]> mj.ucw.cz Git - arexx.git/blob - arexxd.c
One more rename for my sensors
[arexx.git] / arexxd.c
1 /*
2  *      Linux Interfece for Arexx Data Loggers
3  *
4  *      (c) 2011-2012 Martin Mares <mj@ucw.cz>
5  */
6
7 #include <stdio.h>
8 #include <stdarg.h>
9 #include <stdlib.h>
10 #include <string.h>
11 #include <unistd.h>
12 #include <fcntl.h>
13 #include <math.h>
14 #include <time.h>
15 #include <getopt.h>
16 #include <syslog.h>
17 #include <signal.h>
18 #include <sys/stat.h>
19 #include <libusb-1.0/libusb.h>
20 #include <rrd.h>
21
22 #define DEFAULT_LOG_DIR "/var/log/arexxd"
23
24 typedef unsigned char byte;
25 static libusb_context *usb_ctxt;
26 static libusb_device_handle *devh;
27
28 static int use_syslog;
29 static int debug_mode;
30 static int debug_packets;
31 static int debug_raw_data;
32 static char *log_dir = DEFAULT_LOG_DIR;
33
34 static void die(char *fmt, ...)
35 {
36         va_list args;
37         va_start(args, fmt);
38         if (use_syslog)
39                 vsyslog(LOG_CRIT, fmt, args);
40         else {
41                 vfprintf(stderr, fmt, args);
42                 fprintf(stderr, "\n");
43         }
44         va_end(args);
45         exit(1);
46 }
47
48 static void log_error(char *fmt, ...)
49 {
50         va_list args;
51         va_start(args, fmt);
52         if (use_syslog)
53                 vsyslog(LOG_ERR, fmt, args);
54         else {
55                 vfprintf(stderr, fmt, args);
56                 fprintf(stderr, "\n");
57         }
58         va_end(args);
59 }
60
61 static void log_info(char *fmt, ...)
62 {
63         va_list args;
64         va_start(args, fmt);
65         if (use_syslog)
66                 vsyslog(LOG_INFO, fmt, args);
67         else {
68                 vfprintf(stderr, fmt, args);
69                 fprintf(stderr, "\n");
70         }
71         va_end(args);
72 }
73
74 static void log_pkt(char *fmt, ...)
75 {
76         if (!debug_packets)
77                 return;
78         va_list args;
79         va_start(args, fmt);
80         vprintf(fmt, args);
81         va_end(args);
82 }
83
84 /*** RRD interface ***/
85
86 #define MAX_ARGS 20
87 #define MAX_ARG_SIZE 1024
88
89 static int arg_cnt;
90 static char *arg_ptr[MAX_ARGS+1];
91 static char arg_buf[MAX_ARG_SIZE];
92 static int arg_pos;
93
94 static void arg_new(void)
95 {
96         arg_cnt = 1;
97         arg_pos = 0;
98         arg_ptr[0] = "rrdtool";
99 }
100
101 static void arg_push(const char *fmt, ...)
102 {
103         if (arg_cnt >= MAX_ARGS)
104                 die("MAX_ARGS exceeded");
105         va_list va;
106         va_start(va, fmt);
107         int len = 1 + vsnprintf(arg_buf + arg_pos, MAX_ARG_SIZE - arg_pos, fmt, va);
108         if (arg_pos + len > MAX_ARG_SIZE)
109                 die("MAX_ARG_SIZE exceeded");
110         arg_ptr[arg_cnt++] = arg_buf + arg_pos;
111         arg_ptr[arg_cnt] = NULL;
112         arg_pos += len;
113 }
114
115 static void rrd_point(time_t t, const char *name, double val, char *unit)
116 {
117         char rr_name[256];
118         snprintf(rr_name, sizeof(rr_name), "sensor-%s.rrd", name);
119
120         struct stat st;
121         if (stat(rr_name, &st) < 0 || !st.st_size) {
122                 // We have to create the RRD
123                 log_info("Creating %s", rr_name);
124                 arg_new();
125                 arg_push(rr_name);
126                 arg_push("--start");
127                 arg_push("%d", (int) time(NULL) - 28*86400);
128                 arg_push("--step");
129                 arg_push("60");
130                 if (!strcmp(unit, "%RH"))
131                         arg_push("DS:rh:GAUGE:300:0:100");
132                 else if (!strcmp(unit, "ppm"))
133                         arg_push("DS:ppm:GAUGE:300:0:1000000");
134                 else
135                         arg_push("DS:temp:GAUGE:300:-200:200");
136                 arg_push("RRA:AVERAGE:0.25:1:20160");           // Last 14 days with full resolution
137                 arg_push("RRA:AVERAGE:0.25:60:88800");          // Last 10 years with 1h resolution
138                 arg_push("RRA:MIN:0.25:60:88800");              // including minima and maxima
139                 arg_push("RRA:MAX:0.25:60:88800");
140                 rrd_create(arg_cnt, arg_ptr);
141                 if (rrd_test_error()) {
142                         log_error("rrd_create on %s failed: %s", rr_name, rrd_get_error());
143                         return;
144                 }
145         }
146
147         arg_new();
148         arg_push(rr_name);
149         arg_push("%d:%f", t, val);
150         rrd_update(arg_cnt, arg_ptr);
151         if (rrd_test_error())
152                 log_error("rrd_update on %s failed: %s", rr_name, rrd_get_error());
153 }
154
155 /*** Transforms ***/
156
157 #define TIME_OFFSET 946681200           // Timestamp of 2000-01-01 00:00:00
158
159 static int data_point_counter;          // Since last log message
160
161 static double correct_point(int id, double val, const char **name)
162 {
163         /*
164          *  Manually calculated corrections and renames for my sensors.
165          *  Replace with your formulae.
166          */
167         switch (id) {
168                 case 10415:
169                         *name = "ursarium";
170                         return val - 0.93;
171                 case 19246:
172                         *name = "catarium";
173                         return val + 0.49;
174                 case 19247:
175                         *name = "catarium-rh";
176                         return val;
177                 case 12133:
178                         *name = "balcony";
179                         return val + 0.44;
180                 default:
181                         return val;
182         }
183 }
184
185 static void cooked_point(time_t t, int id, double val, char *unit, int q)
186 {
187         char namebuf[16];
188         snprintf(namebuf, sizeof(namebuf), "%d", id);
189         const char *name = namebuf;
190
191         double val2 = correct_point(id, val, &name);
192
193         if (debug_raw_data) {
194                 struct tm tm;
195                 localtime_r(&t, &tm);
196                 char tbuf[64];
197                 strftime(tbuf, sizeof(tbuf), "%Y-%m-%d %H:%M:%S", &tm);
198                 printf("== %s id=%d name=%s val=%.3f val2=%.3f unit=%s q=%d\n", tbuf, id, name, val, val2, unit, q);
199         }
200
201         data_point_counter++;
202         rrd_point(t, name, val2, unit);
203 }
204
205 static void raw_point(int t, int id, int raw, int q)
206 {
207         /*
208          *  The binary blob provided by Arexx contains an embedded XML fragment
209          *  with descriptions of all known sensor types. If you want to see it,
210          *  grep the blob for "<deviceinfo>". The meanings of the parameters are
211          *  as follows:
212          *
213          *      m1, m2          Device type matches if (raw_sensor_id & m1) == m2
214          *      type            Unit measured by the sensor (1=Celsius, 2=RH%, 3=CO2 ppm)
215          *      dm              User-visible sensor ID = raw_sensor_id & dm
216          *      i               1 if the raw value is signed
217          *      p[]             Coefficients of transformation polynomial (x^0 first)
218          *      vLo, vUp        Upper and lower bound on the final value
219          *      scale           Scaling function:
220          *                              0 = identity (default)
221          *                              1 = 10^x
222          *                              2 = exp(x)
223          *                              3 = (x < 0) ? 0 : log10(x)
224          *                              4 = (x < 0) ? 0 : log(x)
225          *
226          *  The raw values are transformed this way:
227          *      - sign-extend if signed
228          *      - apply the transformation polynomial
229          *      - apply the scaling function
230          *      - drop if outside the interval [vLo,vUp]
231          *
232          *  This function applies the necessary transform for sensors we've
233          *  seen in the wild. We deliberately ignore the "dm" parameter as we want
234          *  to report different channels of a single sensor as multiple sensors.
235          */
236
237         double z = raw;
238         double hi, lo;
239         char *unit;
240         int idhi = id & 0xf000;
241
242         if (idhi == 0x1000) {
243                 z = 0.02*z - 273.15;
244                 lo = -200;
245                 hi = 600;
246                 unit = "C";
247         } else if (idhi == 0x2000) {
248                 if (raw >= 0x8000)
249                         z -= 0x10000;
250                 z /= 128;
251                 lo = -60;
252                 hi = 125;
253                 unit = "C";
254         } else if (idhi == 0x4000) {
255                 if (!(id & 1)) {
256                         z = z/100 - 39.6;
257                         lo = -60;
258                         hi = 125;
259                         unit = "C";
260                 } else {
261                         z = -2.8e-6*z*z + 0.0405*z - 4;
262                         lo = 0;
263                         hi = 100.1;
264                         unit = "%RH";
265                 }
266         } else if (idhi == 0x6000) {
267                 if (!(id & 1)) {
268                         if (raw >= 0x8000)
269                                 z -= 0x10000;
270                         z /= 128;
271                         lo = -60;
272                         hi = 125;
273                         unit = "C";
274                 } else {
275                         z = -3.8123e-11*z;
276                         z = (z + 1.9184e-7) * z;
277                         z = (z - 1.0998e-3) * z;
278                         z += 6.56;
279                         z = pow(10, z);
280                         lo = 0;
281                         hi = 1e6;
282                         unit = "ppm";
283                 }
284         } else {
285                 log_error("Unknown sensor type 0x%04x", id);
286                 return;
287         }
288
289         if (z < lo || z > hi) {
290                 log_error("Sensor %d: value %f out of range", id, z);
291                 return;
292         }
293
294         cooked_point(t + TIME_OFFSET, id, z, unit, q);
295 }
296
297 /*** USB interface ***/
298
299 static int find_device(void)
300 {
301         libusb_device **devlist;
302         ssize_t devn = libusb_get_device_list(usb_ctxt, &devlist);
303         if (devn < 0) {
304                 log_error("Cannot enumerate USB devices: error %d", (int) devn);
305                 return 0;
306         }
307
308         for (ssize_t i=0; i<devn; i++) {
309                 struct libusb_device_descriptor desc;
310                 libusb_device *dev = devlist[i];
311                 if (!libusb_get_device_descriptor(dev, &desc)) {
312                         if (desc.idVendor == 0x0451 && desc.idProduct == 0x3211) {
313                                 log_info("Arexx data logger found at usb%d.%d", libusb_get_bus_number(dev), libusb_get_device_address(dev));
314                                 int err;
315                                 if (err = libusb_open(dev, &devh)) {
316                                         log_error("libusb_open() failed: error %d", err);
317                                         goto failed;
318                                 }
319                                 if (err = libusb_claim_interface(devh, 0)) {
320                                         log_error("libusb_claim_interface() failed: error %d", err);
321                                         libusb_close(devh);
322                                         goto failed;
323                                 }
324                                 libusb_free_device_list(devlist, 1);
325                                 return 1;
326                         }
327                 }
328         }
329
330 failed:
331         libusb_free_device_list(devlist, 1);
332         return 0;
333 }
334
335 static void release_device(void)
336 {
337         libusb_close(devh);
338         devh = NULL;
339 }
340
341 static void dump_packet(byte *pkt)
342 {
343         for (int i=0; i<64; i++) {
344                 if (!(i % 16))
345                         log_pkt("\t%02x:", i);
346                 log_pkt(" %02x", pkt[i]);
347                 if (i % 16 == 15)
348                         log_pkt("\n");
349         }
350 }
351
352 static int send_and_receive(byte *req, byte *reply)
353 {
354         if (debug_packets) {
355                 time_t t = time(NULL);
356                 struct tm tm;
357                 localtime_r(&t, &tm);
358
359                 char tbuf[64];
360                 strftime(tbuf, sizeof(tbuf), "%Y-%m-%d %H:%M:%S", &tm);
361                 log_pkt("## %s\n", tbuf);
362         }
363
364         int err, transferred;
365         if (err = libusb_bulk_transfer(devh, 0x01, req, 64, &transferred, 200)) {
366                 if (err == LIBUSB_ERROR_TIMEOUT) {
367                         log_pkt(">> xmit timed out\n");
368                         return 0;
369                 }
370                 log_pkt(">> xmit error %d\n", err);
371                 log_error("Transmit error: %d", err);
372                 return err;
373         }
374         if (debug_packets) {
375                 log_pkt(">> xmit %d bytes\n", transferred);
376                 dump_packet(req);
377         }
378         if (err = libusb_bulk_transfer(devh, 0x81, reply, 64, &transferred, 200)) {
379                 if (err == LIBUSB_ERROR_TIMEOUT) {
380                         log_pkt("<< recv timed out\n");
381                         return 0;
382                 }
383                 log_pkt("<< recv error %d\n", err);
384                 log_error("Receive error: %d", err);
385                 return err;
386         }
387         if (debug_packets)
388                 log_pkt("<< recv %d bytes\n", transferred);
389         while (transferred < 64)
390                 reply[transferred++] = 0xff;
391         if (debug_packets)
392                 dump_packet(reply);
393         return 1;
394 }
395
396 static unsigned int get_be16(byte *p)
397 {
398         return p[1] | (p[0] << 8);
399 }
400
401 static unsigned int get_le16(byte *p)
402 {
403         return p[0] | (p[1] << 8);
404 }
405
406 static unsigned int get_le32(byte *p)
407 {
408         return get_le16(p) | (get_le16(p+2) << 16);
409 }
410
411 static void put_le16(byte *p, unsigned int x)
412 {
413         p[0] = x;
414         p[1] = x >> 8;
415 }
416
417 static void put_le32(byte *p, unsigned int x)
418 {
419         put_le16(p, x);
420         put_le16(p+2, x>>16);
421 }
422
423 static int parse_packet(byte *reply)
424 {
425         if (reply[0]) {
426                 log_error("Unknown packet type %02x", reply[0]);
427                 return 0;
428         }
429
430         int pos = 1;
431         int points = 0;
432         while (pos < 64) {
433                 byte *p = reply + pos;
434                 int len = p[0];
435                 if (!len || len == 0xff)
436                         break;
437                 if (len < 9 || len > 10) {
438                         log_error("Unknown tuple length %02x", len);
439                         break;
440                 }
441                 if (pos + len > 64) {
442                         log_error("Tuple truncated");
443                         break;
444                 }
445                 int id = get_le16(p+1);
446                 int raw = get_be16(p+3);
447                 int t = get_le32(p+5);
448                 int q = (len > 9) ? p[9] : -1;
449                 if (debug_raw_data) {
450                         printf("... %02x: id=%d raw=%d t=%d", len, id, raw, t);
451                         if (len > 9)
452                                 printf(" q=%d", q);
453                         printf("\n");
454                 }
455                 raw_point(t, id, raw, q);
456                 pos += len;
457                 points++;
458         }
459
460         return points;
461 }
462
463 static void set_clock(void)
464 {
465         byte req[64], reply[64];
466         memset(req, 0, 64);
467         req[0] = 4;
468         time_t t = time(NULL);
469         put_le32(req+1, t-TIME_OFFSET);
470         send_and_receive(req, reply);
471
472 #if 0
473         /*
474          *  Original software also sends a packet with type 3 and the timestamp,
475          *  but it does not make any sense, especially as they ignore the sensor
476          *  readings in the answer.
477          */
478         req[0] = 3;
479         send_and_receive(req, reply);
480         parse_packet(reply);
481 #endif
482 }
483
484 /*** Main ***/
485
486 static volatile sig_atomic_t want_shutdown;
487
488 static void sigterm_handler(int sig __attribute__((unused)))
489 {
490         want_shutdown = 1;
491 }
492
493 static const struct option long_options[] = {
494         { "debug",              0, NULL, 'd' },
495         { "log-dir",            1, NULL, 'l' },
496         { "debug-packets",      0, NULL, 'p' },
497         { "debug-raw",          0, NULL, 'r' },
498         { NULL,                 0, NULL, 0 },
499 };
500
501 static void usage(void)
502 {
503         fprintf(stderr, "\n\
504 Usage: arexxd <options>\n\
505 \n\
506 Options:\n\
507 -d, --debug             Debug mode (no chdir, no fork, no syslog)\n\
508 -l, --log-dir=<dir>     Directory where all received data should be stored\n\
509 -p, --debug-packets     Log all packets sent and received\n\
510 -r, --debug-raw         Log conversion from raw values\n\
511 ");
512         exit(1);
513 }
514
515 int main(int argc, char **argv)
516 {
517         int opt;
518         while ((opt = getopt_long(argc, argv, "dl:pr", long_options, NULL)) >= 0)
519                 switch (opt) {
520                         case 'd':
521                                 debug_mode++;
522                                 break;
523                         case 'l':
524                                 log_dir = optarg;
525                                 break;
526                         case 'p':
527                                 debug_packets++;
528                                 break;
529                         case 'r':
530                                 debug_raw_data++;
531                                 break;
532                         default:
533                                 usage();
534                 }
535         if (optind < argc)
536                 usage();
537
538         int err;
539         if (err = libusb_init(&usb_ctxt))
540                 die("Cannot initialize libusb: error %d", err);
541         // libusb_set_debug(usb_ctxt, 3);
542
543         if (!debug_mode) {
544                 if (chdir(log_dir) < 0)
545                         die("Cannot change directory to %s: %m", log_dir);
546                 if (debug_packets || debug_raw_data) {
547                         close(1);
548                         if (open("debug", O_WRONLY | O_CREAT | O_APPEND, 0666) < 0)
549                                 die("Cannot open debug log: %m");
550                         setlinebuf(stdout);
551                 }
552                 openlog("arexxd", LOG_NDELAY, LOG_DAEMON);
553                 pid_t pid = fork();
554                 if (pid < 0)
555                         die("fork() failed: %m");
556                 if (pid)
557                         return 0;
558                 setsid();
559                 use_syslog = 1;
560         }
561
562         struct sigaction sa = { .sa_handler = sigterm_handler };
563         sigaction(SIGTERM, &sa, NULL);
564         sigaction(SIGINT, &sa, NULL);
565
566         sigset_t term_sigs;
567         sigemptyset(&term_sigs);
568         sigaddset(&term_sigs, SIGTERM);
569         sigaddset(&term_sigs, SIGINT);
570         sigprocmask(SIG_BLOCK, &term_sigs, NULL);
571
572         int inited = 0;
573         while (!want_shutdown) {
574                 if (!find_device()) {
575                         if (!inited) {
576                                 inited = 1;
577                                 log_error("Data logger not connected, waiting until it appears");
578                         }
579                         sleep(30);
580                         continue;
581                 }
582                 log_info("Listening");
583
584                 time_t last_sync = 0;
585                 time_t last_show = 0;
586                 int want_stats = 0;
587                 int want_sleep = 0;
588                 data_point_counter = 0;
589                 while (!want_shutdown) {
590                         time_t now = time(NULL);
591                         if (now > last_sync + 900) {
592                                 log_info("Synchronizing data logger time");
593                                 set_clock();
594                                 last_sync = now;
595                         }
596                         if (want_stats && now > last_show + 300) {
597                                 log_info("Stats: received %d data points", data_point_counter);
598                                 data_point_counter = 0;
599                                 last_show = now;
600                         }
601
602                         byte req[64], reply[64];
603                         memset(req, 0, sizeof(req));
604                         req[0] = 3;
605                         err = send_and_receive(req, reply);
606                         if (err < 0)
607                                 break;
608                         want_sleep = 1;
609                         if (err > 0 && parse_packet(reply))
610                                 want_sleep = 0;
611                         sigprocmask(SIG_UNBLOCK, &term_sigs, NULL);
612                         if (want_sleep) {
613                                 sleep(4);
614                                 want_stats = 1;
615                         }
616                         sigprocmask(SIG_BLOCK, &term_sigs, NULL);
617                 }
618
619                 log_info("Disconnecting data logger");
620                 release_device();
621                 inited = 0;
622         }
623
624         log_info("Terminated");
625         return 0;
626 }