_code, addr_ascii, h->host);
×
3130
            } else {
3131
                print_warning("ICMPv6 Time Exceeded (%s) from %s for ICMPv6 Echo Request sent to %s",
×
3132
                    icmp6_time_exceeded_str[icp->icmp6_code], addr_ascii, h->host);
×
3133
            }
3134
            print_warning("\n");
×
3135
            num_othericmprcvd++;
×
3136
            break;
×
3137

3138
        case ICMP6_PARAM_PROB:
3139
            if (icp->icmp6_code > ICMP6_PARAM_PROB_MAXCODE) {
×
3140
                print_warning("ICMPv6 Parameter Problem (Code %d) from %s for ICMPv6 Echo Request sent to %s",
×
3141
                    icp->icmp6_code, addr_ascii, h->host);
×
3142
            } else {
3143
                print_warning("ICMPv6 Parameter Problem (%s) from %s for ICMPv6 Echo Request sent to %s",
×
3144
                    icmp6_param_prob_str[icp->icmp6_code], addr_ascii, h->host);
×
3145
            }
3146
            print_warning("\n");
×
3147
            num_othericmprcvd++;
×
3148
            break;
×
3149

3150
        default:
3151
            print_warning("ICMPv6 Type %d Code %d from %s for ICMPv6 Echo Request sent to %s\n",
×
3152
                icp->icmp6_type, icp->icmp6_code, addr_ascii, h->host);
×
3153
            num_othericmprcvd++;
×
3154
            break;
×
3155
        }
3156

3157
        return 0;
×
3158
    }
3159

3160
    *id = icp->icmp6_id;
91✔
3161
    *seq = ntohs(icp->icmp6_seq);
91✔
3162

3163
    return 1;
91✔
3164
}
15✔
3165
#endif
3166

3167
int wait_for_reply(int64_t wait_time)
2,753✔
3168
{
3169
    int result;
3170
    static char buffer[RECV_BUFSIZE];
3171
    struct sockaddr_storage response_addr;
3172
    int n, avg;
3173
    HOST_ENTRY *h;
3174
    int64_t this_reply;
3175
    int this_count;
3176
    int64_t recv_time = 0;
2,753✔
3177
    SEQMAP_VALUE *seqmap_value;
3178
    unsigned short id;
3179
    unsigned short seq;
3180
    IP_HEADER_RESULT ip_header_res = default_ip_header_result();
2,753✔
3181

3182
    /* Receive packet */
3183
    result = receive_packet(wait_time, /* max. wait time, in ns */
3,437✔
3184
        &recv_time, /* reply_timestamp */
3185
        (struct sockaddr *)&response_addr, /* reply_src_addr */
3186
        sizeof(response_addr), /* reply_src_addr_len */
3187
        buffer, /* reply_buf */
3188
        sizeof(buffer), /* reply_buf_len */
3189
        &ip_header_res.tos, /* TOS resp. TC byte */
684✔
3190
        &ip_header_res.ttl /* TTL resp. hop limit */
684✔
3191
    );
3192

3193
    if (result <= 0) {
2,753✔
3194
        return 0;
1,462✔
3195
    }
3196

3197
    update_current_time();
1,291✔
3198
    if (recv_time == 0)
1,291✔
3199
        recv_time = current_time_ns;
243✔
3200

3201
    /* Process ICMP packet and retrieve id/seq */
3202
    if (response_addr.ss_family == AF_INET) {
1,291✔
3203
        int ip_hlen = decode_icmp_ipv4(
1,200✔
3204
            (struct sockaddr *)&response_addr,
3205
            sizeof(response_addr),
3206
            buffer,
3207
            sizeof(buffer),
3208
            &id,
3209
            &seq,
3210
            &ip_header_res);
3211
        if (ip_hlen < 0) {
1,200✔
3212
            return 1;
482✔
3213
        }
3214
        if (id != ident4) {
718✔
3215
            return 1; /* packet received, but not the one we are looking for! */
×
3216
        }
3217
        if (!using_sock_dgram4) {
718✔
3218
            /* do not include IP header in returned size, to be consistent with ping(8) and also
3219
             * with fping with IPv6 hosts */
3220
            result -= ip_hlen;
710✔
3221
        }
228✔
3222
    }
228✔
3223
#ifdef IPV6
3224
    else if (response_addr.ss_family == AF_INET6) {
91✔
3225
        if (!decode_icmp_ipv6(
91✔
3226
                (struct sockaddr *)&response_addr,
3227
                sizeof(response_addr),
3228
                buffer,
3229
                sizeof(buffer),
3230
                &id,
3231
                &seq)) {
3232
            return 1;
×
3233
        }
3234
        if (id != ident6) {
91✔
3235
            return 1; /* packet received, but not the one we are looking for! */
×
3236
        }
3237
    }
15✔
3238
#endif
3239
    else {
3240
        return 1;
×
3241
    }
3242

3243
    seqmap_value = seqmap_fetch(seq, current_time_ns);
809✔
3244
    if (seqmap_value == NULL) {
809✔
3245
        return 1;
12✔
3246
    }
3247

3248
    /* find corresponding host_entry */
3249
    n = seqmap_value->host_nr;
797✔
3250
    h = table[n];
797✔
3251
    this_count = seqmap_value->ping_count;
797✔
3252
    this_reply = recv_time - seqmap_value->ping_ts;
797✔
3253

3254
    /* update stats that include invalid replies */
3255
    h->num_recv_total++;
797✔
3256
    num_pingreceived++;
797✔
3257

3258
    dbg_printf("received [%d] from %s\n", this_count, h->host);
3259

3260
    /* optionally require reply source equal to target address */
3261
    if (check_source_flag && addr_cmp((struct sockaddr *)&response_addr, (struct sockaddr *)&h->saddr)) {
797✔
3262
        dbg_printf("%s\n", "discarding reply from wrong source address");
3263
        return 1;
12✔
3264
    }
3265

3266
    /* discard duplicates */
3267
    if (!loop_flag && !(count_flag && quiet_flag) && h->resp_times[this_count] >= 0) {
785✔
3268
        if (!per_recv_flag) {
×
3269
            fprintf(stderr, "%s : duplicate for [%d], %d bytes, %s ms",
×
3270
                h->host, this_count, result, sprint_tm(this_reply));
3271

3272
            if (addr_cmp((struct sockaddr *)&response_addr, (struct sockaddr *)&h->saddr)) {
×
3273
                char buf[INET6_ADDRSTRLEN];
3274
                getnameinfo((struct sockaddr *)&response_addr, sizeof(response_addr), buf, INET6_ADDRSTRLEN, NULL, 0, NI_NUMERICHOST);
×
3275
                fprintf(stderr, " [<- %s]", buf);
×
3276
            }
3277
            fprintf(stderr, "\n");
×
3278
        }
3279
        return 1;
×
3280
    }
3281

3282
    /* discard reply if delay is larger than timeout
3283
     * (see also: github #32) */
3284
    if (this_reply > h->timeout) {
785✔
3285
        return 1;
×
3286
    }
3287

3288
    /* update stats */
3289
    stats_add(h, this_count, 1, this_reply);
785✔
3290
    // TODO: move to stats_add?
3291
    if (!max_reply || this_reply > max_reply)
785✔
3292
        max_reply = this_reply;
523✔
3293
    if (!min_reply || this_reply < min_reply)
785✔
3294
        min_reply = this_reply;
410✔
3295
    sum_replies += this_reply;
785✔
3296
    total_replies++;
785✔
3297

3298
    /* initialize timeout to initial timeout (without backoff) */
3299
    h->timeout = timeout;
785✔
3300

3301
    /* remove timeout event */
3302
    struct event *timeout_event = host_get_timeout_event(h, this_count);
785✔
3303
    if (timeout_event) {
785✔
3304
        ev_remove(&event_queue_timeout, timeout_event);
785✔
3305
    }
239✔
3306

3307
    /* print "is alive" */
3308
    if (h->num_recv == 1) {
785✔
3309
        num_alive++;
486✔
3310
        if (fast_reachable && num_alive >= min_reachable)
486✔
3311
            finish_requested = 1;
3✔
3312

3313
        if (verbose_flag || alive_flag) {
486✔
3314
            printf("%s", h->host);
299✔
3315

3316
            if (verbose_flag)
299✔
3317
                printf(" is alive");
279✔
3318
        }
85✔
3319
    }
142✔
3320

3321
    /* print received ping (unless --quiet) */
3322
    if (per_recv_flag) {
785✔
3323
        avg = h->total_time / h->num_recv;
186✔
3324
        print_recv(h,
242✔
3325
            recv_time,
56✔
3326
            result,
56✔
3327
            this_count,
56✔
3328
            this_reply,
56✔
3329
            avg);
56✔
3330
    }
56✔
3331

3332
    if (verbose_flag || alive_flag || per_recv_flag) {
785✔
3333
        if (addr_cmp((struct sockaddr *)&response_addr, (struct sockaddr *)&h->saddr)) {
485✔
3334
            char buf[INET6_ADDRSTRLEN];
3335
            getnameinfo((struct sockaddr *)&response_addr, sizeof(response_addr), buf, INET6_ADDRSTRLEN, NULL, 0, NI_NUMERICHOST);
6✔
3336
            fprintf(stderr, " [<- %s]", buf);
6✔
3337
        }
3338
        if (json_flag) {
485✔
3339
            print_recv_ext_json(&ip_header_res,
35✔
3340
                recv_time,
11✔
3341
                this_reply);
11✔
3342
        }
11✔
3343
        else {
3344
            print_recv_ext(&ip_header_res,
450✔
3345
                recv_time,
130✔
3346
                this_reply);
130✔
3347
        }
3348
    }
141✔
3349
    return 1;
785✔
3350
}
684✔
3351

3352
/************************************************************
3353

3354
  Function: add_name
3355

3356
*************************************************************
3357

3358
  Inputs:  char* name
3359

3360
  Description:
3361

3362
  process input name for addition to target list
3363
  name can turn into multiple targets via multiple interfaces (-m)
3364
  or via NIS groups
3365

3366
************************************************************/
3367

3368
void add_name(char *name)
609✔
3369
{
3370
    struct addrinfo *res0, *res, hints;
3371
    int ret_ga;
3372
    char *printname;
3373
    char namebuf[256];
3374
    char addrbuf[256];
3375

3376
    /* getaddrinfo */
3377
    memset(&hints, 0, sizeof(struct addrinfo));
609✔
3378
    hints.ai_flags = AI_UNUSABLE;
609✔
3379
    hints.ai_socktype = SOCK_RAW;
609✔
3380
    hints.ai_family = hints_ai_family;
609✔
3381
    if (hints_ai_family == AF_INET) {
609✔
3382
        hints.ai_protocol = IPPROTO_ICMP;
81✔
3383
    }
21✔
3384
#ifdef IPV6
3385
    else if (hints_ai_family == AF_INET6) {
528✔
3386
        hints.ai_protocol = IPPROTO_ICMPV6;
31✔
3387
    }
1✔
3388
#endif
3389
    else {
3390
        hints.ai_socktype = SOCK_STREAM;
497✔
3391
        hints.ai_protocol = 0;
497✔
3392
    }
3393
    ret_ga = getaddrinfo(name, NULL, &hints, &res0);
609✔
3394
    if (ret_ga) {
609✔
3395
        if (!quiet_flag)
29✔
3396
            print_warning("%s: %s\n", name, gai_strerror(ret_ga));
26✔
3397
        num_noaddress++;
29✔
3398

3399
        // Handle JSON output for invalid hosts
3400
        if (json_flag) {
29✔
3401
            fprintf(stdout, "{\"warning\": {\"host\": \"%s\", \"message\": \"%s\"}}\n", name, gai_strerror(ret_ga));
3✔
3402
            return;
21✔
3403
        }
3404

3405
        return;
26✔
3406
    }
3407

3408
    /* NOTE: we could/should loop with res on all addresses like this:
3409
     * for (res = res0; res; res = res->ai_next) {
3410
     * We don't do it yet, however, because is is an incompatible change
3411
     * (need to implement a separate option for this)
3412
     */
3413
    for (res = res0; res; res = res->ai_next) {
580✔
3414
        /* name_flag: addr -> name lookup requested) */
3415
        if (name_flag || rdns_flag) {
582✔
3416
            int do_rdns = rdns_flag ? 1 : 0;
3✔
3417
            if (name_flag) {
3✔
3418
                /* Was it a numerical address? Only then do a rdns-query */
3419
                struct addrinfo *nres;
3420
                hints.ai_flags = AI_NUMERICHOST;
×
3421
                if (getaddrinfo(name, NULL, &hints, &nres) == 0) {
×
3422
                    do_rdns = 1;
×
3423
                    freeaddrinfo(nres);
×
3424
                }
3425
            }
3426

3427
            if (do_rdns && getnameinfo(res->ai_addr, res->ai_addrlen, namebuf, sizeof(namebuf) / sizeof(char), NULL, 0, 0) == 0) {
3✔
3428
                printname = namebuf;
3✔
3429
            }
1✔
3430
            else {
3431
                printname = name;
×
3432
            }
3433
        }
1✔
3434
        else {
3435
            printname = name;
577✔
3436
        }
3437

3438
        /* addr_flag: name -> addr lookup requested */
3439
        if (addr_flag) {
580✔
3440
            int ret;
3441
            ret = getnameinfo(res->ai_addr, res->ai_addrlen, addrbuf,
3✔
3442
                sizeof(addrbuf) / sizeof(char), NULL, 0, NI_NUMERICHOST);
3443
            if (ret) {
3✔
3444
                if (!quiet_flag) {
×
3445
                    print_warning("%s: can't forward-lookup address (%s)\n", name, gai_strerror(ret));
×
3446
                }
3447
                continue;
×
3448
            }
3449

3450
            if (name_flag || rdns_flag) {
3✔
3451
                char nameaddrbuf[512 + 3];
3452
                snprintf(nameaddrbuf, sizeof(nameaddrbuf) / sizeof(char), "%s (%s)", printname, addrbuf);
×
3453
                add_addr(name, nameaddrbuf, res->ai_addr, res->ai_addrlen);
×
3454
            }
3455
            else {
3456
                add_addr(name, addrbuf, res->ai_addr, res->ai_addrlen);
3✔
3457
            }
3458
        }
1✔
3459
        else {
3460
            add_addr(name, printname, res->ai_addr, res->ai_addrlen);
577✔
3461
        }
3462

3463
        if (!multif_flag) {
580✔
3464
            break;
580✔
3465
        }
3466
    }
3467

3468
    freeaddrinfo(res0);
580✔
3469
}
167✔
3470

3471
/************************************************************
3472

3473
  Function: add_addr
3474

3475
*************************************************************
3476

3477
  Description:
3478

3479
  add single address to list of hosts to be pinged
3480

3481
************************************************************/
3482

3483
void add_addr(char *name, char *host, struct sockaddr *ipaddr, socklen_t ipaddr_len)
580✔
3484
{
3485
    HOST_ENTRY *p;
3486
    int n;
3487
    int64_t *i;
3488

3489
    p = (HOST_ENTRY *)calloc(1, sizeof(HOST_ENTRY));
580✔
3490
    if (!p)
580✔
3491
        crash_and_burn("can't allocate HOST_ENTRY");
×
3492

3493
    p->name = strdup(name);
580✔
3494
    p->host = strdup(host);
580✔
3495
    memcpy(&p->saddr, ipaddr, ipaddr_len);
580✔
3496
    p->saddr_len = ipaddr_len;
580✔
3497
    p->timeout = timeout;
580✔
3498
    p->min_reply = 0;
580✔
3499

3500
    if (netdata_flag) {
580✔
3501
        char *s = p->name;
3✔
3502
        while (*s) {
30✔
3503
            if (!isalnum(*s))
27✔
3504
                *s = '_';
9✔
3505
            s++;
27✔
3506
        }
3507
    }
1✔
3508

3509
    if (strlen(p->host) > max_hostname_len)
580✔
3510
        max_hostname_len = strlen(p->host);
387✔
3511

3512
    /* array for response time results */
3513
    if (!loop_flag) {
580✔
3514
#if SIZE_MAX <= UINT_MAX
3515
        if (trials > (SIZE_MAX / sizeof(int64_t)))
3516
            crash_and_burn("resp_times array too large for memory");
3517
#endif
3518
        i = (int64_t *)malloc(trials * sizeof(int64_t));
580✔
3519
        if (!i)
580✔
3520
            crash_and_burn("can't allocate resp_times array");
×
3521

3522
        for (n = 0; n < trials; n++)
2,891✔
3523
            i[n] = RESP_UNUSED;
2,311✔
3524

3525
        p->resp_times = i;
580✔
3526
    }
158✔
3527

3528
    /* allocate event storage */
3529
    p->event_storage_ping = (struct event *)calloc(event_storage_count, sizeof(struct event));
580✔
3530
    if (!p->event_storage_ping) {
580✔
3531
        errno_crash_and_burn("can't allocate event_storage_ping");
×
3532
    }
3533
    p->event_storage_timeout = (struct event *)calloc(event_storage_count, sizeof(struct event));
580✔
3534
    if (!p->event_storage_timeout) {
580✔
3535
        errno_crash_and_burn("can't allocate event_storage_timeout");
×
3536
    }
3537

3538
    /* schedule first ping */
3539
    host_add_ping_event(p, 0, current_time_ns);
580✔
3540

3541
    num_hosts++;
580✔
3542
}
580✔
3543

3544
/************************************************************
3545

3546
  Function: crash_and_burn
3547

3548
*************************************************************
3549

3550
  Inputs:  char* message
3551

3552
  Description:
3553

3554
************************************************************/
3555

3556
void crash_and_burn(char *message)
×
3557
{
3558
    fprintf(stderr, "%s: %s\n", prog, message);
×
3559
    exit(4);
×
3560
}
3561

3562
/************************************************************
3563

3564
  Function: errno_crash_and_burn
3565

3566
*************************************************************
3567

3568
  Inputs:  char* message
3569

3570
  Description:
3571

3572
************************************************************/
3573

3574
void errno_crash_and_burn(char *message)
8✔
3575
{
3576
    fprintf(stderr, "%s: %s : %s\n", prog, message, strerror(errno));
8✔
3577
    exit(4);
8✔
3578
}
3579

3580
/************************************************************
3581

3582
  Function: print_warning
3583

3584
  Description: fprintf(stderr, ...), unless running with -q
3585

3586
*************************************************************/
3587

3588
void print_warning(char *format, ...)
54✔
3589
{
3590
    va_list args;
3591
    if (!quiet_flag) {
54✔
3592
        va_start(args, format);
54✔
3593
        vfprintf(stderr, format, args);
54✔
3594
        va_end(args);
54✔
3595
    }
8✔
3596
}
54✔
3597

3598
/************************************************************
3599

3600
  Function: sprint_tm
3601

3602
*************************************************************
3603

3604
  render nanosecond int64_t value into milliseconds string with three digits of
3605
  precision.
3606

3607
************************************************************/
3608

3609
const char *sprint_tm(int64_t ns)
1,048✔
3610
{
3611
    static char buf[10];
3612
    double t = (double)ns / 1e6;
1,048✔
3613

3614
    if (t < 0.0) {
1,048✔
3615
        /* negative (unexpected) */
3616
        snprintf(buf, sizeof(buf), "%.2g", t);
×
3617
    }
3618
    else if (t < 1.0) {
1,048✔
3619
        /* <= 0.99 ms */
3620
        snprintf(buf, sizeof(buf), "%.3f", t);
1,048✔
3621
    }
324✔
UNCOV
3622
    else if (t < 10.0) {
×
3623
        /* 1.00 - 9.99 ms */
UNCOV
3624
        snprintf(buf, sizeof(buf), "%.2f", t);
×
3625
    }
3626
    else if (t < 100.0) {
×
3627
        /* 10.0 - 99.9 ms */
3628
        snprintf(buf, sizeof(buf), "%.1f", t);
×
3629
    }
3630
    else if (t < 1000000.0) {
×
3631
        /* 100 - 1'000'000 ms */
3632
        snprintf(buf, sizeof(buf), "%.0f", t);
×
3633
    }
3634
    else {
3635
        snprintf(buf, sizeof(buf), "%.3e", t);
×
3636
    }
3637

3638
    return (buf);
1,048✔
3639
}
3640

3641
/************************************************************
3642

3643
  Function: addr_cmp
3644

3645
*************************************************************/
3646
int addr_cmp(struct sockaddr *a, struct sockaddr *b)
507✔
3647
{
3648
    if (a->sa_family != b->sa_family) {
507✔
3649
        return a->sa_family - b->sa_family;
×
3650
    }
3651
    else {
3652
        if (a->sa_family == AF_INET) {
507✔
3653
            return ((struct sockaddr_in *)a)->sin_addr.s_addr - ((struct sockaddr_in *)b)->sin_addr.s_addr;
443✔
3654
        }
3655
        else if (a->sa_family == AF_INET6) {
64✔
3656
            return memcmp(&((struct sockaddr_in6 *)a)->sin6_addr,
72✔
3657
                &((struct sockaddr_in6 *)b)->sin6_addr,
64✔
3658
                sizeof(((struct sockaddr_in6 *)a)->sin6_addr));
3659
        }
3660
    }
3661

3662
    return 0;
×
3663
}
143✔
3664

3665
void host_add_ping_event(HOST_ENTRY *h, int index, int64_t ev_time)
913✔
3666
{
3667
    struct event *event = &h->event_storage_ping[index % event_storage_count];
913✔
3668
    event->host = h;
913✔
3669
    event->ping_index = index;
913✔
3670
    event->ev_time = ev_time;
913✔
3671
    ev_enqueue(&event_queue_ping, event);
913✔
3672

3673
    dbg_printf("%s [%d]: add ping event in %.0f ms\n",
3674
        event->host->host, index, (ev_time - current_time_ns) / 1e6);
3675
}
913✔
3676

3677
void host_add_timeout_event(HOST_ENTRY *h, int index, int64_t ev_time)
898✔
3678
{
3679
    struct event *event = &h->event_storage_timeout[index % event_storage_count];
898✔
3680
    event->host = h;
898✔
3681
    event->ping_index = index;
898✔
3682
    event->ev_time = ev_time;
898✔
3683
    ev_enqueue(&event_queue_timeout, event);
898✔
3684

3685
    dbg_printf("%s [%d]: add timeout event in %.0f ms\n",
3686
        event->host->host, index, (ev_time - current_time_ns) / 1e6);
3687
}
898✔
3688

3689
struct event *host_get_timeout_event(HOST_ENTRY *h, int index)
785✔
3690
{
3691
    return &h->event_storage_timeout[index % event_storage_count];
785✔
3692
}
3693

3694
/************************************************************
3695

3696
  Function: ev_enqueue
3697

3698
  Enqueue an event
3699

3700
  The queue is sorted by event->ev_time, so that queue->first always points to
3701
  the earliest event.
3702

3703
  We start scanning the queue from the tail, because we assume
3704
  that new events mostly get inserted with a event time higher
3705
  than the others.
3706

3707
*************************************************************/
3708
void ev_enqueue(struct event_queue *queue, struct event *event)
1,811✔
3709
{
3710
    struct event *i;
3711
    struct event *i_prev;
3712

3713
    /* Empty list */
3714
    if (queue->last == NULL) {
1,811✔
3715
        event->ev_next = NULL;
1,418✔
3716
        event->ev_prev = NULL;
1,418✔
3717
        queue->first = event;
1,418✔
3718
        queue->last = event;
1,418✔
3719
        return;
1,418✔
3720
    }
3721

3722
    /* Insert on tail? */
3723
    if (event->ev_time - queue->last->ev_time >= 0) {
393✔
3724
        event->ev_next = NULL;
393✔
3725
        event->ev_prev = queue->last;
393✔
3726
        queue->last->ev_next = event;
393✔
3727
        queue->last = event;
393✔
3728
        return;
393✔
3729
    }
3730

3731
    /* Find insertion point */
3732
    i = queue->last;
×
3733
    while (1) {
3734
        i_prev = i->ev_prev;
×
3735
        if (i_prev == NULL || event->ev_time - i_prev->ev_time >= 0) {
×
3736
            event->ev_prev = i_prev;
×
3737
            event->ev_next = i;
×
3738
            i->ev_prev = event;
×
3739
            if (i_prev != NULL) {
×
3740
                i_prev->ev_next = event;
×
3741
            }
3742
            else {
3743
                queue->first = event;
×
3744
            }
3745
            return;
×
3746
        }
3747
        i = i_prev;
×
3748
    }
3749
}
533✔
3750

3751
/************************************************************
3752

3753
  Function: ev_dequeue
3754

3755
*************************************************************/
3756
struct event *ev_dequeue(struct event_queue *queue)
1,006✔
3757
{
3758
    struct event *dequeued;
3759

3760
    if (queue->first == NULL) {
1,006✔
3761
        return NULL;
×
3762
    }
3763
    dequeued = queue->first;
1,006✔
3764
    ev_remove(queue, dequeued);
1,006✔
3765

3766
    return dequeued;
1,006✔
3767
}
288✔
3768

3769
/************************************************************
3770

3771
  Function: ev_remove
3772

3773
*************************************************************/
3774
void ev_remove(struct event_queue *queue, struct event *event)
1,791✔
3775
{
3776
    if (queue->first == event) {
1,791✔
3777
        queue->first = event->ev_next;
1,782✔
3778
    }
524✔
3779
    if (queue->last == event) {
1,791✔
3780
        queue->last = event->ev_prev;
1,419✔
3781
    }
410✔
3782
    if (event->ev_prev) {
1,791✔
3783
        event->ev_prev->ev_next = event->ev_next;
9✔
3784
    }
3✔
3785
    if (event->ev_next) {
1,791✔
3786
        event->ev_next->ev_prev = event->ev_prev;
372✔
3787
    }
117✔
3788
    event->ev_prev = NULL;
1,791✔
3789
    event->ev_next = NULL;
1,791✔
3790
}
1,791✔
3791

3792
/************************************************************
3793

3794
  Function: print_human_readable_time from current_time_ns
3795

3796
*************************************************************/
3797
void print_timestamp_format(int64_t current_time_ns, int timestamp_format)
45✔
3798
{
3799
    char time_buffer[100];
3800
    time_t current_time_s;
3801
    struct tm *local_time;
3802

3803
    current_time_s = current_time_ns / 1000000000;
45✔
3804
    local_time = localtime(&current_time_s);
45✔
3805
    switch(timestamp_format) {
45✔
3806
        case 1:
6✔
3807
            // timestamp-format ctime
3808
            strftime(time_buffer, sizeof(time_buffer), "%c", local_time);
9✔
3809
            if (json_flag)
9✔
3810
                printf("\"timestamp\": \"%s\", ", time_buffer);
3✔
3811
            else
3812
                printf("[%s] ", time_buffer);
6✔
3813
            break;
9✔
3814
        case 2:
6✔
3815
            // timestamp-format iso
3816
            strftime(time_buffer, sizeof(time_buffer), "%Y-%m-%dT%T%z", local_time);
9✔
3817
            if (json_flag)
9✔
3818
                printf("\"timestamp\": \"%s\", ", time_buffer);
3✔
3819
            else
3820
                printf("[%s] ", time_buffer);
6✔
3821
            break;
9✔
3822
        case 3:
6✔
3823
            // timestamp-format rfc3339
3824
            strftime(time_buffer, sizeof(time_buffer), "%Y-%m-%d %H:%M:%S", local_time);
9✔
3825
            if (json_flag)
9✔
3826
                printf("\"timestamp\": \"%s\", ", time_buffer);
3✔
3827
            else
3828
                printf("[%s] ", time_buffer);
6✔
3829
            break;
9✔
3830
        default:
12✔
3831
            if (json_flag)
18✔
3832
                printf("\"timestamp\": \"%.5f\", ", (double)current_time_ns / 1e9);
6✔
3833
            else
3834
                printf("[%.5f] ", (double)current_time_ns / 1e9);
12✔
3835
    }
6✔
3836
}
45✔
3837

3838
/************************************************************
3839

3840
  Function: ms_since_midnight_utc
3841

3842
*************************************************************
3843

3844
  Input: int64_t: current UTC time in ns
3845

3846
  Output: uint32_t: current time in ms since midnight UTC
3847

3848
  Description:
3849

3850
  Return ICMP Timestamp value corresponding to the given time value.
3851
  The given time value must be in UTC.
3852

3853
*************************************************************/
3854
static uint32_t ms_since_midnight_utc(int64_t time_val)
16✔
3855
{
3856
    return (uint32_t)((time_val / 1000000) % (24 * 60 * 60 * 1000));
16✔
3857
}
3858

3859
/************************************************************
3860

3861
  Function: usage
3862

3863
*************************************************************
3864

3865
  Inputs:  int: 0 if output on request, 1 if output because of wrong argument
3866

3867
  Description:
3868

3869
************************************************************/
3870

3871
void usage(int is_error)
124✔
3872
{
3873
    FILE *out = is_error ? stderr : stdout;
124✔
3874
    fprintf(out, "Usage: %s [options] [targets...]\n", prog);
124✔
3875
    fprintf(out, "\n");
124✔
3876
    fprintf(out, "Probing options:\n");
124✔
3877
    fprintf(out, "   -4, --ipv4         only ping IPv4 addresses\n");
124✔
3878
    fprintf(out, "   -6, --ipv6         only ping IPv6 addresses\n");
124✔
3879
    fprintf(out, "   -b, --size=BYTES   amount of ping data to send, in bytes (default: %d)\n", DEFAULT_PING_DATA_SIZE);
124✔
3880
    fprintf(out, "   -B, --backoff=N    set exponential backoff factor to N (default: 1.5)\n");
124✔
3881
    fprintf(out, "   -c, --count=N      count mode: send N pings to each target and report stats\n");
124✔
3882
    fprintf(out, "   -f, --file=FILE    read list of targets from a file ( - means stdin)\n");
124✔
3883
    fprintf(out, "   -g, --generate     generate target list (only if no -f specified),\n");
124✔
3884
    fprintf(out, "                      limited to at most %d targets\n", MAX_GENERATE);
124✔
3885
    fprintf(out, "                      (give start and end IP in the target list, or a CIDR address)\n");
124✔
3886
    fprintf(out, "                      (ex. %s -g 192.168.1.0 192.168.1.255 or %s -g 192.168.1.0/24)\n", prog, prog);
124✔
3887
    fprintf(out, "   -H, --ttl=N        set the IP TTL value (Time To Live hops)\n");
124✔
3888
    fprintf(out, "   -i, --interval=MSEC  interval between sending ping packets (default: %.0f ms)\n", interval / 1e6);
124✔
3889
#ifdef SO_BINDTODEVICE
3890
    fprintf(out, "   -I, --iface=IFACE  bind to a particular interface\n");
124✔
3891
#endif
3892
#ifdef SO_MARK
3893
    fprintf(out, "   -k, --fwmark=FWMARK set the routing mark\n");
84✔
3894
#endif
3895
    fprintf(out, "   -l, --loop         loop mode: send pings forever\n");
124✔
3896
    fprintf(out, "   -m, --all          use all IPs of provided hostnames (e.g. IPv4 and IPv6), use with -A\n");
124✔
3897
    fprintf(out, "   -M, --dontfrag     set the Don't Fragment flag\n");
124✔
3898
    fprintf(out, "   -O, --tos=N        set the type of service (tos) flag on the ICMP packets\n");
124✔
3899
    fprintf(out, "   -p, --period=MSEC  interval between ping packets to one target (in ms)\n");
124✔
3900
    fprintf(out, "                      (in loop and count modes, default: %.0f ms)\n", perhost_interval / 1e6);
124✔
3901
    fprintf(out, "   -r, --retry=N      number of retries (default: %d)\n", DEFAULT_RETRY);
124✔
3902
    fprintf(out, "   -R, --random       random packet data (to foil link data compression)\n");
124✔
3903
    fprintf(out, "   -S, --src=IP       set source address\n");
124✔
3904
    fprintf(out, "       --seqmap-timeout=MSEC sequence number mapping timeout (default: %.0f ms)\n", seqmap_timeout / 1e6);
124✔
3905
    fprintf(out, "   -t, --timeout=MSEC individual target initial timeout (default: %.0f ms,\n", timeout / 1e6);
124✔
3906
    fprintf(out, "                      except with -l/-c/-C, where it's the -p period up to 2000 ms)\n");
124✔
3907
    fprintf(out, "       --check-source discard replies not from target address\n");
124✔
3908
    fprintf(out, "       --icmp-timestamp use ICMP Timestamp instead of ICMP Echo\n");
124✔
3909
    fprintf(out, "\n");
124✔
3910
    fprintf(out, "Output options:\n");
124✔
3911
    fprintf(out, "   -a, --alive        show targets that are alive\n");
124✔
3912
    fprintf(out, "   -A, --addr         show targets by address\n");
124✔
3913
    fprintf(out, "   -C, --vcount=N     same as -c, report results (not stats) in verbose format\n");
124✔
3914
    fprintf(out, "   -d, --rdns         show targets by name (force reverse-DNS lookup)\n");
124✔
3915
    fprintf(out, "   -D, --timestamp    print timestamp before each output line\n");
124✔
3916
    fprintf(out, "       --timestamp-format=FORMAT  show timestamp in the given format (-D required): ctime|iso|rfc3339\n");
124✔
3917
    fprintf(out, "   -e, --elapsed      show elapsed time on return packets\n");
124✔
3918
    fprintf(out, "   -J, --json         output in JSON format (-c, -C, or -l required)\n");
124✔
3919
    fprintf(out, "   -n, --name         show targets by name (reverse-DNS lookup for target IPs)\n");
124✔
3920
    fprintf(out, "   -N, --netdata      output compatible for netdata (-l -Q are required)\n");
124✔
3921
    fprintf(out, "   -o, --outage       show the accumulated outage time (lost packets * packet interval)\n");
124✔
3922
    fprintf(out, "   -q, --quiet        quiet (don't show per-target/per-ping results)\n");
124✔
3923
    fprintf(out, "   -Q, --squiet=SECS[,cumulative]  same as -q, but add interval summary every SECS seconds,\n");
124✔
3924
    fprintf(out, "                                   with 'cumulative', print stats since beginning\n");
124✔
3925
    fprintf(out, "   -s, --stats        print final stats\n");
124✔
3926
    fprintf(out, "   -u, --unreach      show targets that are unreachable\n");
124✔
3927
    fprintf(out, "   -v, --version      show version\n");
124✔
3928
    fprintf(out, "   -x, --reachable=N  shows if >=N hosts are reachable or not\n");
124✔
3929
    fprintf(out, "   -X, --fast-reachable=N exits true immediately when N hosts are found\n");
124✔
3930
    fprintf(out, "       --print-tos    show received TOS value\n");
124✔
3931
    fprintf(out, "       --print-ttl    show IP TTL value\n");
124✔
3932
    exit(is_error);
124✔
3933
}
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