refclock_as2201.c revision 54359
1/*
2 * refclock_as2201 - clock driver for the Austron 2201A GPS
3 *	Timing Receiver
4 */
5#ifdef HAVE_CONFIG_H
6#include <config.h>
7#endif
8
9#if defined(REFCLOCK) && defined(CLOCK_AS2201)
10
11#include <stdio.h>
12#include <ctype.h>
13#include <sys/time.h>
14
15#include "ntpd.h"
16#include "ntp_io.h"
17#include "ntp_refclock.h"
18#include "ntp_unixtime.h"
19#include "ntp_stdlib.h"
20
21/*
22 * This driver supports the Austron 2200A/2201A GPS Receiver with
23 * Buffered RS-232-C Interface Module. Note that the original 2200/2201
24 * receivers will not work reliably with this driver, since the older
25 * design cannot accept input commands at any reasonable data rate.
26 *
27 * The program sends a "*toc\r" to the radio and expects a response of
28 * the form "yy:ddd:hh:mm:ss.mmm\r" where yy = year of century, ddd =
29 * day of year, hh:mm:ss = second of day and mmm = millisecond of
30 * second. Then, it sends statistics commands to the radio and expects
31 * a multi-line reply showing the corresponding statistics or other
32 * selected data. Statistics commands are sent in order as determined by
33 * a vector of commands; these might have to be changed with different
34 * radio options. If flag4 of the fudge configuration command is set to
35 * 1, the statistics data are written to the clockstats file for later
36 * processing.
37 *
38 * In order for this code to work, the radio must be placed in non-
39 * interactive mode using the "off" command and with a single <cr>
40 * response using the "term cr" command. The setting of the "echo"
41 * and "df" commands does not matter. The radio should select UTC
42 * timescale using the "ts utc" command.
43 *
44 * There are two modes of operation for this driver. The first with
45 * default configuration is used with stock kernels and serial-line
46 * drivers and works with almost any machine. In this mode the driver
47 * assumes the radio captures a timestamp upon receipt of the "*" that
48 * begins the driver query. Accuracies in this mode are in the order of
49 * a millisecond or two and the receiver can be connected to only one
50 * host.
51 *
52 * The second mode of operation can be used for SunOS kernels that have
53 * been modified with the ppsclock streams module included in this
54 * distribution. The mode is enabled if flag3 of the fudge configuration
55 * command has been set to 1. In this mode a precise timestamp is
56 * available using a gadget box and 1-pps signal from the receiver. This
57 * improves the accuracy to the order of a few tens of microseconds. In
58 * addition, the serial output and 1-pps signal can be bussed to more
59 * than one hosts, but only one of them should be connected to the
60 * radio input data line.
61 */
62
63/*
64 * GPS Definitions
65 */
66#define SMAX		200	/* statistics buffer length */
67#define	DEVICE		"/dev/gps%d" /* device name and unit */
68#define	SPEED232	B9600	/* uart speed (9600 baud) */
69#define	PRECISION	(-20)	/* precision assumed (about 1 us) */
70#define	REFID		"GPS\0"	/* reference ID */
71#define	DESCRIPTION	"Austron 2201A GPS Receiver" /* WRU */
72
73#define	LENTOC		19	/* yy:ddd:hh:mm:ss.mmm timecode lngth */
74
75/*
76 * AS2201 unit control structure.
77 */
78struct as2201unit {
79	char	*lastptr;	/* statistics buffer pointer */
80	char	stats[SMAX];	/* statistics buffer */
81	int	linect;		/* count of lines remaining */
82	int	index;		/* current statistics command */
83};
84
85/*
86 * Radio commands to extract statitistics
87 *
88 * A command consists of an ASCII string terminated by a <cr> (\r). The
89 * command list consist of a sequence of commands terminated by a null
90 * string ("\0"). One command from the list is sent immediately
91 * following each received timecode (*toc\r command) and the ASCII
92 * strings received from the radio are saved along with the timecode in
93 * the clockstats file. Subsequent commands are sent at each timecode,
94 * with the last one in the list followed by the first one. The data
95 * received from the radio consist of ASCII strings, each terminated by
96 * a <cr> (\r) character. The number of strings for each command is
97 * specified as the first line of output as an ASCII-encode number. Note
98 * that the ETF command requires the Input Buffer Module and the LORAN
99 * commands require the LORAN Assist Module. However, if these modules
100 * are not installed, the radio and this driver will continue to operate
101 * successfuly, but no data will be captured for these commands.
102 */
103static char stat_command[][30] = {
104	"ITF\r",		/* internal time/frequency */
105	"ETF\r",		/* external time/frequency */
106	"LORAN ENSEMBLE\r",	/* GPS/LORAN ensemble statistics */
107	"LORAN TDATA\r",	/* LORAN signal data */
108	"ID;OPT;VER\r",		/* model; options; software version */
109
110	"ITF\r",		/* internal time/frequency */
111	"ETF\r",		/* external time/frequency */
112	"LORAN ENSEMBLE\r",	/* GPS/LORAN ensemble statistics */
113	"TRSTAT\r",		/* satellite tracking status */
114	"POS;PPS;PPSOFF\r",	/* position, pps source, offsets */
115
116	"ITF\r",		/* internal time/frequency */
117	"ETF\r",		/* external time/frequency */
118	"LORAN ENSEMBLE\r",	/* GPS/LORAN ensemble statistics */
119	"LORAN TDATA\r",	/* LORAN signal data */
120	"UTC\r",			/* UTC leap info */
121
122	"ITF\r",		/* internal time/frequency */
123	"ETF\r",		/* external time/frequency */
124	"LORAN ENSEMBLE\r",	/* GPS/LORAN ensemble statistics */
125	"TRSTAT\r",		/* satellite tracking status */
126	"OSC;ET;TEMP\r",	/* osc type; tune volts; oven temp */
127	"\0"			/* end of table */
128};
129
130/*
131 * Function prototypes
132 */
133static	int	as2201_start	P((int, struct peer *));
134static	void	as2201_shutdown	P((int, struct peer *));
135static	void	as2201_receive	P((struct recvbuf *));
136static	void	as2201_poll	P((int, struct peer *));
137
138/*
139 * Transfer vector
140 */
141struct	refclock refclock_as2201 = {
142	as2201_start,		/* start up driver */
143	as2201_shutdown,	/* shut down driver */
144	as2201_poll,		/* transmit poll message */
145	noentry,		/* not used (old as2201_control) */
146	noentry,		/* initialize driver (not used) */
147	noentry,		/* not used (old as2201_buginfo) */
148	NOFLAGS			/* not used */
149};
150
151
152/*
153 * as2201_start - open the devices and initialize data for processing
154 */
155static int
156as2201_start(
157	int unit,
158	struct peer *peer
159	)
160{
161	register struct as2201unit *up;
162	struct refclockproc *pp;
163	int fd;
164	char gpsdev[20];
165
166	/*
167	 * Open serial port. Use CLK line discipline, if available.
168	 */
169	(void)sprintf(gpsdev, DEVICE, unit);
170	if (!(fd = refclock_open(gpsdev, SPEED232, LDISC_CLK)))
171		return (0);
172
173	/*
174	 * Allocate and initialize unit structure
175	 */
176	if (!(up = (struct as2201unit *)
177	      emalloc(sizeof(struct as2201unit)))) {
178		(void) close(fd);
179		return (0);
180	}
181	memset((char *)up, 0, sizeof(struct as2201unit));
182	pp = peer->procptr;
183	pp->io.clock_recv = as2201_receive;
184	pp->io.srcclock = (caddr_t)peer;
185	pp->io.datalen = 0;
186	pp->io.fd = fd;
187	if (!io_addclock(&pp->io)) {
188		(void) close(fd);
189		free(up);
190		return (0);
191	}
192	pp->unitptr = (caddr_t)up;
193
194	/*
195	 * Initialize miscellaneous variables
196	 */
197	peer->precision = PRECISION;
198	peer->burst = NSTAGE;
199	pp->clockdesc = DESCRIPTION;
200	memcpy((char *)&pp->refid, REFID, 4);
201	up->lastptr = up->stats;
202	up->index = 0;
203	return (1);
204}
205
206
207/*
208 * as2201_shutdown - shut down the clock
209 */
210static void
211as2201_shutdown(
212	int unit,
213	struct peer *peer
214	)
215{
216	register struct as2201unit *up;
217	struct refclockproc *pp;
218
219	pp = peer->procptr;
220	up = (struct as2201unit *)pp->unitptr;
221	io_closeclock(&pp->io);
222	free(up);
223}
224
225
226/*
227 * as2201__receive - receive data from the serial interface
228 */
229static void
230as2201_receive(
231	struct recvbuf *rbufp
232	)
233{
234	register struct as2201unit *up;
235	struct refclockproc *pp;
236	struct peer *peer;
237	l_fp trtmp;
238
239	/*
240	 * Initialize pointers and read the timecode and timestamp.
241	 */
242	peer = (struct peer *)rbufp->recv_srcclock;
243	pp = peer->procptr;
244	up = (struct as2201unit *)pp->unitptr;
245	pp->lencode = refclock_gtlin(rbufp, pp->a_lastcode, BMAX, &trtmp);
246#ifdef DEBUG
247	if (debug)
248	    printf("gps: timecode %d %d %s\n",
249		   up->linect, pp->lencode, pp->a_lastcode);
250#endif
251	if (pp->lencode == 0)
252	    return;
253
254	/*
255	 * If linect is greater than zero, we must be in the middle of a
256	 * statistics operation, so simply tack the received data at the
257	 * end of the statistics string. If not, we could either have
258	 * just received the timecode itself or a decimal number
259	 * indicating the number of following lines of the statistics
260	 * reply. In the former case, write the accumulated statistics
261	 * data to the clockstats file and continue onward to process
262	 * the timecode; in the later case, save the number of lines and
263	 * quietly return.
264	 */
265	if (pp->sloppyclockflag & CLK_FLAG2)
266		pp->lastrec = trtmp;
267	if (up->linect > 0) {
268		up->linect--;
269		if ((int)(up->lastptr - up->stats + pp->lencode) > SMAX - 2)
270		    return;
271		*up->lastptr++ = ' ';
272		(void)strcpy(up->lastptr, pp->a_lastcode);
273		up->lastptr += pp->lencode;
274		return;
275	} else {
276		if (pp->lencode == 1) {
277			up->linect = atoi(pp->a_lastcode);
278			return;
279		} else {
280			record_clock_stats(&peer->srcadr, up->stats);
281#ifdef DEBUG
282			if (debug)
283			    printf("gps: stat %s\n", up->stats);
284#endif
285		}
286	}
287	up->lastptr = up->stats;
288	*up->lastptr = '\0';
289
290	/*
291	 * We get down to business, check the timecode format and decode
292	 * its contents. If the timecode has invalid length or is not in
293	 * proper format, we declare bad format and exit.
294	 */
295	if (pp->lencode < LENTOC) {
296		refclock_report(peer, CEVNT_BADREPLY);
297		return;
298	}
299
300	/*
301	 * Timecode format: "yy:ddd:hh:mm:ss.mmm"
302	 */
303	if (sscanf(pp->a_lastcode, "%2d:%3d:%2d:%2d:%2d.%3d", &pp->year,
304		   &pp->day, &pp->hour, &pp->minute, &pp->second, &pp->msec)
305	    != 6) {
306		refclock_report(peer, CEVNT_BADREPLY);
307		return;
308	}
309
310	/*
311	 * Test for synchronization (this is a temporary crock).
312	 */
313	if (pp->a_lastcode[2] != ':')
314		pp->leap = LEAP_NOTINSYNC;
315	else
316		pp->leap = LEAP_NOWARNING;
317
318	/*
319	 * Process the new sample in the median filter and determine the
320	 * timecode timestamp.
321	 */
322	if (!refclock_process(pp)) {
323		refclock_report(peer, CEVNT_BADTIME);
324		return;
325	}
326
327	/*
328	 * If CLK_FLAG4 is set, initialize the statistics buffer and
329	 * send the next command. If not, simply write the timecode to
330	 * the clockstats file.
331	 */
332	(void)strcpy(up->lastptr, pp->a_lastcode);
333	up->lastptr += pp->lencode;
334	if (pp->sloppyclockflag & CLK_FLAG4) {
335		*up->lastptr++ = ' ';
336		(void)strcpy(up->lastptr, stat_command[up->index]);
337		up->lastptr += strlen(stat_command[up->index]);
338		up->lastptr--;
339		*up->lastptr = '\0';
340		(void)write(pp->io.fd, stat_command[up->index],
341		    strlen(stat_command[up->index]));
342		up->index++;
343		if (*stat_command[up->index] == '\0')
344			up->index = 0;
345	}
346}
347
348
349/*
350 * as2201_poll - called by the transmit procedure
351 *
352 * We go to great pains to avoid changing state here, since there may be
353 * more than one eavesdropper receiving the same timecode.
354 */
355static void
356as2201_poll(
357	int unit,
358	struct peer *peer
359	)
360{
361	struct refclockproc *pp;
362
363	/*
364	 * Send a "\r*toc\r" to get things going. We go to great pains
365	 * to avoid changing state, since there may be more than one
366	 * eavesdropper watching the radio.
367	 */
368	pp = peer->procptr;
369	if (write(pp->io.fd, "\r*toc\r", 6) != 6) {
370		refclock_report(peer, CEVNT_FAULT);
371	} else {
372		pp->polls++;
373		if (!(pp->sloppyclockflag & CLK_FLAG2))
374			get_systime(&pp->lastrec);
375	}
376	if (peer->burst > 0)
377                return;
378        if (pp->coderecv == pp->codeproc) {
379                refclock_report(peer, CEVNT_TIMEOUT);
380                return;
381        }
382        refclock_receive(peer);
383	peer->burst = NSTAGE;
384}
385
386#else
387int refclock_as2201_bs;
388#endif /* REFCLOCK */
389