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dcfd.c revision 1.1.1.1.22.2
      1 /*	$NetBSD: dcfd.c,v 1.1.1.1.22.2 2015/11/07 22:46:18 snj Exp $	*/
      2 
      3 /*
      4  * /src/NTP/REPOSITORY/ntp4-dev/parseutil/dcfd.c,v 4.18 2005/10/07 22:08:18 kardel RELEASE_20051008_A
      5  *
      6  * dcfd.c,v 4.18 2005/10/07 22:08:18 kardel RELEASE_20051008_A
      7  *
      8  * DCF77 100/200ms pulse synchronisation daemon program (via 50Baud serial line)
      9  *
     10  * Features:
     11  *  DCF77 decoding
     12  *  simple NTP loopfilter logic for local clock
     13  *  interactive display for debugging
     14  *
     15  * Lacks:
     16  *  Leap second handling (at that level you should switch to NTP Version 4 - really!)
     17  *
     18  * Copyright (c) 1995-2015 by Frank Kardel <kardel <AT> ntp.org>
     19  * Copyright (c) 1989-1994 by Frank Kardel, Friedrich-Alexander Universitaet Erlangen-Nuernberg, Germany
     20  *
     21  * Redistribution and use in source and binary forms, with or without
     22  * modification, are permitted provided that the following conditions
     23  * are met:
     24  * 1. Redistributions of source code must retain the above copyright
     25  *    notice, this list of conditions and the following disclaimer.
     26  * 2. Redistributions in binary form must reproduce the above copyright
     27  *    notice, this list of conditions and the following disclaimer in the
     28  *    documentation and/or other materials provided with the distribution.
     29  * 3. Neither the name of the author nor the names of its contributors
     30  *    may be used to endorse or promote products derived from this software
     31  *    without specific prior written permission.
     32  *
     33  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
     34  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     35  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     36  * ARE DISCLAIMED.  IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
     37  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     38  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     39  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     40  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     41  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     42  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     43  * SUCH DAMAGE.
     44  *
     45  */
     46 
     47 #ifdef HAVE_CONFIG_H
     48 # include <config.h>
     49 #endif
     50 
     51 #include <sys/ioctl.h>
     52 #include <unistd.h>
     53 #include <stdio.h>
     54 #include <fcntl.h>
     55 #include <sys/types.h>
     56 #include <sys/time.h>
     57 #include <signal.h>
     58 #include <syslog.h>
     59 #include <time.h>
     60 
     61 /*
     62  * NTP compilation environment
     63  */
     64 #include "ntp_stdlib.h"
     65 #include "ntpd.h"   /* indirectly include ntp.h to get YEAR_PIVOT   Y2KFixes */
     66 
     67 /*
     68  * select which terminal handling to use (currently only SysV variants)
     69  */
     70 #if defined(HAVE_TERMIOS_H) || defined(STREAM)
     71 #include <termios.h>
     72 #define TTY_GETATTR(_FD_, _ARG_) tcgetattr((_FD_), (_ARG_))
     73 #define TTY_SETATTR(_FD_, _ARG_) tcsetattr((_FD_), TCSANOW, (_ARG_))
     74 #else  /* not HAVE_TERMIOS_H || STREAM */
     75 # if defined(HAVE_TERMIO_H) || defined(HAVE_SYSV_TTYS)
     76 #  include <termio.h>
     77 #  define TTY_GETATTR(_FD_, _ARG_) ioctl((_FD_), TCGETA, (_ARG_))
     78 #  define TTY_SETATTR(_FD_, _ARG_) ioctl((_FD_), TCSETAW, (_ARG_))
     79 # endif/* HAVE_TERMIO_H || HAVE_SYSV_TTYS */
     80 #endif /* not HAVE_TERMIOS_H || STREAM */
     81 
     82 
     83 #ifndef TTY_GETATTR
     84 #include "Bletch: MUST DEFINE ONE OF 'HAVE_TERMIOS_H' or 'HAVE_TERMIO_H'"
     85 #endif
     86 
     87 #ifndef days_per_year
     88 #define days_per_year(_x_) (((_x_) % 4) ? 365 : (((_x_) % 400) ? 365 : 366))
     89 #endif
     90 
     91 #define timernormalize(_a_) \
     92 	if ((_a_)->tv_usec >= 1000000) \
     93 	{ \
     94 		(_a_)->tv_sec  += (_a_)->tv_usec / 1000000; \
     95 		(_a_)->tv_usec  = (_a_)->tv_usec % 1000000; \
     96 	} \
     97 	if ((_a_)->tv_usec < 0) \
     98 	{ \
     99 		(_a_)->tv_sec  -= 1 + (-(_a_)->tv_usec / 1000000); \
    100 		(_a_)->tv_usec = 999999 - (-(_a_)->tv_usec - 1); \
    101 	}
    102 
    103 #ifdef timeradd
    104 #undef timeradd
    105 #endif
    106 #define timeradd(_a_, _b_) \
    107 	(_a_)->tv_sec  += (_b_)->tv_sec; \
    108 	(_a_)->tv_usec += (_b_)->tv_usec; \
    109 	timernormalize((_a_))
    110 
    111 #ifdef timersub
    112 #undef timersub
    113 #endif
    114 #define timersub(_a_, _b_) \
    115 	(_a_)->tv_sec  -= (_b_)->tv_sec; \
    116 	(_a_)->tv_usec -= (_b_)->tv_usec; \
    117 	timernormalize((_a_))
    118 
    119 /*
    120  * debug macros
    121  */
    122 #define PRINTF if (interactive) printf
    123 #define LPRINTF if (interactive && loop_filter_debug) printf
    124 
    125 #ifdef DEBUG
    126 #define dprintf(_x_) LPRINTF _x_
    127 #else
    128 #define dprintf(_x_)
    129 #endif
    130 
    131 #ifdef DECL_ERRNO
    132      extern int errno;
    133 #endif
    134 
    135 static char *revision = "4.18";
    136 
    137 /*
    138  * display received data (avoids also detaching from tty)
    139  */
    140 static int interactive = 0;
    141 
    142 /*
    143  * display loopfilter (clock control) variables
    144  */
    145 static int loop_filter_debug = 0;
    146 
    147 /*
    148  * do not set/adjust system time
    149  */
    150 static int no_set = 0;
    151 
    152 /*
    153  * time that passes between start of DCF impulse and time stamping (fine
    154  * adjustment) in microseconds (receiver/OS dependent)
    155  */
    156 #define DEFAULT_DELAY	230000	/* rough estimate */
    157 
    158 /*
    159  * The two states we can be in - eithe we receive nothing
    160  * usable or we have the correct time
    161  */
    162 #define NO_SYNC		0x01
    163 #define SYNC		0x02
    164 
    165 static int    sync_state = NO_SYNC;
    166 static time_t last_sync;
    167 
    168 static unsigned long ticks = 0;
    169 
    170 static char pat[] = "-\\|/";
    171 
    172 #define LINES		(24-2)	/* error lines after which the two headlines are repeated */
    173 
    174 #define MAX_UNSYNC	(10*60)	/* allow synchronisation loss for 10 minutes */
    175 #define NOTICE_INTERVAL (20*60)	/* mention missing synchronisation every 20 minutes */
    176 
    177 /*
    178  * clock adjustment PLL - see NTP protocol spec (RFC1305) for details
    179  */
    180 
    181 #define USECSCALE	10
    182 #define TIMECONSTANT	2
    183 #define ADJINTERVAL	0
    184 #define FREQ_WEIGHT	18
    185 #define PHASE_WEIGHT	7
    186 #define MAX_DRIFT	0x3FFFFFFF
    187 
    188 #define R_SHIFT(_X_, _Y_) (((_X_) < 0) ? -(-(_X_) >> (_Y_)) : ((_X_) >> (_Y_)))
    189 
    190 static long max_adj_offset_usec = 128000;
    191 
    192 static long clock_adjust = 0;	/* current adjustment value (usec * 2^USECSCALE) */
    193 static long accum_drift   = 0;	/* accumulated drift value  (usec / ADJINTERVAL) */
    194 static long adjustments  = 0;
    195 static char skip_adjust  = 1;	/* discard first adjustment (bad samples) */
    196 
    197 /*
    198  * DCF77 state flags
    199  */
    200 #define DCFB_ANNOUNCE		0x0001 /* switch time zone warning (DST switch) */
    201 #define DCFB_DST		0x0002 /* DST in effect */
    202 #define DCFB_LEAP		0x0004 /* LEAP warning (1 hour prior to occurrence) */
    203 #define DCFB_CALLBIT		0x0008 /* "call bit" used to signalize irregularities in the control facilities */
    204 
    205 struct clocktime		/* clock time broken up from time code */
    206 {
    207 	long wday;		/* Day of week: 1: Monday - 7: Sunday */
    208 	long day;
    209 	long month;
    210 	long year;
    211 	long hour;
    212 	long minute;
    213 	long second;
    214 	long usecond;
    215 	long utcoffset;	/* in minutes */
    216 	long flags;		/* current clock status  (DCF77 state flags) */
    217 };
    218 
    219 typedef struct clocktime clocktime_t;
    220 
    221 /*
    222  * (usually) quick constant multiplications
    223  */
    224 #ifndef TIMES10
    225 #define TIMES10(_X_) (((_X_) << 3) + ((_X_) << 1))	/* *8 + *2 */
    226 #endif
    227 #ifndef TIMES24
    228 #define TIMES24(_X_) (((_X_) << 4) + ((_X_) << 3))      /* *16 + *8 */
    229 #endif
    230 #ifndef TIMES60
    231 #define TIMES60(_X_) ((((_X_) << 4)  - (_X_)) << 2)     /* *(16 - 1) *4 */
    232 #endif
    233 
    234 /*
    235  * generic l_abs() function
    236  */
    237 #define l_abs(_x_)     (((_x_) < 0) ? -(_x_) : (_x_))
    238 
    239 /*
    240  * conversion related return/error codes
    241  */
    242 #define CVT_MASK	0x0000000F /* conversion exit code */
    243 #define   CVT_NONE	0x00000001 /* format not applicable */
    244 #define   CVT_FAIL	0x00000002 /* conversion failed - error code returned */
    245 #define   CVT_OK	0x00000004 /* conversion succeeded */
    246 #define CVT_BADFMT	0x00000010 /* general format error - (unparsable) */
    247 #define CVT_BADDATE	0x00000020 /* invalid date */
    248 #define CVT_BADTIME	0x00000040 /* invalid time */
    249 
    250 /*
    251  * DCF77 raw time code
    252  *
    253  * From "Zur Zeit", Physikalisch-Technische Bundesanstalt (PTB), Braunschweig
    254  * und Berlin, Maerz 1989
    255  *
    256  * Timecode transmission:
    257  * AM:
    258  *	time marks are send every second except for the second before the
    259  *	next minute mark
    260  *	time marks consist of a reduction of transmitter power to 25%
    261  *	of the nominal level
    262  *	the falling edge is the time indication (on time)
    263  *	time marks of a 100ms duration constitute a logical 0
    264  *	time marks of a 200ms duration constitute a logical 1
    265  * FM:
    266  *	see the spec. (basically a (non-)inverted psuedo random phase shift)
    267  *
    268  * Encoding:
    269  * Second	Contents
    270  * 0  - 10	AM: free, FM: 0
    271  * 11 - 14	free
    272  * 15		R     - "call bit" used to signalize irregularities in the control facilities
    273  *		        (until 2003 indicated transmission via alternate antenna)
    274  * 16		A1    - expect zone change (1 hour before)
    275  * 17 - 18	Z1,Z2 - time zone
    276  *		 0  0 illegal
    277  *		 0  1 MEZ  (MET)
    278  *		 1  0 MESZ (MED, MET DST)
    279  *		 1  1 illegal
    280  * 19		A2    - expect leap insertion/deletion (1 hour before)
    281  * 20		S     - start of time code (1)
    282  * 21 - 24	M1    - BCD (lsb first) Minutes
    283  * 25 - 27	M10   - BCD (lsb first) 10 Minutes
    284  * 28		P1    - Minute Parity (even)
    285  * 29 - 32	H1    - BCD (lsb first) Hours
    286  * 33 - 34      H10   - BCD (lsb first) 10 Hours
    287  * 35		P2    - Hour Parity (even)
    288  * 36 - 39	D1    - BCD (lsb first) Days
    289  * 40 - 41	D10   - BCD (lsb first) 10 Days
    290  * 42 - 44	DW    - BCD (lsb first) day of week (1: Monday -> 7: Sunday)
    291  * 45 - 49	MO    - BCD (lsb first) Month
    292  * 50           MO0   - 10 Months
    293  * 51 - 53	Y1    - BCD (lsb first) Years
    294  * 54 - 57	Y10   - BCD (lsb first) 10 Years
    295  * 58 		P3    - Date Parity (even)
    296  * 59		      - usually missing (minute indication), except for leap insertion
    297  */
    298 
    299 /*-----------------------------------------------------------------------
    300  * conversion table to map DCF77 bit stream into data fields.
    301  * Encoding:
    302  *   Each field of the DCF77 code is described with two adjacent entries in
    303  *   this table. The first entry specifies the offset into the DCF77 data stream
    304  *   while the length is given as the difference between the start index and
    305  *   the start index of the following field.
    306  */
    307 static struct rawdcfcode
    308 {
    309 	char offset;			/* start bit */
    310 } rawdcfcode[] =
    311 {
    312 	{  0 }, { 15 }, { 16 }, { 17 }, { 19 }, { 20 }, { 21 }, { 25 }, { 28 }, { 29 },
    313 	{ 33 }, { 35 }, { 36 }, { 40 }, { 42 }, { 45 }, { 49 }, { 50 }, { 54 }, { 58 }, { 59 }
    314 };
    315 
    316 /*-----------------------------------------------------------------------
    317  * symbolic names for the fields of DCF77 describes in "rawdcfcode".
    318  * see comment above for the structure of the DCF77 data
    319  */
    320 #define DCF_M	0
    321 #define DCF_R	1
    322 #define DCF_A1	2
    323 #define DCF_Z	3
    324 #define DCF_A2	4
    325 #define DCF_S	5
    326 #define DCF_M1	6
    327 #define DCF_M10	7
    328 #define DCF_P1	8
    329 #define DCF_H1	9
    330 #define DCF_H10	10
    331 #define DCF_P2	11
    332 #define DCF_D1	12
    333 #define DCF_D10	13
    334 #define DCF_DW	14
    335 #define DCF_MO	15
    336 #define DCF_MO0	16
    337 #define DCF_Y1	17
    338 #define DCF_Y10	18
    339 #define DCF_P3	19
    340 
    341 /*-----------------------------------------------------------------------
    342  * parity field table (same encoding as rawdcfcode)
    343  * This table describes the sections of the DCF77 code that are
    344  * parity protected
    345  */
    346 static struct partab
    347 {
    348 	char offset;			/* start bit of parity field */
    349 } partab[] =
    350 {
    351 	{ 21 }, { 29 }, { 36 }, { 59 }
    352 };
    353 
    354 /*-----------------------------------------------------------------------
    355  * offsets for parity field descriptions
    356  */
    357 #define DCF_P_P1	0
    358 #define DCF_P_P2	1
    359 #define DCF_P_P3	2
    360 
    361 /*-----------------------------------------------------------------------
    362  * legal values for time zone information
    363  */
    364 #define DCF_Z_MET 0x2
    365 #define DCF_Z_MED 0x1
    366 
    367 /*-----------------------------------------------------------------------
    368  * symbolic representation if the DCF77 data stream
    369  */
    370 static struct dcfparam
    371 {
    372 	unsigned char onebits[60];
    373 	unsigned char zerobits[60];
    374 } dcfparam =
    375 {
    376 	"###############RADMLS1248124P124812P1248121241248112481248P", /* 'ONE' representation */
    377 	"--------------------s-------p------p----------------------p"  /* 'ZERO' representation */
    378 };
    379 
    380 /*-----------------------------------------------------------------------
    381  * extract a bitfield from DCF77 datastream
    382  * All numeric fields are LSB first.
    383  * buf holds a pointer to a DCF77 data buffer in symbolic
    384  *     representation
    385  * idx holds the index to the field description in rawdcfcode
    386  */
    387 static unsigned long
    388 ext_bf(
    389 	register unsigned char *buf,
    390 	register int   idx
    391 	)
    392 {
    393 	register unsigned long sum = 0;
    394 	register int i, first;
    395 
    396 	first = rawdcfcode[idx].offset;
    397 
    398 	for (i = rawdcfcode[idx+1].offset - 1; i >= first; i--)
    399 	{
    400 		sum <<= 1;
    401 		sum |= (buf[i] != dcfparam.zerobits[i]);
    402 	}
    403 	return sum;
    404 }
    405 
    406 /*-----------------------------------------------------------------------
    407  * check even parity integrity for a bitfield
    408  *
    409  * buf holds a pointer to a DCF77 data buffer in symbolic
    410  *     representation
    411  * idx holds the index to the field description in partab
    412  */
    413 static unsigned
    414 pcheck(
    415 	register unsigned char *buf,
    416 	register int   idx
    417 	)
    418 {
    419 	register int i,last;
    420 	register unsigned psum = 1;
    421 
    422 	last = partab[idx+1].offset;
    423 
    424 	for (i = partab[idx].offset; i < last; i++)
    425 	    psum ^= (buf[i] != dcfparam.zerobits[i]);
    426 
    427 	return psum;
    428 }
    429 
    430 /*-----------------------------------------------------------------------
    431  * convert a DCF77 data buffer into wall clock time + flags
    432  *
    433  * buffer holds a pointer to a DCF77 data buffer in symbolic
    434  *        representation
    435  * size   describes the length of DCF77 information in bits (represented
    436  *        as chars in symbolic notation
    437  * clock  points to a wall clock time description of the DCF77 data (result)
    438  */
    439 static unsigned long
    440 convert_rawdcf(
    441 	       unsigned char   *buffer,
    442 	       int              size,
    443 	       clocktime_t     *clock_time
    444 	       )
    445 {
    446 	if (size < 57)
    447 	{
    448 		PRINTF("%-30s", "*** INCOMPLETE");
    449 		return CVT_NONE;
    450 	}
    451 
    452 	/*
    453 	 * check Start and Parity bits
    454 	 */
    455 	if ((ext_bf(buffer, DCF_S) == 1) &&
    456 	    pcheck(buffer, DCF_P_P1) &&
    457 	    pcheck(buffer, DCF_P_P2) &&
    458 	    pcheck(buffer, DCF_P_P3))
    459 	{
    460 		/*
    461 		 * buffer OK - extract all fields and build wall clock time from them
    462 		 */
    463 
    464 		clock_time->flags  = 0;
    465 		clock_time->usecond= 0;
    466 		clock_time->second = 0;
    467 		clock_time->minute = ext_bf(buffer, DCF_M10);
    468 		clock_time->minute = TIMES10(clock_time->minute) + ext_bf(buffer, DCF_M1);
    469 		clock_time->hour   = ext_bf(buffer, DCF_H10);
    470 		clock_time->hour   = TIMES10(clock_time->hour)   + ext_bf(buffer, DCF_H1);
    471 		clock_time->day    = ext_bf(buffer, DCF_D10);
    472 		clock_time->day    = TIMES10(clock_time->day)    + ext_bf(buffer, DCF_D1);
    473 		clock_time->month  = ext_bf(buffer, DCF_MO0);
    474 		clock_time->month  = TIMES10(clock_time->month)  + ext_bf(buffer, DCF_MO);
    475 		clock_time->year   = ext_bf(buffer, DCF_Y10);
    476 		clock_time->year   = TIMES10(clock_time->year)   + ext_bf(buffer, DCF_Y1);
    477 		clock_time->wday   = ext_bf(buffer, DCF_DW);
    478 
    479 		/*
    480 		 * determine offset to UTC by examining the time zone
    481 		 */
    482 		switch (ext_bf(buffer, DCF_Z))
    483 		{
    484 		    case DCF_Z_MET:
    485 			clock_time->utcoffset = -60;
    486 			break;
    487 
    488 		    case DCF_Z_MED:
    489 			clock_time->flags     |= DCFB_DST;
    490 			clock_time->utcoffset  = -120;
    491 			break;
    492 
    493 		    default:
    494 			PRINTF("%-30s", "*** BAD TIME ZONE");
    495 			return CVT_FAIL|CVT_BADFMT;
    496 		}
    497 
    498 		/*
    499 		 * extract various warnings from DCF77
    500 		 */
    501 		if (ext_bf(buffer, DCF_A1))
    502 		    clock_time->flags |= DCFB_ANNOUNCE;
    503 
    504 		if (ext_bf(buffer, DCF_A2))
    505 		    clock_time->flags |= DCFB_LEAP;
    506 
    507 		if (ext_bf(buffer, DCF_R))
    508 		    clock_time->flags |= DCFB_CALLBIT;
    509 
    510 		return CVT_OK;
    511 	}
    512 	else
    513 	{
    514 		/*
    515 		 * bad format - not for us
    516 		 */
    517 		PRINTF("%-30s", "*** BAD FORMAT (invalid/parity)");
    518 		return CVT_FAIL|CVT_BADFMT;
    519 	}
    520 }
    521 
    522 /*-----------------------------------------------------------------------
    523  * raw dcf input routine - fix up 50 baud
    524  * characters for 1/0 decision
    525  */
    526 static unsigned long
    527 cvt_rawdcf(
    528 	   unsigned char   *buffer,
    529 	   int              size,
    530 	   clocktime_t     *clock_time
    531 	   )
    532 {
    533 	register unsigned char *s = buffer;
    534 	register unsigned char *e = buffer + size;
    535 	register unsigned char *b = dcfparam.onebits;
    536 	register unsigned char *c = dcfparam.zerobits;
    537 	register unsigned rtc = CVT_NONE;
    538 	register unsigned int i, lowmax, highmax, cutoff, span;
    539 #define BITS 9
    540 	unsigned char     histbuf[BITS];
    541 	/*
    542 	 * the input buffer contains characters with runs of consecutive
    543 	 * bits set. These set bits are an indication of the DCF77 pulse
    544 	 * length. We assume that we receive the pulse at 50 Baud. Thus
    545 	 * a 100ms pulse would generate a 4 bit train (20ms per bit and
    546 	 * start bit)
    547 	 * a 200ms pulse would create all zeroes (and probably a frame error)
    548 	 *
    549 	 * The basic idea is that on corret reception we must have two
    550 	 * maxima in the pulse length distribution histogram. (one for
    551 	 * the zero representing pulses and one for the one representing
    552 	 * pulses)
    553 	 * There will always be ones in the datastream, thus we have to see
    554 	 * two maxima.
    555 	 * The best point to cut for a 1/0 decision is the minimum between those
    556 	 * between the maxima. The following code tries to find this cutoff point.
    557 	 */
    558 
    559 	/*
    560 	 * clear histogram buffer
    561 	 */
    562 	for (i = 0; i < BITS; i++)
    563 	{
    564 		histbuf[i] = 0;
    565 	}
    566 
    567 	cutoff = 0;
    568 	lowmax = 0;
    569 
    570 	/*
    571 	 * convert sequences of set bits into bits counts updating
    572 	 * the histogram alongway
    573 	 */
    574 	while (s < e)
    575 	{
    576 		register unsigned int ch = *s ^ 0xFF;
    577 		/*
    578 		 * check integrity and update histogramm
    579 		 */
    580 		if (!((ch+1) & ch) || !*s)
    581 		{
    582 			/*
    583 			 * character ok
    584 			 */
    585 			for (i = 0; ch; i++)
    586 			{
    587 				ch >>= 1;
    588 			}
    589 
    590 			*s = i;
    591 			histbuf[i]++;
    592 			cutoff += i;
    593 			lowmax++;
    594 		}
    595 		else
    596 		{
    597 			/*
    598 			 * invalid character (no consecutive bit sequence)
    599 			 */
    600 			dprintf(("parse: cvt_rawdcf: character check for 0x%x@%ld FAILED\n",
    601 				 (u_int)*s, (long)(s - buffer)));
    602 			*s = (unsigned char)~0;
    603 			rtc = CVT_FAIL|CVT_BADFMT;
    604 		}
    605 		s++;
    606 	}
    607 
    608 	/*
    609 	 * first cutoff estimate (average bit count - must be between both
    610 	 * maxima)
    611 	 */
    612 	if (lowmax)
    613 	{
    614 		cutoff /= lowmax;
    615 	}
    616 	else
    617 	{
    618 		cutoff = 4;	/* doesn't really matter - it'll fail anyway, but gives error output */
    619 	}
    620 
    621 	dprintf(("parse: cvt_rawdcf: average bit count: %d\n", cutoff));
    622 
    623 	lowmax = 0;  /* weighted sum */
    624 	highmax = 0; /* bitcount */
    625 
    626 	/*
    627 	 * collect weighted sum of lower bits (left of initial guess)
    628 	 */
    629 	dprintf(("parse: cvt_rawdcf: histogram:"));
    630 	for (i = 0; i <= cutoff; i++)
    631 	{
    632 		lowmax  += histbuf[i] * i;
    633 		highmax += histbuf[i];
    634 		dprintf((" %d", histbuf[i]));
    635 	}
    636 	dprintf((" <M>"));
    637 
    638 	/*
    639 	 * round up
    640 	 */
    641 	lowmax += highmax / 2;
    642 
    643 	/*
    644 	 * calculate lower bit maximum (weighted sum / bit count)
    645 	 *
    646 	 * avoid divide by zero
    647 	 */
    648 	if (highmax)
    649 	{
    650 		lowmax /= highmax;
    651 	}
    652 	else
    653 	{
    654 		lowmax = 0;
    655 	}
    656 
    657 	highmax = 0; /* weighted sum of upper bits counts */
    658 	cutoff = 0;  /* bitcount */
    659 
    660 	/*
    661 	 * collect weighted sum of lower bits (right of initial guess)
    662 	 */
    663 	for (; i < BITS; i++)
    664 	{
    665 		highmax+=histbuf[i] * i;
    666 		cutoff +=histbuf[i];
    667 		dprintf((" %d", histbuf[i]));
    668 	}
    669 	dprintf(("\n"));
    670 
    671 	/*
    672 	 * determine upper maximum (weighted sum / bit count)
    673 	 */
    674 	if (cutoff)
    675 	{
    676 		highmax /= cutoff;
    677 	}
    678 	else
    679 	{
    680 		highmax = BITS-1;
    681 	}
    682 
    683 	/*
    684 	 * following now holds:
    685 	 * lowmax <= cutoff(initial guess) <= highmax
    686 	 * best cutoff is the minimum nearest to higher bits
    687 	 */
    688 
    689 	/*
    690 	 * find the minimum between lowmax and highmax (detecting
    691 	 * possibly a minimum span)
    692 	 */
    693 	span = cutoff = lowmax;
    694 	for (i = lowmax; i <= highmax; i++)
    695 	{
    696 		if (histbuf[cutoff] > histbuf[i])
    697 		{
    698 			/*
    699 			 * got a new minimum move beginning of minimum (cutoff) and
    700 			 * end of minimum (span) there
    701 			 */
    702 			cutoff = span = i;
    703 		}
    704 		else
    705 		    if (histbuf[cutoff] == histbuf[i])
    706 		    {
    707 			    /*
    708 			     * minimum not better yet - but it spans more than
    709 			     * one bit value - follow it
    710 			     */
    711 			    span = i;
    712 		    }
    713 	}
    714 
    715 	/*
    716 	 * cutoff point for 1/0 decision is the middle of the minimum section
    717 	 * in the histogram
    718 	 */
    719 	cutoff = (cutoff + span) / 2;
    720 
    721 	dprintf(("parse: cvt_rawdcf: lower maximum %d, higher maximum %d, cutoff %d\n", lowmax, highmax, cutoff));
    722 
    723 	/*
    724 	 * convert the bit counts to symbolic 1/0 information for data conversion
    725 	 */
    726 	s = buffer;
    727 	while ((s < e) && *c && *b)
    728 	{
    729 		if (*s == (unsigned char)~0)
    730 		{
    731 			/*
    732 			 * invalid character
    733 			 */
    734 			*s = '?';
    735 		}
    736 		else
    737 		{
    738 			/*
    739 			 * symbolic 1/0 representation
    740 			 */
    741 			*s = (*s >= cutoff) ? *b : *c;
    742 		}
    743 		s++;
    744 		b++;
    745 		c++;
    746 	}
    747 
    748 	/*
    749 	 * if everything went well so far return the result of the symbolic
    750 	 * conversion routine else just the accumulated errors
    751 	 */
    752 	if (rtc != CVT_NONE)
    753 	{
    754 		PRINTF("%-30s", "*** BAD DATA");
    755 	}
    756 
    757 	return (rtc == CVT_NONE) ? convert_rawdcf(buffer, size, clock_time) : rtc;
    758 }
    759 
    760 /*-----------------------------------------------------------------------
    761  * convert a wall clock time description of DCF77 to a Unix time (seconds
    762  * since 1.1. 1970 UTC)
    763  */
    764 static time_t
    765 dcf_to_unixtime(
    766 		clocktime_t   *clock_time,
    767 		unsigned *cvtrtc
    768 		)
    769 {
    770 #define SETRTC(_X_)	{ if (cvtrtc) *cvtrtc = (_X_); }
    771 	static int days_of_month[] =
    772 	{
    773 		0, 31, 28, 31, 30, 31, 30, 31, 31, 30, 31, 30, 31
    774 	};
    775 	register int i;
    776 	time_t t;
    777 
    778 	/*
    779 	 * map 2 digit years to 19xx (DCF77 is a 20th century item)
    780 	 */
    781 	if ( clock_time->year < YEAR_PIVOT ) 	/* in case of	   Y2KFixes [ */
    782 		clock_time->year += 100;	/* *year%100, make tm_year */
    783 						/* *(do we need this?) */
    784 	if ( clock_time->year < YEAR_BREAK )	/* (failsafe if) */
    785 	    clock_time->year += 1900;				/* Y2KFixes ] */
    786 
    787 	/*
    788 	 * must have been a really bad year code - drop it
    789 	 */
    790 	if (clock_time->year < (YEAR_PIVOT + 1900) )		/* Y2KFixes */
    791 	{
    792 		SETRTC(CVT_FAIL|CVT_BADDATE);
    793 		return -1;
    794 	}
    795 	/*
    796 	 * sorry, slow section here - but it's not time critical anyway
    797 	 */
    798 
    799 	/*
    800 	 * calculate days since 1970 (watching leap years)
    801 	 */
    802 	t = julian0( clock_time->year ) - julian0( 1970 );
    803 
    804   				/* month */
    805 	if (clock_time->month <= 0 || clock_time->month > 12)
    806 	{
    807 		SETRTC(CVT_FAIL|CVT_BADDATE);
    808 		return -1;		/* bad month */
    809 	}
    810 				/* adjust current leap year */
    811 #if 0
    812 	if (clock_time->month < 3 && days_per_year(clock_time->year) == 366)
    813 	    t--;
    814 #endif
    815 
    816 	/*
    817 	 * collect days from months excluding the current one
    818 	 */
    819 	for (i = 1; i < clock_time->month; i++)
    820 	{
    821 		t += days_of_month[i];
    822 	}
    823 				/* day */
    824 	if (clock_time->day < 1 || ((clock_time->month == 2 && days_per_year(clock_time->year) == 366) ?
    825 			       clock_time->day > 29 : clock_time->day > days_of_month[clock_time->month]))
    826 	{
    827 		SETRTC(CVT_FAIL|CVT_BADDATE);
    828 		return -1;		/* bad day */
    829 	}
    830 
    831 	/*
    832 	 * collect days from date excluding the current one
    833 	 */
    834 	t += clock_time->day - 1;
    835 
    836 				/* hour */
    837 	if (clock_time->hour < 0 || clock_time->hour >= 24)
    838 	{
    839 		SETRTC(CVT_FAIL|CVT_BADTIME);
    840 		return -1;		/* bad hour */
    841 	}
    842 
    843 	/*
    844 	 * calculate hours from 1. 1. 1970
    845 	 */
    846 	t = TIMES24(t) + clock_time->hour;
    847 
    848   				/* min */
    849 	if (clock_time->minute < 0 || clock_time->minute > 59)
    850 	{
    851 		SETRTC(CVT_FAIL|CVT_BADTIME);
    852 		return -1;		/* bad min */
    853 	}
    854 
    855 	/*
    856 	 * calculate minutes from 1. 1. 1970
    857 	 */
    858 	t = TIMES60(t) + clock_time->minute;
    859 				/* sec */
    860 
    861 	/*
    862 	 * calculate UTC in minutes
    863 	 */
    864 	t += clock_time->utcoffset;
    865 
    866 	if (clock_time->second < 0 || clock_time->second > 60)	/* allow for LEAPs */
    867 	{
    868 		SETRTC(CVT_FAIL|CVT_BADTIME);
    869 		return -1;		/* bad sec */
    870 	}
    871 
    872 	/*
    873 	 * calculate UTC in seconds - phew !
    874 	 */
    875 	t  = TIMES60(t) + clock_time->second;
    876 				/* done */
    877 	return t;
    878 }
    879 
    880 /*-----------------------------------------------------------------------
    881  * cheap half baked 1/0 decision - for interactive operation only
    882  */
    883 static char
    884 type(
    885      unsigned int c
    886      )
    887 {
    888 	c ^= 0xFF;
    889 	return (c > 0xF);
    890 }
    891 
    892 /*-----------------------------------------------------------------------
    893  * week day representation
    894  */
    895 static const char *wday[8] =
    896 {
    897 	"??",
    898 	"Mo",
    899 	"Tu",
    900 	"We",
    901 	"Th",
    902 	"Fr",
    903 	"Sa",
    904 	"Su"
    905 };
    906 
    907 /*-----------------------------------------------------------------------
    908  * generate a string representation for a timeval
    909  */
    910 static char *
    911 pr_timeval(
    912 	struct timeval *val
    913 	)
    914 {
    915 	static char buf[20];
    916 
    917 	if (val->tv_sec == 0)
    918 		snprintf(buf, sizeof(buf), "%c0.%06ld",
    919 			 (val->tv_usec < 0) ? '-' : '+',
    920 			 (long int)l_abs(val->tv_usec));
    921 	else
    922 		snprintf(buf, sizeof(buf), "%ld.%06ld",
    923 			 (long int)val->tv_sec,
    924 			 (long int)l_abs(val->tv_usec));
    925 	return buf;
    926 }
    927 
    928 /*-----------------------------------------------------------------------
    929  * correct the current time by an offset by setting the time rigorously
    930  */
    931 static void
    932 set_time(
    933 	 struct timeval *offset
    934 	 )
    935 {
    936 	struct timeval the_time;
    937 
    938 	if (no_set)
    939 	    return;
    940 
    941 	LPRINTF("set_time: %s ", pr_timeval(offset));
    942 	syslog(LOG_NOTICE, "setting time (offset %s)", pr_timeval(offset));
    943 
    944 	if (gettimeofday(&the_time, 0L) == -1)
    945 	{
    946 		perror("gettimeofday()");
    947 	}
    948 	else
    949 	{
    950 		timeradd(&the_time, offset);
    951 		if (settimeofday(&the_time, 0L) == -1)
    952 		{
    953 			perror("settimeofday()");
    954 		}
    955 	}
    956 }
    957 
    958 /*-----------------------------------------------------------------------
    959  * slew the time by a given offset
    960  */
    961 static void
    962 adj_time(
    963 	 long offset
    964 	 )
    965 {
    966 	struct timeval time_offset;
    967 
    968 	if (no_set)
    969 	    return;
    970 
    971 	time_offset.tv_sec  = offset / 1000000;
    972 	time_offset.tv_usec = offset % 1000000;
    973 
    974 	LPRINTF("adj_time: %ld us ", (long int)offset);
    975 	if (adjtime(&time_offset, 0L) == -1)
    976 	    perror("adjtime()");
    977 }
    978 
    979 /*-----------------------------------------------------------------------
    980  * read in a possibly previously written drift value
    981  */
    982 static void
    983 read_drift(
    984 	   const char *drift_file
    985 	   )
    986 {
    987 	FILE *df;
    988 
    989 	df = fopen(drift_file, "r");
    990 	if (df != NULL)
    991 	{
    992 		int idrift = 0, fdrift = 0;
    993 
    994 		fscanf(df, "%4d.%03d", &idrift, &fdrift);
    995 		fclose(df);
    996 		LPRINTF("read_drift: %d.%03d ppm ", idrift, fdrift);
    997 
    998 		accum_drift = idrift << USECSCALE;
    999 		fdrift     = (fdrift << USECSCALE) / 1000;
   1000 		accum_drift += fdrift & (1<<USECSCALE);
   1001 		LPRINTF("read_drift: drift_comp %ld ", (long int)accum_drift);
   1002 	}
   1003 }
   1004 
   1005 /*-----------------------------------------------------------------------
   1006  * write out the current drift value
   1007  */
   1008 static void
   1009 update_drift(
   1010 	     const char *drift_file,
   1011 	     long offset,
   1012 	     time_t reftime
   1013 	     )
   1014 {
   1015 	FILE *df;
   1016 
   1017 	df = fopen(drift_file, "w");
   1018 	if (df != NULL)
   1019 	{
   1020 		int idrift = R_SHIFT(accum_drift, USECSCALE);
   1021 		int fdrift = accum_drift & ((1<<USECSCALE)-1);
   1022 
   1023 		LPRINTF("update_drift: drift_comp %ld ", (long int)accum_drift);
   1024 		fdrift = (fdrift * 1000) / (1<<USECSCALE);
   1025 		fprintf(df, "%4d.%03d %c%ld.%06ld %.24s\n", idrift, fdrift,
   1026 			(offset < 0) ? '-' : '+', (long int)(l_abs(offset) / 1000000),
   1027 			(long int)(l_abs(offset) % 1000000), asctime(localtime(&reftime)));
   1028 		fclose(df);
   1029 		LPRINTF("update_drift: %d.%03d ppm ", idrift, fdrift);
   1030 	}
   1031 }
   1032 
   1033 /*-----------------------------------------------------------------------
   1034  * process adjustments derived from the DCF77 observation
   1035  * (controls clock PLL)
   1036  */
   1037 static void
   1038 adjust_clock(
   1039 	     struct timeval *offset,
   1040 	     const char *drift_file,
   1041 	     time_t reftime
   1042 	     )
   1043 {
   1044 	struct timeval toffset;
   1045 	register long usecoffset;
   1046 	int tmp;
   1047 
   1048 	if (no_set)
   1049 	    return;
   1050 
   1051 	if (skip_adjust)
   1052 	{
   1053 		skip_adjust = 0;
   1054 		return;
   1055 	}
   1056 
   1057 	toffset = *offset;
   1058 	toffset.tv_sec  = l_abs(toffset.tv_sec);
   1059 	toffset.tv_usec = l_abs(toffset.tv_usec);
   1060 	if (toffset.tv_sec ||
   1061 	    (!toffset.tv_sec && toffset.tv_usec > max_adj_offset_usec))
   1062 	{
   1063 		/*
   1064 		 * hopeless - set the clock - and clear the timing
   1065 		 */
   1066 		set_time(offset);
   1067 		clock_adjust = 0;
   1068 		skip_adjust  = 1;
   1069 		return;
   1070 	}
   1071 
   1072 	usecoffset   = offset->tv_sec * 1000000 + offset->tv_usec;
   1073 
   1074 	clock_adjust = R_SHIFT(usecoffset, TIMECONSTANT);	/* adjustment to make for next period */
   1075 
   1076 	tmp = 0;
   1077 	while (adjustments > (1 << tmp))
   1078 	    tmp++;
   1079 	adjustments = 0;
   1080 	if (tmp > FREQ_WEIGHT)
   1081 	    tmp = FREQ_WEIGHT;
   1082 
   1083 	accum_drift  += R_SHIFT(usecoffset << USECSCALE, TIMECONSTANT+TIMECONSTANT+FREQ_WEIGHT-tmp);
   1084 
   1085 	if (accum_drift > MAX_DRIFT)		/* clamp into interval */
   1086 	    accum_drift = MAX_DRIFT;
   1087 	else
   1088 	    if (accum_drift < -MAX_DRIFT)
   1089 		accum_drift = -MAX_DRIFT;
   1090 
   1091 	update_drift(drift_file, usecoffset, reftime);
   1092 	LPRINTF("clock_adjust: %s, clock_adjust %ld, drift_comp %ld(%ld) ",
   1093 		pr_timeval(offset),(long int) R_SHIFT(clock_adjust, USECSCALE),
   1094 		(long int)R_SHIFT(accum_drift, USECSCALE), (long int)accum_drift);
   1095 }
   1096 
   1097 /*-----------------------------------------------------------------------
   1098  * adjust the clock by a small mount to simulate frequency correction
   1099  */
   1100 static void
   1101 periodic_adjust(
   1102 		void
   1103 		)
   1104 {
   1105 	register long adjustment;
   1106 
   1107 	adjustments++;
   1108 
   1109 	adjustment = R_SHIFT(clock_adjust, PHASE_WEIGHT);
   1110 
   1111 	clock_adjust -= adjustment;
   1112 
   1113 	adjustment += R_SHIFT(accum_drift, USECSCALE+ADJINTERVAL);
   1114 
   1115 	adj_time(adjustment);
   1116 }
   1117 
   1118 /*-----------------------------------------------------------------------
   1119  * control synchronisation status (warnings) and do periodic adjusts
   1120  * (frequency control simulation)
   1121  */
   1122 static void
   1123 tick(
   1124      int signum
   1125      )
   1126 {
   1127 	static unsigned long last_notice = 0;
   1128 
   1129 #if !defined(HAVE_SIGACTION) && !defined(HAVE_SIGVEC)
   1130 	(void)signal(SIGALRM, tick);
   1131 #endif
   1132 
   1133 	periodic_adjust();
   1134 
   1135 	ticks += 1<<ADJINTERVAL;
   1136 
   1137 	if ((ticks - last_sync) > MAX_UNSYNC)
   1138 	{
   1139 		/*
   1140 		 * not getting time for a while
   1141 		 */
   1142 		if (sync_state == SYNC)
   1143 		{
   1144 			/*
   1145 			 * completely lost information
   1146 			 */
   1147 			sync_state = NO_SYNC;
   1148 			syslog(LOG_INFO, "DCF77 reception lost (timeout)");
   1149 			last_notice = ticks;
   1150 		}
   1151 		else
   1152 		    /*
   1153 		     * in NO_SYNC state - look whether its time to speak up again
   1154 		     */
   1155 		    if ((ticks - last_notice) > NOTICE_INTERVAL)
   1156 		    {
   1157 			    syslog(LOG_NOTICE, "still not synchronized to DCF77 - check receiver/signal");
   1158 			    last_notice = ticks;
   1159 		    }
   1160 	}
   1161 
   1162 #ifndef ITIMER_REAL
   1163 	(void) alarm(1<<ADJINTERVAL);
   1164 #endif
   1165 }
   1166 
   1167 /*-----------------------------------------------------------------------
   1168  * break association from terminal to avoid catching terminal
   1169  * or process group related signals (-> daemon operation)
   1170  */
   1171 static void
   1172 detach(
   1173        void
   1174        )
   1175 {
   1176 #   ifdef HAVE_DAEMON
   1177 	daemon(0, 0);
   1178 #   else /* not HAVE_DAEMON */
   1179 	if (fork())
   1180 	    exit(0);
   1181 
   1182 	{
   1183 		u_long s;
   1184 		int max_fd;
   1185 
   1186 #if defined(HAVE_SYSCONF) && defined(_SC_OPEN_MAX)
   1187 		max_fd = sysconf(_SC_OPEN_MAX);
   1188 #else /* HAVE_SYSCONF && _SC_OPEN_MAX */
   1189 		max_fd = getdtablesize();
   1190 #endif /* HAVE_SYSCONF && _SC_OPEN_MAX */
   1191 		for (s = 0; s < max_fd; s++)
   1192 		    (void) close((int)s);
   1193 		(void) open("/", 0);
   1194 		(void) dup2(0, 1);
   1195 		(void) dup2(0, 2);
   1196 #ifdef SYS_DOMAINOS
   1197 		{
   1198 			uid_$t puid;
   1199 			status_$t st;
   1200 
   1201 			proc2_$who_am_i(&puid);
   1202 			proc2_$make_server(&puid, &st);
   1203 		}
   1204 #endif /* SYS_DOMAINOS */
   1205 #if defined(HAVE_SETPGID) || defined(HAVE_SETSID)
   1206 # ifdef HAVE_SETSID
   1207 		if (setsid() == (pid_t)-1)
   1208 		    syslog(LOG_ERR, "dcfd: setsid(): %m");
   1209 # else
   1210 		if (setpgid(0, 0) == -1)
   1211 		    syslog(LOG_ERR, "dcfd: setpgid(): %m");
   1212 # endif
   1213 #else /* HAVE_SETPGID || HAVE_SETSID */
   1214 		{
   1215 			int fid;
   1216 
   1217 			fid = open("/dev/tty", 2);
   1218 			if (fid >= 0)
   1219 			{
   1220 				(void) ioctl(fid, (u_long) TIOCNOTTY, (char *) 0);
   1221 				(void) close(fid);
   1222 			}
   1223 # ifdef HAVE_SETPGRP_0
   1224 			(void) setpgrp();
   1225 # else /* HAVE_SETPGRP_0 */
   1226 			(void) setpgrp(0, getpid());
   1227 # endif /* HAVE_SETPGRP_0 */
   1228 		}
   1229 #endif /* HAVE_SETPGID || HAVE_SETSID */
   1230 	}
   1231 #endif /* not HAVE_DAEMON */
   1232 }
   1233 
   1234 /*-----------------------------------------------------------------------
   1235  * list possible arguments and options
   1236  */
   1237 static void
   1238 usage(
   1239       char *program
   1240       )
   1241 {
   1242   fprintf(stderr, "usage: %s [-n] [-f] [-l] [-t] [-i] [-o] [-d <drift_file>] [-D <input delay>] <device>\n", program);
   1243 	fprintf(stderr, "\t-n              do not change time\n");
   1244 	fprintf(stderr, "\t-i              interactive\n");
   1245 	fprintf(stderr, "\t-t              trace (print all datagrams)\n");
   1246 	fprintf(stderr, "\t-f              print all databits (includes PTB private data)\n");
   1247 	fprintf(stderr, "\t-l              print loop filter debug information\n");
   1248 	fprintf(stderr, "\t-o              print offet average for current minute\n");
   1249 	fprintf(stderr, "\t-Y              make internal Y2K checks then exit\n");	/* Y2KFixes */
   1250 	fprintf(stderr, "\t-d <drift_file> specify alternate drift file\n");
   1251 	fprintf(stderr, "\t-D <input delay>specify delay from input edge to processing in micro seconds\n");
   1252 }
   1253 
   1254 /*-----------------------------------------------------------------------
   1255  * check_y2k() - internal check of Y2K logic
   1256  *	(a lot of this logic lifted from ../ntpd/check_y2k.c)
   1257  */
   1258 static int
   1259 check_y2k( void )
   1260 {
   1261     int  year;			/* current working year */
   1262     int  year0 = 1900;		/* sarting year for NTP time */
   1263     int  yearend;		/* ending year we test for NTP time.
   1264 				    * 32-bit systems: through 2036, the
   1265 				      **year in which NTP time overflows.
   1266 				    * 64-bit systems: a reasonable upper
   1267 				      **limit (well, maybe somewhat beyond
   1268 				      **reasonable, but well before the
   1269 				      **max time, by which time the earth
   1270 				      **will be dead.) */
   1271     time_t Time;
   1272     struct tm LocalTime;
   1273 
   1274     int Fatals, Warnings;
   1275 #define Error(year) if ( (year)>=2036 && LocalTime.tm_year < 110 ) \
   1276 	Warnings++; else Fatals++
   1277 
   1278     Fatals = Warnings = 0;
   1279 
   1280     Time = time( (time_t *)NULL );
   1281     LocalTime = *localtime( &Time );
   1282 
   1283     year = ( sizeof( u_long ) > 4 ) 	/* save max span using year as temp */
   1284 		? ( 400 * 3 ) 		/* three greater gregorian cycles */
   1285 		: ((int)(0x7FFFFFFF / 365.242 / 24/60/60)* 2 ); /*32-bit limit*/
   1286 			/* NOTE: will automacially expand test years on
   1287 			 * 64 bit machines.... this may cause some of the
   1288 			 * existing ntp logic to fail for years beyond
   1289 			 * 2036 (the current 32-bit limit). If all checks
   1290 			 * fail ONLY beyond year 2036 you may ignore such
   1291 			 * errors, at least for a decade or so. */
   1292     yearend = year0 + year;
   1293 
   1294     year = 1900+YEAR_PIVOT;
   1295     printf( "  starting year %04d\n", (int) year );
   1296     printf( "  ending year   %04d\n", (int) yearend );
   1297 
   1298     for ( ; year < yearend; year++ )
   1299     {
   1300 	clocktime_t  ct;
   1301 	time_t	     Observed;
   1302 	time_t	     Expected;
   1303 	unsigned     Flag;
   1304 	unsigned long t;
   1305 
   1306 	ct.day = 1;
   1307 	ct.month = 1;
   1308 	ct.year = year;
   1309 	ct.hour = ct.minute = ct.second = ct.usecond = 0;
   1310 	ct.utcoffset = 0;
   1311 	ct.flags = 0;
   1312 
   1313 	Flag = 0;
   1314  	Observed = dcf_to_unixtime( &ct, &Flag );
   1315 		/* seems to be a clone of parse_to_unixtime() with
   1316 		 * *a minor difference to arg2 type */
   1317 	if ( ct.year != year )
   1318 	{
   1319 	    fprintf( stdout,
   1320 	       "%04d: dcf_to_unixtime(,%d) CORRUPTED ct.year: was %d\n",
   1321 	       (int)year, (int)Flag, (int)ct.year );
   1322 	    Error(year);
   1323 	    break;
   1324 	}
   1325 	t = julian0(year) - julian0(1970);	/* Julian day from 1970 */
   1326 	Expected = t * 24 * 60 * 60;
   1327 	if ( Observed != Expected  ||  Flag )
   1328 	{   /* time difference */
   1329 	    fprintf( stdout,
   1330 	       "%04d: dcf_to_unixtime(,%d) FAILURE: was=%lu s/b=%lu  (%ld)\n",
   1331 	       year, (int)Flag,
   1332 	       (unsigned long)Observed, (unsigned long)Expected,
   1333 	       ((long)Observed - (long)Expected) );
   1334 	    Error(year);
   1335 	    break;
   1336 	}
   1337 
   1338     }
   1339 
   1340     return ( Fatals );
   1341 }
   1342 
   1343 /*--------------------------------------------------
   1344  * rawdcf_init - set up modem lines for RAWDCF receivers
   1345  */
   1346 #if defined(TIOCMSET) && (defined(TIOCM_DTR) || defined(CIOCM_DTR))
   1347 static void
   1348 rawdcf_init(
   1349 	int fd
   1350 	)
   1351 {
   1352 	/*
   1353 	 * You can use the RS232 to supply the power for a DCF77 receiver.
   1354 	 * Here a voltage between the DTR and the RTS line is used. Unfortunately
   1355 	 * the name has changed from CIOCM_DTR to TIOCM_DTR recently.
   1356 	 */
   1357 
   1358 #ifdef TIOCM_DTR
   1359 	int sl232 = TIOCM_DTR;	/* turn on DTR for power supply */
   1360 #else
   1361 	int sl232 = CIOCM_DTR;	/* turn on DTR for power supply */
   1362 #endif
   1363 
   1364 	if (ioctl(fd, TIOCMSET, (caddr_t)&sl232) == -1)
   1365 	{
   1366 		syslog(LOG_NOTICE, "rawdcf_init: WARNING: ioctl(fd, TIOCMSET, [C|T]IOCM_DTR): %m");
   1367 	}
   1368 }
   1369 #else
   1370 static void
   1371 rawdcf_init(
   1372 	    int fd
   1373 	)
   1374 {
   1375 	syslog(LOG_NOTICE, "rawdcf_init: WARNING: OS interface incapable of setting DTR to power DCF modules");
   1376 }
   1377 #endif  /* DTR initialisation type */
   1378 
   1379 /*-----------------------------------------------------------------------
   1380  * main loop - argument interpreter / setup / main loop
   1381  */
   1382 int
   1383 main(
   1384      int argc,
   1385      char **argv
   1386      )
   1387 {
   1388 	unsigned char c;
   1389 	char **a = argv;
   1390 	int  ac = argc;
   1391 	char *file = NULL;
   1392 	const char *drift_file = "/etc/dcfd.drift";
   1393 	int fd;
   1394 	int offset = 15;
   1395 	int offsets = 0;
   1396 	int delay = DEFAULT_DELAY;	/* average delay from input edge to time stamping */
   1397 	int trace = 0;
   1398 	int errs = 0;
   1399 
   1400 	/*
   1401 	 * process arguments
   1402 	 */
   1403 	while (--ac)
   1404 	{
   1405 		char *arg = *++a;
   1406 		if (*arg == '-')
   1407 		    while ((c = *++arg))
   1408 			switch (c)
   1409 			{
   1410 			    case 't':
   1411 				trace = 1;
   1412 				interactive = 1;
   1413 				break;
   1414 
   1415 			    case 'f':
   1416 				offset = 0;
   1417 				interactive = 1;
   1418 				break;
   1419 
   1420 			    case 'l':
   1421 				loop_filter_debug = 1;
   1422 				offsets = 1;
   1423 				interactive = 1;
   1424 				break;
   1425 
   1426 			    case 'n':
   1427 				no_set = 1;
   1428 				break;
   1429 
   1430 			    case 'o':
   1431 				offsets = 1;
   1432 				interactive = 1;
   1433 				break;
   1434 
   1435 			    case 'i':
   1436 				interactive = 1;
   1437 				break;
   1438 
   1439 			    case 'D':
   1440 				if (ac > 1)
   1441 				{
   1442 					delay = atoi(*++a);
   1443 					ac--;
   1444 				}
   1445 				else
   1446 				{
   1447 					fprintf(stderr, "%s: -D requires integer argument\n", argv[0]);
   1448 					errs=1;
   1449 				}
   1450 				break;
   1451 
   1452 			    case 'd':
   1453 				if (ac > 1)
   1454 				{
   1455 					drift_file = *++a;
   1456 					ac--;
   1457 				}
   1458 				else
   1459 				{
   1460 					fprintf(stderr, "%s: -d requires file name argument\n", argv[0]);
   1461 					errs=1;
   1462 				}
   1463 				break;
   1464 
   1465 			    case 'Y':
   1466 				errs=check_y2k();
   1467 				exit( errs ? 1 : 0 );
   1468 
   1469 			    default:
   1470 				fprintf(stderr, "%s: unknown option -%c\n", argv[0], c);
   1471 				errs=1;
   1472 				break;
   1473 			}
   1474 		else
   1475 		    if (file == NULL)
   1476 			file = arg;
   1477 		    else
   1478 		    {
   1479 			    fprintf(stderr, "%s: device specified twice\n", argv[0]);
   1480 			    errs=1;
   1481 		    }
   1482 	}
   1483 
   1484 	if (errs)
   1485 	{
   1486 		usage(argv[0]);
   1487 		exit(1);
   1488 	}
   1489 	else
   1490 	    if (file == NULL)
   1491 	    {
   1492 		    fprintf(stderr, "%s: device not specified\n", argv[0]);
   1493 		    usage(argv[0]);
   1494 		    exit(1);
   1495 	    }
   1496 
   1497 	errs = LINES+1;
   1498 
   1499 	/*
   1500 	 * get access to DCF77 tty port
   1501 	 */
   1502 	fd = open(file, O_RDONLY);
   1503 	if (fd == -1)
   1504 	{
   1505 		perror(file);
   1506 		exit(1);
   1507 	}
   1508 	else
   1509 	{
   1510 		int i, rrc;
   1511 		struct timeval t, tt, tlast;
   1512 		struct timeval timeout;
   1513 		struct timeval phase;
   1514 		struct timeval time_offset;
   1515 		char pbuf[61];		/* printable version */
   1516 		char buf[61];		/* raw data */
   1517 		clocktime_t clock_time;	/* wall clock time */
   1518 		time_t utc_time = 0;
   1519 		time_t last_utc_time = 0;
   1520 		long usecerror = 0;
   1521 		long lasterror = 0;
   1522 #if defined(HAVE_TERMIOS_H) || defined(STREAM)
   1523 		struct termios term;
   1524 #else  /* not HAVE_TERMIOS_H || STREAM */
   1525 # if defined(HAVE_TERMIO_H) || defined(HAVE_SYSV_TTYS)
   1526 		struct termio term;
   1527 # endif/* HAVE_TERMIO_H || HAVE_SYSV_TTYS */
   1528 #endif /* not HAVE_TERMIOS_H || STREAM */
   1529 		unsigned int rtc = CVT_NONE;
   1530 
   1531 		rawdcf_init(fd);
   1532 
   1533 		timeout.tv_sec  = 1;
   1534 		timeout.tv_usec = 500000;
   1535 
   1536 		phase.tv_sec    = 0;
   1537 		phase.tv_usec   = delay;
   1538 
   1539 		/*
   1540 		 * setup TTY (50 Baud, Read, 8Bit, No Hangup, 1 character IO)
   1541 		 */
   1542 		if (TTY_GETATTR(fd,  &term) == -1)
   1543 		{
   1544 			perror("tcgetattr");
   1545 			exit(1);
   1546 		}
   1547 
   1548 		memset(term.c_cc, 0, sizeof(term.c_cc));
   1549 		term.c_cc[VMIN] = 1;
   1550 #ifdef NO_PARENB_IGNPAR
   1551 		term.c_cflag = CS8|CREAD|CLOCAL;
   1552 #else
   1553 		term.c_cflag = CS8|CREAD|CLOCAL|PARENB;
   1554 #endif
   1555 		term.c_iflag = IGNPAR;
   1556 		term.c_oflag = 0;
   1557 		term.c_lflag = 0;
   1558 
   1559 		cfsetispeed(&term, B50);
   1560 		cfsetospeed(&term, B50);
   1561 
   1562 		if (TTY_SETATTR(fd, &term) == -1)
   1563 		{
   1564 			perror("tcsetattr");
   1565 			exit(1);
   1566 		}
   1567 
   1568 		/*
   1569 		 * lose terminal if in daemon operation
   1570 		 */
   1571 		if (!interactive)
   1572 		    detach();
   1573 
   1574 		/*
   1575 		 * get syslog() initialized
   1576 		 */
   1577 #ifdef LOG_DAEMON
   1578 		openlog("dcfd", LOG_PID, LOG_DAEMON);
   1579 #else
   1580 		openlog("dcfd", LOG_PID);
   1581 #endif
   1582 
   1583 		/*
   1584 		 * setup periodic operations (state control / frequency control)
   1585 		 */
   1586 #ifdef HAVE_SIGACTION
   1587 		{
   1588 			struct sigaction act;
   1589 
   1590 # ifdef HAVE_SA_SIGACTION_IN_STRUCT_SIGACTION
   1591 			act.sa_sigaction = (void (*) (int, siginfo_t *, void *))0;
   1592 # endif /* HAVE_SA_SIGACTION_IN_STRUCT_SIGACTION */
   1593 			act.sa_handler   = tick;
   1594 			sigemptyset(&act.sa_mask);
   1595 			act.sa_flags     = 0;
   1596 
   1597 			if (sigaction(SIGALRM, &act, (struct sigaction *)0) == -1)
   1598 			{
   1599 				syslog(LOG_ERR, "sigaction(SIGALRM): %m");
   1600 				exit(1);
   1601 			}
   1602 		}
   1603 #else
   1604 #ifdef HAVE_SIGVEC
   1605 		{
   1606 			struct sigvec vec;
   1607 
   1608 			vec.sv_handler   = tick;
   1609 			vec.sv_mask      = 0;
   1610 			vec.sv_flags     = 0;
   1611 
   1612 			if (sigvec(SIGALRM, &vec, (struct sigvec *)0) == -1)
   1613 			{
   1614 				syslog(LOG_ERR, "sigvec(SIGALRM): %m");
   1615 				exit(1);
   1616 			}
   1617 		}
   1618 #else
   1619 		(void) signal(SIGALRM, tick);
   1620 #endif
   1621 #endif
   1622 
   1623 #ifdef ITIMER_REAL
   1624 		{
   1625 			struct itimerval it;
   1626 
   1627 			it.it_interval.tv_sec  = 1<<ADJINTERVAL;
   1628 			it.it_interval.tv_usec = 0;
   1629 			it.it_value.tv_sec     = 1<<ADJINTERVAL;
   1630 			it.it_value.tv_usec    = 0;
   1631 
   1632 			if (setitimer(ITIMER_REAL, &it, (struct itimerval *)0) == -1)
   1633 			{
   1634 				syslog(LOG_ERR, "setitimer: %m");
   1635 				exit(1);
   1636 			}
   1637 		}
   1638 #else
   1639 		(void) alarm(1<<ADJINTERVAL);
   1640 #endif
   1641 
   1642 		PRINTF("  DCF77 monitor %s - Copyright (C) 1993-2005 by Frank Kardel\n\n", revision);
   1643 
   1644 		pbuf[60] = '\0';
   1645 		for ( i = 0; i < 60; i++)
   1646 		    pbuf[i] = '.';
   1647 
   1648 		read_drift(drift_file);
   1649 
   1650 		/*
   1651 		 * what time is it now (for interval measurement)
   1652 		 */
   1653 		gettimeofday(&tlast, 0L);
   1654 		i = 0;
   1655 		/*
   1656 		 * loop until input trouble ...
   1657 		 */
   1658 		do
   1659 		{
   1660 			/*
   1661 			 * get an impulse
   1662 			 */
   1663 			while ((rrc = read(fd, &c, 1)) == 1)
   1664 			{
   1665 				gettimeofday(&t, 0L);
   1666 				tt = t;
   1667 				timersub(&t, &tlast);
   1668 
   1669 				if (errs > LINES)
   1670 				{
   1671 					PRINTF("  %s", &"PTB private....RADMLSMin....PHour..PMDay..DayMonthYear....P\n"[offset]);
   1672 					PRINTF("  %s", &"---------------RADMLS1248124P124812P1248121241248112481248P\n"[offset]);
   1673 					errs = 0;
   1674 				}
   1675 
   1676 				/*
   1677 				 * timeout -> possible minute mark -> interpretation
   1678 				 */
   1679 				if (timercmp(&t, &timeout, >))
   1680 				{
   1681 					PRINTF("%c %.*s ", pat[i % (sizeof(pat)-1)], 59 - offset, &pbuf[offset]);
   1682 
   1683 					if ((rtc = cvt_rawdcf((unsigned char *)buf, i, &clock_time)) != CVT_OK)
   1684 					{
   1685 						/*
   1686 						 * this data was bad - well - forget synchronisation for now
   1687 						 */
   1688 						PRINTF("\n");
   1689 						if (sync_state == SYNC)
   1690 						{
   1691 							sync_state = NO_SYNC;
   1692 							syslog(LOG_INFO, "DCF77 reception lost (bad data)");
   1693 						}
   1694 						errs++;
   1695 					}
   1696 					else
   1697 					    if (trace)
   1698 					    {
   1699 						    PRINTF("\r  %.*s ", 59 - offset, &buf[offset]);
   1700 					    }
   1701 
   1702 
   1703 					buf[0] = c;
   1704 
   1705 					/*
   1706 					 * collect first character
   1707 					 */
   1708 					if (((c^0xFF)+1) & (c^0xFF))
   1709 					    pbuf[0] = '?';
   1710 					else
   1711 					    pbuf[0] = type(c) ? '#' : '-';
   1712 
   1713 					for ( i = 1; i < 60; i++)
   1714 					    pbuf[i] = '.';
   1715 
   1716 					i = 0;
   1717 				}
   1718 				else
   1719 				{
   1720 					/*
   1721 					 * collect character
   1722 					 */
   1723 					buf[i] = c;
   1724 
   1725 					/*
   1726 					 * initial guess (usually correct)
   1727 					 */
   1728 					if (((c^0xFF)+1) & (c^0xFF))
   1729 					    pbuf[i] = '?';
   1730 					else
   1731 					    pbuf[i] = type(c) ? '#' : '-';
   1732 
   1733 					PRINTF("%c %.*s ", pat[i % (sizeof(pat)-1)], 59 - offset, &pbuf[offset]);
   1734 				}
   1735 
   1736 				if (i == 0 && rtc == CVT_OK)
   1737 				{
   1738 					/*
   1739 					 * we got a good time code here - try to convert it to
   1740 					 * UTC
   1741 					 */
   1742 					if ((utc_time = dcf_to_unixtime(&clock_time, &rtc)) == -1)
   1743 					{
   1744 						PRINTF("*** BAD CONVERSION\n");
   1745 					}
   1746 
   1747 					if (utc_time != (last_utc_time + 60))
   1748 					{
   1749 						/*
   1750 						 * well, two successive sucessful telegrams are not 60 seconds
   1751 						 * apart
   1752 						 */
   1753 						PRINTF("*** NO MINUTE INC\n");
   1754 						if (sync_state == SYNC)
   1755 						{
   1756 							sync_state = NO_SYNC;
   1757 							syslog(LOG_INFO, "DCF77 reception lost (data mismatch)");
   1758 						}
   1759 						errs++;
   1760 						rtc = CVT_FAIL|CVT_BADTIME|CVT_BADDATE;
   1761 					}
   1762 					else
   1763 					    usecerror = 0;
   1764 
   1765 					last_utc_time = utc_time;
   1766 				}
   1767 
   1768 				if (rtc == CVT_OK)
   1769 				{
   1770 					if (i == 0)
   1771 					{
   1772 						/*
   1773 						 * valid time code - determine offset and
   1774 						 * note regained reception
   1775 						 */
   1776 						last_sync = ticks;
   1777 						if (sync_state == NO_SYNC)
   1778 						{
   1779 							syslog(LOG_INFO, "receiving DCF77");
   1780 						}
   1781 						else
   1782 						{
   1783 							/*
   1784 							 * we had at least one minute SYNC - thus
   1785 							 * last error is valid
   1786 							 */
   1787 							time_offset.tv_sec  = lasterror / 1000000;
   1788 							time_offset.tv_usec = lasterror % 1000000;
   1789 							adjust_clock(&time_offset, drift_file, utc_time);
   1790 						}
   1791 						sync_state = SYNC;
   1792 					}
   1793 
   1794 					time_offset.tv_sec  = utc_time + i;
   1795 					time_offset.tv_usec = 0;
   1796 
   1797 					timeradd(&time_offset, &phase);
   1798 
   1799 					usecerror += (time_offset.tv_sec - tt.tv_sec) * 1000000 + time_offset.tv_usec
   1800 						-tt.tv_usec;
   1801 
   1802 					/*
   1803 					 * output interpreted DCF77 data
   1804 					 */
   1805 					PRINTF(offsets ? "%s, %2ld:%02ld:%02d, %ld.%02ld.%02ld, <%s%s%s%s> (%c%ld.%06lds)" :
   1806 					       "%s, %2ld:%02ld:%02d, %ld.%02ld.%02ld, <%s%s%s%s>",
   1807 					       wday[clock_time.wday],
   1808 					       clock_time.hour, clock_time.minute, i, clock_time.day, clock_time.month,
   1809 					       clock_time.year,
   1810 					       (clock_time.flags & DCFB_CALLBIT) ? "R" : "_",
   1811 					       (clock_time.flags & DCFB_ANNOUNCE) ? "A" : "_",
   1812 					       (clock_time.flags & DCFB_DST) ? "D" : "_",
   1813 					       (clock_time.flags & DCFB_LEAP) ? "L" : "_",
   1814 					       (lasterror < 0) ? '-' : '+', l_abs(lasterror) / 1000000, l_abs(lasterror) % 1000000
   1815 					       );
   1816 
   1817 					if (trace && (i == 0))
   1818 					{
   1819 						PRINTF("\n");
   1820 						errs++;
   1821 					}
   1822 					lasterror = usecerror / (i+1);
   1823 				}
   1824 				else
   1825 				{
   1826 					lasterror = 0; /* we cannot calculate phase errors on bad reception */
   1827 				}
   1828 
   1829 				PRINTF("\r");
   1830 
   1831 				if (i < 60)
   1832 				{
   1833 					i++;
   1834 				}
   1835 
   1836 				tlast = tt;
   1837 
   1838 				if (interactive)
   1839 				    fflush(stdout);
   1840 			}
   1841 		} while ((rrc == -1) && (errno == EINTR));
   1842 
   1843 		/*
   1844 		 * lost IO - sorry guys
   1845 		 */
   1846 		syslog(LOG_ERR, "TERMINATING - cannot read from device %s (%m)", file);
   1847 
   1848 		(void)close(fd);
   1849 	}
   1850 
   1851 	closelog();
   1852 
   1853 	return 0;
   1854 }
   1855 
   1856 /*
   1857  * History:
   1858  *
   1859  * dcfd.c,v
   1860  * Revision 4.18  2005/10/07 22:08:18  kardel
   1861  * make dcfd.c compile on NetBSD 3.99.9 again (configure/sigvec compatibility fix)
   1862  *
   1863  * Revision 4.17.2.1  2005/10/03 19:15:16  kardel
   1864  * work around configure not detecting a missing sigvec compatibility
   1865  * interface on NetBSD 3.99.9 and above
   1866  *
   1867  * Revision 4.17  2005/08/10 10:09:44  kardel
   1868  * output revision information
   1869  *
   1870  * Revision 4.16  2005/08/10 06:33:25  kardel
   1871  * cleanup warnings
   1872  *
   1873  * Revision 4.15  2005/08/10 06:28:45  kardel
   1874  * fix setting of baud rate
   1875  *
   1876  * Revision 4.14  2005/04/16 17:32:10  kardel
   1877  * update copyright
   1878  *
   1879  * Revision 4.13  2004/11/14 15:29:41  kardel
   1880  * support PPSAPI, upgrade Copyright to Berkeley style
   1881  *
   1882  */
   1883