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ntpq.c revision 1.1.1.7
      1  1.1.1.7  christos /*	$NetBSD: ntpq.c,v 1.1.1.7 2015/07/10 13:11:07 christos Exp $	*/
      2  1.1.1.7  christos 
      3      1.1    kardel /*
      4      1.1    kardel  * ntpq - query an NTP server using mode 6 commands
      5      1.1    kardel  */
      6  1.1.1.3  christos #include <config.h>
      7      1.1    kardel #include <stdio.h>
      8      1.1    kardel #include <ctype.h>
      9      1.1    kardel #include <signal.h>
     10      1.1    kardel #include <setjmp.h>
     11      1.1    kardel #include <sys/types.h>
     12      1.1    kardel #include <sys/time.h>
     13  1.1.1.3  christos #ifdef HAVE_UNISTD_H
     14  1.1.1.3  christos # include <unistd.h>
     15  1.1.1.3  christos #endif
     16  1.1.1.3  christos #ifdef HAVE_FCNTL_H
     17  1.1.1.3  christos # include <fcntl.h>
     18  1.1.1.3  christos #endif
     19  1.1.1.3  christos #ifdef SYS_WINNT
     20  1.1.1.3  christos # include <mswsock.h>
     21  1.1.1.3  christos #endif
     22  1.1.1.3  christos #include <isc/net.h>
     23  1.1.1.3  christos #include <isc/result.h>
     24      1.1    kardel 
     25      1.1    kardel #include "ntpq.h"
     26  1.1.1.6  christos #include "ntp_assert.h"
     27  1.1.1.3  christos #include "ntp_stdlib.h"
     28      1.1    kardel #include "ntp_unixtime.h"
     29      1.1    kardel #include "ntp_calendar.h"
     30      1.1    kardel #include "ntp_select.h"
     31      1.1    kardel #include "ntp_assert.h"
     32  1.1.1.3  christos #include "lib_strbuf.h"
     33      1.1    kardel #include "ntp_lineedit.h"
     34      1.1    kardel #include "ntp_debug.h"
     35  1.1.1.3  christos #ifdef OPENSSL
     36  1.1.1.3  christos #include "openssl/evp.h"
     37  1.1.1.3  christos #include "openssl/objects.h"
     38  1.1.1.6  christos #include "openssl/err.h"
     39  1.1.1.3  christos #endif
     40      1.1    kardel #include <ssl_applink.c>
     41      1.1    kardel 
     42  1.1.1.2    kardel #include "ntp_libopts.h"
     43      1.1    kardel #include "ntpq-opts.h"
     44      1.1    kardel 
     45  1.1.1.3  christos #ifdef SYS_VXWORKS		/* vxWorks needs mode flag -casey*/
     46      1.1    kardel # define open(name, flags)   open(name, flags, 0777)
     47      1.1    kardel # define SERVER_PORT_NUM     123
     48      1.1    kardel #endif
     49      1.1    kardel 
     50      1.1    kardel /* we use COMMAND as an autogen keyword */
     51      1.1    kardel #ifdef COMMAND
     52      1.1    kardel # undef COMMAND
     53      1.1    kardel #endif
     54      1.1    kardel 
     55      1.1    kardel /*
     56      1.1    kardel  * Because we potentially understand a lot of commands we will run
     57      1.1    kardel  * interactive if connected to a terminal.
     58      1.1    kardel  */
     59      1.1    kardel int interactive = 0;		/* set to 1 when we should prompt */
     60      1.1    kardel const char *prompt = "ntpq> ";	/* prompt to ask him about */
     61      1.1    kardel 
     62      1.1    kardel /*
     63      1.1    kardel  * use old readvars behavior?  --old-rv processing in ntpq resets
     64      1.1    kardel  * this value based on the presence or absence of --old-rv.  It is
     65      1.1    kardel  * initialized to 1 here to maintain backward compatibility with
     66      1.1    kardel  * libntpq clients such as ntpsnmpd, which are free to reset it as
     67      1.1    kardel  * desired.
     68      1.1    kardel  */
     69      1.1    kardel int	old_rv = 1;
     70      1.1    kardel 
     71      1.1    kardel 
     72      1.1    kardel /*
     73      1.1    kardel  * for get_systime()
     74      1.1    kardel  */
     75      1.1    kardel s_char	sys_precision;		/* local clock precision (log2 s) */
     76      1.1    kardel 
     77      1.1    kardel /*
     78      1.1    kardel  * Keyid used for authenticated requests.  Obtained on the fly.
     79      1.1    kardel  */
     80      1.1    kardel u_long info_auth_keyid = 0;
     81      1.1    kardel 
     82      1.1    kardel static	int	info_auth_keytype = NID_md5;	/* MD5 */
     83      1.1    kardel static	size_t	info_auth_hashlen = 16;		/* MD5 */
     84      1.1    kardel u_long	current_time;		/* needed by authkeys; not used */
     85      1.1    kardel 
     86      1.1    kardel /*
     87      1.1    kardel  * Flag which indicates we should always send authenticated requests
     88      1.1    kardel  */
     89      1.1    kardel int always_auth = 0;
     90      1.1    kardel 
     91      1.1    kardel /*
     92      1.1    kardel  * Flag which indicates raw mode output.
     93      1.1    kardel  */
     94      1.1    kardel int rawmode = 0;
     95      1.1    kardel 
     96      1.1    kardel /*
     97      1.1    kardel  * Packet version number we use
     98      1.1    kardel  */
     99      1.1    kardel u_char pktversion = NTP_OLDVERSION + 1;
    100      1.1    kardel 
    101      1.1    kardel /*
    102      1.1    kardel  * Don't jump if no set jmp.
    103      1.1    kardel  */
    104      1.1    kardel volatile int jump = 0;
    105      1.1    kardel 
    106      1.1    kardel /*
    107      1.1    kardel  * Format values
    108      1.1    kardel  */
    109      1.1    kardel #define	PADDING	0
    110  1.1.1.3  christos #define	HA	1	/* host address */
    111  1.1.1.3  christos #define	NA	2	/* network address */
    112  1.1.1.3  christos #define	LP	3	/* leap (print in binary) */
    113  1.1.1.3  christos #define	RF	4	/* refid (sometimes string, sometimes not) */
    114  1.1.1.3  christos #define	AR	5	/* array of times */
    115  1.1.1.3  christos #define FX	6	/* test flags */
    116  1.1.1.3  christos #define TS	7	/* l_fp timestamp in hex */
    117  1.1.1.3  christos #define	OC	8	/* integer, print in octal */
    118      1.1    kardel #define	EOV	255	/* end of table */
    119      1.1    kardel 
    120      1.1    kardel /*
    121  1.1.1.3  christos  * For the most part ntpq simply displays what ntpd provides in the
    122  1.1.1.3  christos  * mostly plain-text mode 6 responses.  A few variable names are by
    123  1.1.1.3  christos  * default "cooked" to provide more human-friendly output.
    124  1.1.1.3  christos  */
    125  1.1.1.3  christos const var_format cookedvars[] = {
    126  1.1.1.3  christos 	{ "leap",		LP },
    127  1.1.1.3  christos 	{ "reach",		OC },
    128  1.1.1.3  christos 	{ "refid",		RF },
    129  1.1.1.3  christos 	{ "reftime",		TS },
    130  1.1.1.3  christos 	{ "clock",		TS },
    131  1.1.1.3  christos 	{ "org",		TS },
    132  1.1.1.3  christos 	{ "rec",		TS },
    133  1.1.1.3  christos 	{ "xmt",		TS },
    134  1.1.1.3  christos 	{ "flash",		FX },
    135  1.1.1.3  christos 	{ "srcadr",		HA },
    136  1.1.1.3  christos 	{ "peeradr",		HA },	/* compat with others */
    137  1.1.1.3  christos 	{ "dstadr",		NA },
    138  1.1.1.3  christos 	{ "filtdelay",		AR },
    139  1.1.1.3  christos 	{ "filtoffset",		AR },
    140  1.1.1.3  christos 	{ "filtdisp",		AR },
    141  1.1.1.3  christos 	{ "filterror",		AR },	/* compat with others */
    142      1.1    kardel };
    143      1.1    kardel 
    144      1.1    kardel 
    145      1.1    kardel 
    146      1.1    kardel /*
    147      1.1    kardel  * flasher bits
    148      1.1    kardel  */
    149      1.1    kardel static const char *tstflagnames[] = {
    150      1.1    kardel 	"pkt_dup",		/* TEST1 */
    151      1.1    kardel 	"pkt_bogus",		/* TEST2 */
    152      1.1    kardel 	"pkt_unsync",		/* TEST3 */
    153      1.1    kardel 	"pkt_denied",		/* TEST4 */
    154      1.1    kardel 	"pkt_auth",		/* TEST5 */
    155      1.1    kardel 	"pkt_stratum",		/* TEST6 */
    156      1.1    kardel 	"pkt_header",		/* TEST7 */
    157      1.1    kardel 	"pkt_autokey",		/* TEST8 */
    158      1.1    kardel 	"pkt_crypto",		/* TEST9 */
    159      1.1    kardel 	"peer_stratum",		/* TEST10 */
    160      1.1    kardel 	"peer_dist",		/* TEST11 */
    161      1.1    kardel 	"peer_loop",		/* TEST12 */
    162      1.1    kardel 	"peer_unreach"		/* TEST13 */
    163      1.1    kardel };
    164      1.1    kardel 
    165      1.1    kardel 
    166      1.1    kardel int		ntpqmain	(int,	char **);
    167      1.1    kardel /*
    168      1.1    kardel  * Built in command handler declarations
    169      1.1    kardel  */
    170  1.1.1.3  christos static	int	openhost	(const char *, int);
    171  1.1.1.3  christos static	void	dump_hex_printable(const void *, size_t);
    172      1.1    kardel static	int	sendpkt		(void *, size_t);
    173  1.1.1.2    kardel static	int	getresponse	(int, int, u_short *, int *, const char **, int);
    174  1.1.1.3  christos static	int	sendrequest	(int, associd_t, int, int, const char *);
    175      1.1    kardel static	char *	tstflags	(u_long);
    176      1.1    kardel #ifndef BUILD_AS_LIB
    177      1.1    kardel static	void	getcmds		(void);
    178      1.1    kardel #ifndef SYS_WINNT
    179      1.1    kardel static	RETSIGTYPE abortcmd	(int);
    180      1.1    kardel #endif	/* SYS_WINNT */
    181      1.1    kardel static	void	docmd		(const char *);
    182      1.1    kardel static	void	tokenize	(const char *, char **, int *);
    183  1.1.1.3  christos static	int	getarg		(const char *, int, arg_v *);
    184      1.1    kardel #endif	/* BUILD_AS_LIB */
    185  1.1.1.3  christos static	int	findcmd		(const char *, struct xcmd *,
    186  1.1.1.3  christos 				 struct xcmd *, struct xcmd **);
    187      1.1    kardel static	int	rtdatetolfp	(char *, l_fp *);
    188      1.1    kardel static	int	decodearr	(char *, int *, l_fp *);
    189      1.1    kardel static	void	help		(struct parse *, FILE *);
    190      1.1    kardel static	int	helpsort	(const void *, const void *);
    191      1.1    kardel static	void	printusage	(struct xcmd *, FILE *);
    192      1.1    kardel static	void	timeout		(struct parse *, FILE *);
    193      1.1    kardel static	void	auth_delay	(struct parse *, FILE *);
    194      1.1    kardel static	void	host		(struct parse *, FILE *);
    195      1.1    kardel static	void	ntp_poll	(struct parse *, FILE *);
    196      1.1    kardel static	void	keyid		(struct parse *, FILE *);
    197      1.1    kardel static	void	keytype		(struct parse *, FILE *);
    198      1.1    kardel static	void	passwd		(struct parse *, FILE *);
    199      1.1    kardel static	void	hostnames	(struct parse *, FILE *);
    200      1.1    kardel static	void	setdebug	(struct parse *, FILE *);
    201      1.1    kardel static	void	quit		(struct parse *, FILE *);
    202      1.1    kardel static	void	version		(struct parse *, FILE *);
    203      1.1    kardel static	void	raw		(struct parse *, FILE *);
    204      1.1    kardel static	void	cooked		(struct parse *, FILE *);
    205      1.1    kardel static	void	authenticate	(struct parse *, FILE *);
    206      1.1    kardel static	void	ntpversion	(struct parse *, FILE *);
    207  1.1.1.5  christos static	void	warning		(const char *, ...)
    208  1.1.1.5  christos     __attribute__((__format__(__printf__, 1, 2)));
    209  1.1.1.5  christos static	void	error		(const char *, ...)
    210  1.1.1.5  christos     __attribute__((__format__(__printf__, 1, 2)));
    211      1.1    kardel static	u_long	getkeyid	(const char *);
    212      1.1    kardel static	void	atoascii	(const char *, size_t, char *, size_t);
    213  1.1.1.2    kardel static	void	cookedprint	(int, int, const char *, int, int, FILE *);
    214  1.1.1.2    kardel static	void	rawprint	(int, int, const char *, int, int, FILE *);
    215      1.1    kardel static	void	startoutput	(void);
    216  1.1.1.3  christos static	void	output		(FILE *, const char *, const char *);
    217      1.1    kardel static	void	endoutput	(FILE *);
    218      1.1    kardel static	void	outputarr	(FILE *, char *, int, l_fp *);
    219      1.1    kardel static	int	assoccmp	(const void *, const void *);
    220  1.1.1.3  christos 	u_short	varfmt		(const char *);
    221  1.1.1.3  christos 
    222      1.1    kardel void	ntpq_custom_opt_handler	(tOptions *, tOptDesc *);
    223      1.1    kardel 
    224  1.1.1.6  christos #ifdef OPENSSL
    225  1.1.1.6  christos # ifdef HAVE_EVP_MD_DO_ALL_SORTED
    226  1.1.1.6  christos static void list_md_fn(const EVP_MD *m, const char *from,
    227  1.1.1.6  christos 		       const char *to, void *arg );
    228  1.1.1.6  christos # endif
    229  1.1.1.6  christos #endif
    230  1.1.1.6  christos static char *list_digest_names(void);
    231      1.1    kardel 
    232      1.1    kardel /*
    233      1.1    kardel  * Built-in commands we understand
    234      1.1    kardel  */
    235      1.1    kardel struct xcmd builtins[] = {
    236      1.1    kardel 	{ "?",		help,		{  OPT|NTP_STR, NO, NO, NO },
    237      1.1    kardel 	  { "command", "", "", "" },
    238      1.1    kardel 	  "tell the use and syntax of commands" },
    239      1.1    kardel 	{ "help",	help,		{  OPT|NTP_STR, NO, NO, NO },
    240      1.1    kardel 	  { "command", "", "", "" },
    241      1.1    kardel 	  "tell the use and syntax of commands" },
    242      1.1    kardel 	{ "timeout",	timeout,	{ OPT|NTP_UINT, NO, NO, NO },
    243      1.1    kardel 	  { "msec", "", "", "" },
    244      1.1    kardel 	  "set the primary receive time out" },
    245      1.1    kardel 	{ "delay",	auth_delay,	{ OPT|NTP_INT, NO, NO, NO },
    246      1.1    kardel 	  { "msec", "", "", "" },
    247      1.1    kardel 	  "set the delay added to encryption time stamps" },
    248      1.1    kardel 	{ "host",	host,		{ OPT|NTP_STR, OPT|NTP_STR, NO, NO },
    249      1.1    kardel 	  { "-4|-6", "hostname", "", "" },
    250      1.1    kardel 	  "specify the host whose NTP server we talk to" },
    251      1.1    kardel 	{ "poll",	ntp_poll,	{ OPT|NTP_UINT, OPT|NTP_STR, NO, NO },
    252      1.1    kardel 	  { "n", "verbose", "", "" },
    253      1.1    kardel 	  "poll an NTP server in client mode `n' times" },
    254  1.1.1.3  christos 	{ "passwd",	passwd,		{ OPT|NTP_STR, NO, NO, NO },
    255      1.1    kardel 	  { "", "", "", "" },
    256      1.1    kardel 	  "specify a password to use for authenticated requests"},
    257      1.1    kardel 	{ "hostnames",	hostnames,	{ OPT|NTP_STR, NO, NO, NO },
    258      1.1    kardel 	  { "yes|no", "", "", "" },
    259      1.1    kardel 	  "specify whether hostnames or net numbers are printed"},
    260      1.1    kardel 	{ "debug",	setdebug,	{ OPT|NTP_STR, NO, NO, NO },
    261      1.1    kardel 	  { "no|more|less", "", "", "" },
    262      1.1    kardel 	  "set/change debugging level" },
    263      1.1    kardel 	{ "quit",	quit,		{ NO, NO, NO, NO },
    264      1.1    kardel 	  { "", "", "", "" },
    265      1.1    kardel 	  "exit ntpq" },
    266      1.1    kardel 	{ "exit",	quit,		{ NO, NO, NO, NO },
    267      1.1    kardel 	  { "", "", "", "" },
    268      1.1    kardel 	  "exit ntpq" },
    269      1.1    kardel 	{ "keyid",	keyid,		{ OPT|NTP_UINT, NO, NO, NO },
    270      1.1    kardel 	  { "key#", "", "", "" },
    271      1.1    kardel 	  "set keyid to use for authenticated requests" },
    272      1.1    kardel 	{ "version",	version,	{ NO, NO, NO, NO },
    273      1.1    kardel 	  { "", "", "", "" },
    274      1.1    kardel 	  "print version number" },
    275      1.1    kardel 	{ "raw",	raw,		{ NO, NO, NO, NO },
    276      1.1    kardel 	  { "", "", "", "" },
    277      1.1    kardel 	  "do raw mode variable output" },
    278      1.1    kardel 	{ "cooked",	cooked,		{ NO, NO, NO, NO },
    279      1.1    kardel 	  { "", "", "", "" },
    280      1.1    kardel 	  "do cooked mode variable output" },
    281      1.1    kardel 	{ "authenticate", authenticate,	{ OPT|NTP_STR, NO, NO, NO },
    282      1.1    kardel 	  { "yes|no", "", "", "" },
    283      1.1    kardel 	  "always authenticate requests to this server" },
    284      1.1    kardel 	{ "ntpversion",	ntpversion,	{ OPT|NTP_UINT, NO, NO, NO },
    285      1.1    kardel 	  { "version number", "", "", "" },
    286      1.1    kardel 	  "set the NTP version number to use for requests" },
    287      1.1    kardel 	{ "keytype",	keytype,	{ OPT|NTP_STR, NO, NO, NO },
    288  1.1.1.6  christos 	  { "key type %s", "", "", "" },
    289  1.1.1.6  christos 	  NULL },
    290      1.1    kardel 	{ 0,		0,		{ NO, NO, NO, NO },
    291      1.1    kardel 	  { "", "", "", "" }, "" }
    292      1.1    kardel };
    293      1.1    kardel 
    294      1.1    kardel 
    295      1.1    kardel /*
    296      1.1    kardel  * Default values we use.
    297      1.1    kardel  */
    298      1.1    kardel #define	DEFHOST		"localhost"	/* default host name */
    299  1.1.1.3  christos #define	DEFTIMEOUT	5		/* wait 5 seconds for 1st pkt */
    300  1.1.1.3  christos #define	DEFSTIMEOUT	3		/* and 3 more for each additional */
    301  1.1.1.3  christos /*
    302  1.1.1.3  christos  * Requests are automatically retried once, so total timeout with no
    303  1.1.1.3  christos  * response is a bit over 2 * DEFTIMEOUT, or 10 seconds.  At the other
    304  1.1.1.3  christos  * extreme, a request eliciting 32 packets of responses each for some
    305  1.1.1.3  christos  * reason nearly DEFSTIMEOUT seconds after the prior in that series,
    306  1.1.1.3  christos  * with a single packet dropped, would take around 32 * DEFSTIMEOUT, or
    307  1.1.1.3  christos  * 93 seconds to fail each of two times, or 186 seconds.
    308  1.1.1.3  christos  * Some commands involve a series of requests, such as "peers" and
    309  1.1.1.3  christos  * "mrulist", so the cumulative timeouts are even longer for those.
    310  1.1.1.3  christos  */
    311      1.1    kardel #define	DEFDELAY	0x51EB852	/* 20 milliseconds, l_fp fraction */
    312      1.1    kardel #define	LENHOSTNAME	256		/* host name is 256 characters long */
    313      1.1    kardel #define	MAXCMDS		100		/* maximum commands on cmd line */
    314      1.1    kardel #define	MAXHOSTS	200		/* maximum hosts on cmd line */
    315      1.1    kardel #define	MAXLINE		512		/* maximum line length */
    316      1.1    kardel #define	MAXTOKENS	(1+MAXARGS+2)	/* maximum number of usable tokens */
    317      1.1    kardel #define	MAXVARLEN	256		/* maximum length of a variable name */
    318  1.1.1.3  christos #define	MAXVALLEN	2048		/* maximum length of a variable value */
    319      1.1    kardel #define	MAXOUTLINE	72		/* maximum length of an output line */
    320      1.1    kardel #define SCREENWIDTH	76		/* nominal screen width in columns */
    321      1.1    kardel 
    322      1.1    kardel /*
    323      1.1    kardel  * Some variables used and manipulated locally
    324      1.1    kardel  */
    325      1.1    kardel struct sock_timeval tvout = { DEFTIMEOUT, 0 };	/* time out for reads */
    326      1.1    kardel struct sock_timeval tvsout = { DEFSTIMEOUT, 0 };/* secondary time out */
    327      1.1    kardel l_fp delay_time;				/* delay time */
    328      1.1    kardel char currenthost[LENHOSTNAME];			/* current host name */
    329  1.1.1.2    kardel int currenthostisnum;				/* is prior text from IP? */
    330  1.1.1.5  christos struct sockaddr_in hostaddr;			/* host address */
    331      1.1    kardel int showhostnames = 1;				/* show host names by default */
    332  1.1.1.4  christos int wideremote = 0;				/* show wide remote names? */
    333      1.1    kardel 
    334      1.1    kardel int ai_fam_templ;				/* address family */
    335      1.1    kardel int ai_fam_default;				/* default address family */
    336      1.1    kardel SOCKET sockfd;					/* fd socket is opened on */
    337      1.1    kardel int havehost = 0;				/* set to 1 when host open */
    338      1.1    kardel int s_port = 0;
    339      1.1    kardel struct servent *server_entry = NULL;		/* server entry for ntp */
    340      1.1    kardel 
    341      1.1    kardel 
    342      1.1    kardel /*
    343      1.1    kardel  * Sequence number used for requests.  It is incremented before
    344      1.1    kardel  * it is used.
    345      1.1    kardel  */
    346      1.1    kardel u_short sequence;
    347      1.1    kardel 
    348      1.1    kardel /*
    349      1.1    kardel  * Holds data returned from queries.  Declare buffer long to be sure of
    350      1.1    kardel  * alignment.
    351      1.1    kardel  */
    352      1.1    kardel #define	DATASIZE	(MAXFRAGS*480)	/* maximum amount of data */
    353      1.1    kardel long pktdata[DATASIZE/sizeof(long)];
    354      1.1    kardel 
    355      1.1    kardel /*
    356  1.1.1.3  christos  * assoc_cache[] is a dynamic array which allows references to
    357  1.1.1.3  christos  * associations using &1 ... &N for n associations, avoiding manual
    358  1.1.1.3  christos  * lookup of the current association IDs for a given ntpd.  It also
    359  1.1.1.3  christos  * caches the status word for each association, retrieved incidentally.
    360  1.1.1.3  christos  */
    361  1.1.1.3  christos struct association *	assoc_cache;
    362  1.1.1.3  christos u_int assoc_cache_slots;/* count of allocated array entries */
    363  1.1.1.3  christos u_int numassoc;		/* number of cached associations */
    364      1.1    kardel 
    365      1.1    kardel /*
    366      1.1    kardel  * For commands typed on the command line (with the -c option)
    367      1.1    kardel  */
    368      1.1    kardel int numcmds = 0;
    369      1.1    kardel const char *ccmds[MAXCMDS];
    370      1.1    kardel #define	ADDCMD(cp)	if (numcmds < MAXCMDS) ccmds[numcmds++] = (cp)
    371      1.1    kardel 
    372      1.1    kardel /*
    373      1.1    kardel  * When multiple hosts are specified.
    374      1.1    kardel  */
    375      1.1    kardel 
    376  1.1.1.3  christos u_int numhosts;
    377  1.1.1.3  christos 
    378  1.1.1.3  christos chost chosts[MAXHOSTS];
    379  1.1.1.3  christos #define	ADDHOST(cp)						\
    380  1.1.1.3  christos 	do {							\
    381  1.1.1.3  christos 		if (numhosts < MAXHOSTS) {			\
    382  1.1.1.3  christos 			chosts[numhosts].name = (cp);		\
    383  1.1.1.3  christos 			chosts[numhosts].fam = ai_fam_templ;	\
    384  1.1.1.3  christos 			numhosts++;				\
    385  1.1.1.3  christos 		}						\
    386  1.1.1.3  christos 	} while (0)
    387      1.1    kardel 
    388      1.1    kardel /*
    389      1.1    kardel  * Macro definitions we use
    390      1.1    kardel  */
    391      1.1    kardel #define	ISSPACE(c)	((c) == ' ' || (c) == '\t')
    392      1.1    kardel #define	ISEOL(c)	((c) == '\n' || (c) == '\r' || (c) == '\0')
    393      1.1    kardel #define	STREQ(a, b)	(*(a) == *(b) && strcmp((a), (b)) == 0)
    394      1.1    kardel 
    395      1.1    kardel /*
    396      1.1    kardel  * Jump buffer for longjumping back to the command level
    397      1.1    kardel  */
    398      1.1    kardel jmp_buf interrupt_buf;
    399      1.1    kardel 
    400      1.1    kardel /*
    401      1.1    kardel  * Points at file being currently printed into
    402      1.1    kardel  */
    403      1.1    kardel FILE *current_output;
    404      1.1    kardel 
    405      1.1    kardel /*
    406      1.1    kardel  * Command table imported from ntpdc_ops.c
    407      1.1    kardel  */
    408      1.1    kardel extern struct xcmd opcmds[];
    409      1.1    kardel 
    410      1.1    kardel char *progname;
    411      1.1    kardel 
    412      1.1    kardel #ifdef NO_MAIN_ALLOWED
    413      1.1    kardel #ifndef BUILD_AS_LIB
    414      1.1    kardel CALL(ntpq,"ntpq",ntpqmain);
    415      1.1    kardel 
    416      1.1    kardel void clear_globals(void)
    417      1.1    kardel {
    418      1.1    kardel 	extern int ntp_optind;
    419      1.1    kardel 	showhostnames = 0;	/* don'tshow host names by default */
    420      1.1    kardel 	ntp_optind = 0;
    421      1.1    kardel 	server_entry = NULL;	/* server entry for ntp */
    422      1.1    kardel 	havehost = 0;		/* set to 1 when host open */
    423      1.1    kardel 	numassoc = 0;		/* number of cached associations */
    424      1.1    kardel 	numcmds = 0;
    425      1.1    kardel 	numhosts = 0;
    426      1.1    kardel }
    427      1.1    kardel #endif /* !BUILD_AS_LIB */
    428      1.1    kardel #endif /* NO_MAIN_ALLOWED */
    429      1.1    kardel 
    430      1.1    kardel /*
    431      1.1    kardel  * main - parse arguments and handle options
    432      1.1    kardel  */
    433      1.1    kardel #ifndef NO_MAIN_ALLOWED
    434      1.1    kardel int
    435      1.1    kardel main(
    436      1.1    kardel 	int argc,
    437      1.1    kardel 	char *argv[]
    438      1.1    kardel 	)
    439      1.1    kardel {
    440      1.1    kardel 	return ntpqmain(argc, argv);
    441      1.1    kardel }
    442      1.1    kardel #endif
    443      1.1    kardel 
    444      1.1    kardel #ifndef BUILD_AS_LIB
    445      1.1    kardel int
    446      1.1    kardel ntpqmain(
    447      1.1    kardel 	int argc,
    448      1.1    kardel 	char *argv[]
    449      1.1    kardel 	)
    450      1.1    kardel {
    451  1.1.1.3  christos 	u_int ihost;
    452  1.1.1.3  christos 	int icmd;
    453  1.1.1.3  christos 
    454      1.1    kardel 
    455      1.1    kardel #ifdef SYS_VXWORKS
    456      1.1    kardel 	clear_globals();
    457      1.1    kardel 	taskPrioritySet(taskIdSelf(), 100 );
    458      1.1    kardel #endif
    459      1.1    kardel 
    460      1.1    kardel 	delay_time.l_ui = 0;
    461      1.1    kardel 	delay_time.l_uf = DEFDELAY;
    462      1.1    kardel 
    463      1.1    kardel 	init_lib();	/* sets up ipv4_works, ipv6_works */
    464      1.1    kardel 	ssl_applink();
    465  1.1.1.3  christos 	init_auth();
    466      1.1    kardel 
    467      1.1    kardel 	/* Check to see if we have IPv6. Otherwise default to IPv4 */
    468      1.1    kardel 	if (!ipv6_works)
    469      1.1    kardel 		ai_fam_default = AF_INET;
    470      1.1    kardel 
    471  1.1.1.6  christos 	/* Fixup keytype's help based on available digest names */
    472  1.1.1.6  christos 
    473  1.1.1.6  christos 	{
    474  1.1.1.6  christos 	    char *list;
    475  1.1.1.6  christos 	    char *msg, *fmt;
    476  1.1.1.6  christos 
    477  1.1.1.6  christos 	    list = list_digest_names();
    478  1.1.1.6  christos 	    for (icmd = 0; icmd < sizeof(builtins)/sizeof(builtins[0]); icmd++) {
    479  1.1.1.6  christos 		if (strcmp("keytype", builtins[icmd].keyword) == 0)
    480  1.1.1.6  christos 		    break;
    481  1.1.1.6  christos 	    }
    482  1.1.1.6  christos 
    483  1.1.1.6  christos 	    /* CID: 1295478 */
    484  1.1.1.6  christos 	    /* This should only "trip" if "keytype" is removed from builtins */
    485  1.1.1.6  christos 	    INSIST(icmd < sizeof(builtins)/sizeof(builtins[0]));
    486  1.1.1.6  christos 
    487  1.1.1.6  christos #ifdef OPENSSL
    488  1.1.1.6  christos 	    builtins[icmd].desc[0] = "digest-name";
    489  1.1.1.6  christos 	    fmt = "set key type to use for authenticated requests, one of:%s";
    490  1.1.1.6  christos #else
    491  1.1.1.6  christos 	    builtins[icmd].desc[0] = "md5";
    492  1.1.1.6  christos 	    fmt = "set key type to use for authenticated requests (%s)";
    493  1.1.1.6  christos #endif
    494  1.1.1.6  christos 	    msg = malloc(strlen(fmt) + strlen(list) - strlen("%s") +1);
    495  1.1.1.6  christos 	    sprintf(msg, fmt, list);
    496  1.1.1.6  christos 	    builtins[icmd].comment = msg;
    497  1.1.1.6  christos 	    free(list);
    498  1.1.1.6  christos 	}
    499  1.1.1.6  christos 
    500      1.1    kardel 	progname = argv[0];
    501      1.1    kardel 
    502      1.1    kardel 	{
    503  1.1.1.2    kardel 		int optct = ntpOptionProcess(&ntpqOptions, argc, argv);
    504      1.1    kardel 		argc -= optct;
    505      1.1    kardel 		argv += optct;
    506      1.1    kardel 	}
    507      1.1    kardel 
    508      1.1    kardel 	/*
    509      1.1    kardel 	 * Process options other than -c and -p, which are specially
    510      1.1    kardel 	 * handled by ntpq_custom_opt_handler().
    511      1.1    kardel 	 */
    512      1.1    kardel 
    513  1.1.1.3  christos 	debug = OPT_VALUE_SET_DEBUG_LEVEL;
    514      1.1    kardel 
    515      1.1    kardel 	if (HAVE_OPT(IPV4))
    516      1.1    kardel 		ai_fam_templ = AF_INET;
    517      1.1    kardel 	else if (HAVE_OPT(IPV6))
    518      1.1    kardel 		ai_fam_templ = AF_INET6;
    519      1.1    kardel 	else
    520      1.1    kardel 		ai_fam_templ = ai_fam_default;
    521      1.1    kardel 
    522      1.1    kardel 	if (HAVE_OPT(INTERACTIVE))
    523      1.1    kardel 		interactive = 1;
    524      1.1    kardel 
    525      1.1    kardel 	if (HAVE_OPT(NUMERIC))
    526      1.1    kardel 		showhostnames = 0;
    527      1.1    kardel 
    528  1.1.1.4  christos 	if (HAVE_OPT(WIDE))
    529  1.1.1.4  christos 		wideremote = 1;
    530  1.1.1.4  christos 
    531      1.1    kardel 	old_rv = HAVE_OPT(OLD_RV);
    532      1.1    kardel 
    533  1.1.1.3  christos 	if (0 == argc) {
    534      1.1    kardel 		ADDHOST(DEFHOST);
    535      1.1    kardel 	} else {
    536  1.1.1.3  christos 		for (ihost = 0; ihost < (u_int)argc; ihost++) {
    537  1.1.1.3  christos 			if ('-' == *argv[ihost]) {
    538  1.1.1.3  christos 				//
    539  1.1.1.3  christos 				// If I really cared I'd also check:
    540  1.1.1.3  christos 				// 0 == argv[ihost][2]
    541  1.1.1.3  christos 				//
    542  1.1.1.3  christos 				// and there are other cases as well...
    543  1.1.1.3  christos 				//
    544  1.1.1.3  christos 				if ('4' == argv[ihost][1]) {
    545  1.1.1.3  christos 					ai_fam_templ = AF_INET;
    546  1.1.1.3  christos 					continue;
    547  1.1.1.3  christos 				} else if ('6' == argv[ihost][1]) {
    548  1.1.1.3  christos 					ai_fam_templ = AF_INET6;
    549  1.1.1.3  christos 					continue;
    550  1.1.1.3  christos 				} else {
    551  1.1.1.3  christos 					// XXX Throw a usage error
    552  1.1.1.3  christos 				}
    553  1.1.1.3  christos 			}
    554  1.1.1.3  christos 			ADDHOST(argv[ihost]);
    555  1.1.1.3  christos 		}
    556      1.1    kardel 	}
    557      1.1    kardel 
    558      1.1    kardel 	if (numcmds == 0 && interactive == 0
    559      1.1    kardel 	    && isatty(fileno(stdin)) && isatty(fileno(stderr))) {
    560      1.1    kardel 		interactive = 1;
    561      1.1    kardel 	}
    562      1.1    kardel 
    563      1.1    kardel #ifndef SYS_WINNT /* Under NT cannot handle SIGINT, WIN32 spawns a handler */
    564      1.1    kardel 	if (interactive)
    565      1.1    kardel 	    (void) signal_no_reset(SIGINT, abortcmd);
    566      1.1    kardel #endif /* SYS_WINNT */
    567      1.1    kardel 
    568      1.1    kardel 	if (numcmds == 0) {
    569  1.1.1.3  christos 		(void) openhost(chosts[0].name, chosts[0].fam);
    570      1.1    kardel 		getcmds();
    571      1.1    kardel 	} else {
    572      1.1    kardel 		for (ihost = 0; ihost < numhosts; ihost++) {
    573  1.1.1.3  christos 			if (openhost(chosts[ihost].name, chosts[ihost].fam))
    574      1.1    kardel 				for (icmd = 0; icmd < numcmds; icmd++)
    575      1.1    kardel 					docmd(ccmds[icmd]);
    576      1.1    kardel 		}
    577      1.1    kardel 	}
    578      1.1    kardel #ifdef SYS_WINNT
    579      1.1    kardel 	WSACleanup();
    580      1.1    kardel #endif /* SYS_WINNT */
    581      1.1    kardel 	return 0;
    582      1.1    kardel }
    583      1.1    kardel #endif /* !BUILD_AS_LIB */
    584      1.1    kardel 
    585      1.1    kardel /*
    586      1.1    kardel  * openhost - open a socket to a host
    587      1.1    kardel  */
    588      1.1    kardel static	int
    589      1.1    kardel openhost(
    590  1.1.1.3  christos 	const char *hname,
    591  1.1.1.3  christos 	int	    fam
    592      1.1    kardel 	)
    593      1.1    kardel {
    594  1.1.1.3  christos 	const char svc[] = "ntp";
    595      1.1    kardel 	char temphost[LENHOSTNAME];
    596      1.1    kardel 	int a_info, i;
    597  1.1.1.3  christos 	struct addrinfo hints, *ai;
    598  1.1.1.3  christos 	sockaddr_u addr;
    599  1.1.1.3  christos 	size_t octets;
    600      1.1    kardel 	register const char *cp;
    601      1.1    kardel 	char name[LENHOSTNAME];
    602      1.1    kardel 
    603      1.1    kardel 	/*
    604      1.1    kardel 	 * We need to get by the [] if they were entered
    605      1.1    kardel 	 */
    606  1.1.1.3  christos 
    607      1.1    kardel 	cp = hname;
    608  1.1.1.3  christos 
    609      1.1    kardel 	if (*cp == '[') {
    610      1.1    kardel 		cp++;
    611      1.1    kardel 		for (i = 0; *cp && *cp != ']'; cp++, i++)
    612      1.1    kardel 			name[i] = *cp;
    613      1.1    kardel 		if (*cp == ']') {
    614      1.1    kardel 			name[i] = '\0';
    615      1.1    kardel 			hname = name;
    616      1.1    kardel 		} else {
    617      1.1    kardel 			return 0;
    618      1.1    kardel 		}
    619      1.1    kardel 	}
    620      1.1    kardel 
    621      1.1    kardel 	/*
    622      1.1    kardel 	 * First try to resolve it as an ip address and if that fails,
    623      1.1    kardel 	 * do a fullblown (dns) lookup. That way we only use the dns
    624      1.1    kardel 	 * when it is needed and work around some implementations that
    625      1.1    kardel 	 * will return an "IPv4-mapped IPv6 address" address if you
    626      1.1    kardel 	 * give it an IPv4 address to lookup.
    627      1.1    kardel 	 */
    628  1.1.1.2    kardel 	ZERO(hints);
    629  1.1.1.3  christos 	hints.ai_family = fam;
    630      1.1    kardel 	hints.ai_protocol = IPPROTO_UDP;
    631      1.1    kardel 	hints.ai_socktype = SOCK_DGRAM;
    632  1.1.1.2    kardel 	hints.ai_flags = Z_AI_NUMERICHOST;
    633  1.1.1.3  christos 	ai = NULL;
    634      1.1    kardel 
    635  1.1.1.3  christos 	a_info = getaddrinfo(hname, svc, &hints, &ai);
    636      1.1    kardel 	if (a_info == EAI_NONAME
    637      1.1    kardel #ifdef EAI_NODATA
    638      1.1    kardel 	    || a_info == EAI_NODATA
    639      1.1    kardel #endif
    640      1.1    kardel 	   ) {
    641      1.1    kardel 		hints.ai_flags = AI_CANONNAME;
    642      1.1    kardel #ifdef AI_ADDRCONFIG
    643      1.1    kardel 		hints.ai_flags |= AI_ADDRCONFIG;
    644      1.1    kardel #endif
    645  1.1.1.3  christos 		a_info = getaddrinfo(hname, svc, &hints, &ai);
    646      1.1    kardel 	}
    647      1.1    kardel #ifdef AI_ADDRCONFIG
    648      1.1    kardel 	/* Some older implementations don't like AI_ADDRCONFIG. */
    649      1.1    kardel 	if (a_info == EAI_BADFLAGS) {
    650  1.1.1.3  christos 		hints.ai_flags &= ~AI_ADDRCONFIG;
    651  1.1.1.3  christos 		a_info = getaddrinfo(hname, svc, &hints, &ai);
    652      1.1    kardel 	}
    653      1.1    kardel #endif
    654      1.1    kardel 	if (a_info != 0) {
    655  1.1.1.3  christos 		fprintf(stderr, "%s\n", gai_strerror(a_info));
    656      1.1    kardel 		return 0;
    657      1.1    kardel 	}
    658      1.1    kardel 
    659  1.1.1.3  christos 	INSIST(ai != NULL);
    660  1.1.1.3  christos 	ZERO(addr);
    661  1.1.1.3  christos 	octets = min(sizeof(addr), ai->ai_addrlen);
    662  1.1.1.3  christos 	memcpy(&addr, ai->ai_addr, octets);
    663  1.1.1.3  christos 
    664  1.1.1.3  christos 	if (ai->ai_canonname == NULL) {
    665  1.1.1.3  christos 		strlcpy(temphost, stoa(&addr), sizeof(temphost));
    666  1.1.1.2    kardel 		currenthostisnum = TRUE;
    667      1.1    kardel 	} else {
    668  1.1.1.3  christos 		strlcpy(temphost, ai->ai_canonname, sizeof(temphost));
    669  1.1.1.2    kardel 		currenthostisnum = FALSE;
    670      1.1    kardel 	}
    671      1.1    kardel 
    672      1.1    kardel 	if (debug > 2)
    673  1.1.1.3  christos 		printf("Opening host %s (%s)\n",
    674  1.1.1.3  christos 			temphost,
    675  1.1.1.3  christos 			(ai->ai_family == AF_INET)
    676  1.1.1.3  christos 			? "AF_INET"
    677  1.1.1.3  christos 			: (ai->ai_family == AF_INET6)
    678  1.1.1.3  christos 			  ? "AF_INET6"
    679  1.1.1.3  christos 			  : "AF-???"
    680  1.1.1.3  christos 			);
    681      1.1    kardel 
    682      1.1    kardel 	if (havehost == 1) {
    683      1.1    kardel 		if (debug > 2)
    684      1.1    kardel 			printf("Closing old host %s\n", currenthost);
    685  1.1.1.3  christos 		closesocket(sockfd);
    686      1.1    kardel 		havehost = 0;
    687      1.1    kardel 	}
    688  1.1.1.3  christos 	strlcpy(currenthost, temphost, sizeof(currenthost));
    689      1.1    kardel 
    690      1.1    kardel 	/* port maps to the same location in both families */
    691  1.1.1.3  christos 	s_port = NSRCPORT(&addr);
    692      1.1    kardel #ifdef SYS_VXWORKS
    693      1.1    kardel 	((struct sockaddr_in6 *)&hostaddr)->sin6_port = htons(SERVER_PORT_NUM);
    694      1.1    kardel 	if (ai->ai_family == AF_INET)
    695      1.1    kardel 		*(struct sockaddr_in *)&hostaddr=
    696      1.1    kardel 			*((struct sockaddr_in *)ai->ai_addr);
    697      1.1    kardel 	else
    698      1.1    kardel 		*(struct sockaddr_in6 *)&hostaddr=
    699      1.1    kardel 			*((struct sockaddr_in6 *)ai->ai_addr);
    700      1.1    kardel #endif /* SYS_VXWORKS */
    701      1.1    kardel 
    702      1.1    kardel #ifdef SYS_WINNT
    703      1.1    kardel 	{
    704      1.1    kardel 		int optionValue = SO_SYNCHRONOUS_NONALERT;
    705      1.1    kardel 		int err;
    706      1.1    kardel 
    707      1.1    kardel 		err = setsockopt(INVALID_SOCKET, SOL_SOCKET, SO_OPENTYPE,
    708      1.1    kardel 				 (char *)&optionValue, sizeof(optionValue));
    709      1.1    kardel 		if (err) {
    710  1.1.1.3  christos 			mfprintf(stderr,
    711  1.1.1.3  christos 				 "setsockopt(SO_SYNCHRONOUS_NONALERT)"
    712  1.1.1.3  christos 				 " error: %m\n");
    713  1.1.1.3  christos 			freeaddrinfo(ai);
    714      1.1    kardel 			exit(1);
    715      1.1    kardel 		}
    716      1.1    kardel 	}
    717      1.1    kardel #endif /* SYS_WINNT */
    718      1.1    kardel 
    719  1.1.1.3  christos 	sockfd = socket(ai->ai_family, ai->ai_socktype,
    720  1.1.1.3  christos 			ai->ai_protocol);
    721      1.1    kardel 	if (sockfd == INVALID_SOCKET) {
    722  1.1.1.5  christos 		error("socket");
    723  1.1.1.3  christos 		freeaddrinfo(ai);
    724  1.1.1.3  christos 		return 0;
    725      1.1    kardel 	}
    726      1.1    kardel 
    727  1.1.1.3  christos 
    728      1.1    kardel #ifdef NEED_RCVBUF_SLOP
    729      1.1    kardel # ifdef SO_RCVBUF
    730      1.1    kardel 	{ int rbufsize = DATASIZE + 2048;	/* 2K for slop */
    731      1.1    kardel 	if (setsockopt(sockfd, SOL_SOCKET, SO_RCVBUF,
    732      1.1    kardel 		       &rbufsize, sizeof(int)) == -1)
    733  1.1.1.5  christos 		error("setsockopt");
    734      1.1    kardel 	}
    735      1.1    kardel # endif
    736      1.1    kardel #endif
    737      1.1    kardel 
    738  1.1.1.3  christos 	if
    739      1.1    kardel #ifdef SYS_VXWORKS
    740  1.1.1.3  christos 	   (connect(sockfd, (struct sockaddr *)&hostaddr,
    741      1.1    kardel 		    sizeof(hostaddr)) == -1)
    742      1.1    kardel #else
    743  1.1.1.3  christos 	   (connect(sockfd, (struct sockaddr *)ai->ai_addr,
    744      1.1    kardel 		    ai->ai_addrlen) == -1)
    745      1.1    kardel #endif /* SYS_VXWORKS */
    746  1.1.1.3  christos 	    {
    747  1.1.1.5  christos 		error("connect");
    748      1.1    kardel 		freeaddrinfo(ai);
    749  1.1.1.3  christos 		return 0;
    750  1.1.1.3  christos 	}
    751  1.1.1.3  christos 	freeaddrinfo(ai);
    752      1.1    kardel 	havehost = 1;
    753  1.1.1.3  christos 	numassoc = 0;
    754  1.1.1.3  christos 
    755      1.1    kardel 	return 1;
    756      1.1    kardel }
    757      1.1    kardel 
    758      1.1    kardel 
    759  1.1.1.3  christos static void
    760  1.1.1.3  christos dump_hex_printable(
    761  1.1.1.3  christos 	const void *	data,
    762  1.1.1.3  christos 	size_t		len
    763  1.1.1.3  christos 	)
    764  1.1.1.3  christos {
    765  1.1.1.3  christos 	const char *	cdata;
    766  1.1.1.3  christos 	const char *	rowstart;
    767  1.1.1.3  christos 	size_t		idx;
    768  1.1.1.3  christos 	size_t		rowlen;
    769  1.1.1.3  christos 	u_char		uch;
    770  1.1.1.3  christos 
    771  1.1.1.3  christos 	cdata = data;
    772  1.1.1.3  christos 	while (len > 0) {
    773  1.1.1.3  christos 		rowstart = cdata;
    774  1.1.1.3  christos 		rowlen = min(16, len);
    775  1.1.1.3  christos 		for (idx = 0; idx < rowlen; idx++) {
    776  1.1.1.3  christos 			uch = *(cdata++);
    777  1.1.1.3  christos 			printf("%02x ", uch);
    778  1.1.1.3  christos 		}
    779  1.1.1.3  christos 		for ( ; idx < 16 ; idx++)
    780  1.1.1.3  christos 			printf("   ");
    781  1.1.1.3  christos 		cdata = rowstart;
    782  1.1.1.3  christos 		for (idx = 0; idx < rowlen; idx++) {
    783  1.1.1.3  christos 			uch = *(cdata++);
    784  1.1.1.3  christos 			printf("%c", (isprint(uch))
    785  1.1.1.3  christos 					 ? uch
    786  1.1.1.3  christos 					 : '.');
    787  1.1.1.3  christos 		}
    788  1.1.1.3  christos 		printf("\n");
    789  1.1.1.3  christos 		len -= rowlen;
    790  1.1.1.3  christos 	}
    791  1.1.1.3  christos }
    792  1.1.1.3  christos 
    793  1.1.1.3  christos 
    794      1.1    kardel /* XXX ELIMINATE sendpkt similar in ntpq.c, ntpdc.c, ntp_io.c, ntptrace.c */
    795      1.1    kardel /*
    796      1.1    kardel  * sendpkt - send a packet to the remote host
    797      1.1    kardel  */
    798      1.1    kardel static int
    799      1.1    kardel sendpkt(
    800      1.1    kardel 	void *	xdata,
    801      1.1    kardel 	size_t	xdatalen
    802      1.1    kardel 	)
    803      1.1    kardel {
    804      1.1    kardel 	if (debug >= 3)
    805  1.1.1.5  christos 		printf("Sending %zu octets\n", xdatalen);
    806      1.1    kardel 
    807      1.1    kardel 	if (send(sockfd, xdata, (size_t)xdatalen, 0) == -1) {
    808  1.1.1.5  christos 		warning("write to %s failed", currenthost);
    809      1.1    kardel 		return -1;
    810      1.1    kardel 	}
    811      1.1    kardel 
    812      1.1    kardel 	if (debug >= 4) {
    813  1.1.1.3  christos 		printf("Request packet:\n");
    814  1.1.1.3  christos 		dump_hex_printable(xdata, xdatalen);
    815      1.1    kardel 	}
    816      1.1    kardel 	return 0;
    817      1.1    kardel }
    818      1.1    kardel 
    819      1.1    kardel /*
    820      1.1    kardel  * getresponse - get a (series of) response packet(s) and return the data
    821      1.1    kardel  */
    822      1.1    kardel static int
    823      1.1    kardel getresponse(
    824      1.1    kardel 	int opcode,
    825      1.1    kardel 	int associd,
    826      1.1    kardel 	u_short *rstatus,
    827      1.1    kardel 	int *rsize,
    828  1.1.1.2    kardel 	const char **rdata,
    829      1.1    kardel 	int timeo
    830      1.1    kardel 	)
    831      1.1    kardel {
    832      1.1    kardel 	struct ntp_control rpkt;
    833      1.1    kardel 	struct sock_timeval tvo;
    834      1.1    kardel 	u_short offsets[MAXFRAGS+1];
    835      1.1    kardel 	u_short counts[MAXFRAGS+1];
    836      1.1    kardel 	u_short offset;
    837      1.1    kardel 	u_short count;
    838  1.1.1.2    kardel 	size_t numfrags;
    839  1.1.1.2    kardel 	size_t f;
    840  1.1.1.2    kardel 	size_t ff;
    841      1.1    kardel 	int seenlastfrag;
    842      1.1    kardel 	int shouldbesize;
    843      1.1    kardel 	fd_set fds;
    844      1.1    kardel 	int n;
    845  1.1.1.3  christos 	int errcode;
    846      1.1    kardel 
    847      1.1    kardel 	/*
    848      1.1    kardel 	 * This is pretty tricky.  We may get between 1 and MAXFRAG packets
    849      1.1    kardel 	 * back in response to the request.  We peel the data out of
    850      1.1    kardel 	 * each packet and collect it in one long block.  When the last
    851      1.1    kardel 	 * packet in the sequence is received we'll know how much data we
    852      1.1    kardel 	 * should have had.  Note we use one long time out, should reconsider.
    853      1.1    kardel 	 */
    854      1.1    kardel 	*rsize = 0;
    855      1.1    kardel 	if (rstatus)
    856  1.1.1.2    kardel 		*rstatus = 0;
    857      1.1    kardel 	*rdata = (char *)pktdata;
    858      1.1    kardel 
    859      1.1    kardel 	numfrags = 0;
    860      1.1    kardel 	seenlastfrag = 0;
    861      1.1    kardel 
    862      1.1    kardel 	FD_ZERO(&fds);
    863      1.1    kardel 
    864      1.1    kardel 	/*
    865      1.1    kardel 	 * Loop until we have an error or a complete response.  Nearly all
    866  1.1.1.2    kardel 	 * code paths to loop again use continue.
    867      1.1    kardel 	 */
    868      1.1    kardel 	for (;;) {
    869      1.1    kardel 
    870      1.1    kardel 		if (numfrags == 0)
    871  1.1.1.2    kardel 			tvo = tvout;
    872      1.1    kardel 		else
    873  1.1.1.2    kardel 			tvo = tvsout;
    874  1.1.1.3  christos 
    875      1.1    kardel 		FD_SET(sockfd, &fds);
    876  1.1.1.2    kardel 		n = select(sockfd + 1, &fds, NULL, NULL, &tvo);
    877      1.1    kardel 
    878      1.1    kardel 		if (n == -1) {
    879  1.1.1.5  christos 			warning("select fails");
    880      1.1    kardel 			return -1;
    881      1.1    kardel 		}
    882      1.1    kardel 		if (n == 0) {
    883      1.1    kardel 			/*
    884      1.1    kardel 			 * Timed out.  Return what we have
    885      1.1    kardel 			 */
    886      1.1    kardel 			if (numfrags == 0) {
    887      1.1    kardel 				if (timeo)
    888  1.1.1.2    kardel 					fprintf(stderr,
    889  1.1.1.2    kardel 						"%s: timed out, nothing received\n",
    890  1.1.1.2    kardel 						currenthost);
    891      1.1    kardel 				return ERR_TIMEOUT;
    892      1.1    kardel 			}
    893  1.1.1.2    kardel 			if (timeo)
    894  1.1.1.2    kardel 				fprintf(stderr,
    895  1.1.1.2    kardel 					"%s: timed out with incomplete data\n",
    896  1.1.1.2    kardel 					currenthost);
    897  1.1.1.2    kardel 			if (debug) {
    898  1.1.1.2    kardel 				fprintf(stderr,
    899  1.1.1.2    kardel 					"ERR_INCOMPLETE: Received fragments:\n");
    900  1.1.1.2    kardel 				for (f = 0; f < numfrags; f++)
    901  1.1.1.2    kardel 					fprintf(stderr,
    902  1.1.1.2    kardel 						"%2u: %5d %5d\t%3d octets\n",
    903  1.1.1.3  christos 						(u_int)f, offsets[f],
    904  1.1.1.2    kardel 						offsets[f] +
    905  1.1.1.2    kardel 						counts[f],
    906  1.1.1.2    kardel 						counts[f]);
    907  1.1.1.2    kardel 				fprintf(stderr,
    908  1.1.1.2    kardel 					"last fragment %sreceived\n",
    909  1.1.1.2    kardel 					(seenlastfrag)
    910  1.1.1.2    kardel 					    ? ""
    911  1.1.1.2    kardel 					    : "not ");
    912  1.1.1.2    kardel 			}
    913  1.1.1.2    kardel 			return ERR_INCOMPLETE;
    914      1.1    kardel 		}
    915      1.1    kardel 
    916      1.1    kardel 		n = recv(sockfd, (char *)&rpkt, sizeof(rpkt), 0);
    917      1.1    kardel 		if (n == -1) {
    918  1.1.1.5  christos 			warning("read");
    919      1.1    kardel 			return -1;
    920      1.1    kardel 		}
    921      1.1    kardel 
    922      1.1    kardel 		if (debug >= 4) {
    923  1.1.1.3  christos 			printf("Response packet:\n");
    924  1.1.1.3  christos 			dump_hex_printable(&rpkt, n);
    925      1.1    kardel 		}
    926      1.1    kardel 
    927      1.1    kardel 		/*
    928      1.1    kardel 		 * Check for format errors.  Bug proofing.
    929      1.1    kardel 		 */
    930  1.1.1.5  christos 		if (n < (int)CTL_HEADER_LEN) {
    931      1.1    kardel 			if (debug)
    932  1.1.1.2    kardel 				printf("Short (%d byte) packet received\n", n);
    933      1.1    kardel 			continue;
    934      1.1    kardel 		}
    935      1.1    kardel 		if (PKT_VERSION(rpkt.li_vn_mode) > NTP_VERSION
    936      1.1    kardel 		    || PKT_VERSION(rpkt.li_vn_mode) < NTP_OLDVERSION) {
    937      1.1    kardel 			if (debug)
    938  1.1.1.2    kardel 				printf("Packet received with version %d\n",
    939  1.1.1.2    kardel 				       PKT_VERSION(rpkt.li_vn_mode));
    940      1.1    kardel 			continue;
    941      1.1    kardel 		}
    942      1.1    kardel 		if (PKT_MODE(rpkt.li_vn_mode) != MODE_CONTROL) {
    943      1.1    kardel 			if (debug)
    944  1.1.1.2    kardel 				printf("Packet received with mode %d\n",
    945  1.1.1.2    kardel 				       PKT_MODE(rpkt.li_vn_mode));
    946      1.1    kardel 			continue;
    947      1.1    kardel 		}
    948      1.1    kardel 		if (!CTL_ISRESPONSE(rpkt.r_m_e_op)) {
    949      1.1    kardel 			if (debug)
    950  1.1.1.2    kardel 				printf("Received request packet, wanted response\n");
    951      1.1    kardel 			continue;
    952      1.1    kardel 		}
    953      1.1    kardel 
    954      1.1    kardel 		/*
    955      1.1    kardel 		 * Check opcode and sequence number for a match.
    956      1.1    kardel 		 * Could be old data getting to us.
    957      1.1    kardel 		 */
    958      1.1    kardel 		if (ntohs(rpkt.sequence) != sequence) {
    959      1.1    kardel 			if (debug)
    960  1.1.1.2    kardel 				printf("Received sequnce number %d, wanted %d\n",
    961  1.1.1.2    kardel 				       ntohs(rpkt.sequence), sequence);
    962      1.1    kardel 			continue;
    963      1.1    kardel 		}
    964      1.1    kardel 		if (CTL_OP(rpkt.r_m_e_op) != opcode) {
    965      1.1    kardel 			if (debug)
    966      1.1    kardel 			    printf(
    967      1.1    kardel 				    "Received opcode %d, wanted %d (sequence number okay)\n",
    968      1.1    kardel 				    CTL_OP(rpkt.r_m_e_op), opcode);
    969      1.1    kardel 			continue;
    970      1.1    kardel 		}
    971      1.1    kardel 
    972      1.1    kardel 		/*
    973      1.1    kardel 		 * Check the error code.  If non-zero, return it.
    974      1.1    kardel 		 */
    975      1.1    kardel 		if (CTL_ISERROR(rpkt.r_m_e_op)) {
    976      1.1    kardel 			errcode = (ntohs(rpkt.status) >> 8) & 0xff;
    977  1.1.1.3  christos 			if (CTL_ISMORE(rpkt.r_m_e_op))
    978  1.1.1.3  christos 				TRACE(1, ("Error code %d received on not-final packet\n",
    979  1.1.1.3  christos 					  errcode));
    980      1.1    kardel 			if (errcode == CERR_UNSPEC)
    981  1.1.1.3  christos 				return ERR_UNSPEC;
    982      1.1    kardel 			return errcode;
    983      1.1    kardel 		}
    984      1.1    kardel 
    985      1.1    kardel 		/*
    986      1.1    kardel 		 * Check the association ID to make sure it matches what
    987      1.1    kardel 		 * we sent.
    988      1.1    kardel 		 */
    989      1.1    kardel 		if (ntohs(rpkt.associd) != associd) {
    990  1.1.1.3  christos 			TRACE(1, ("Association ID %d doesn't match expected %d\n",
    991  1.1.1.3  christos 				  ntohs(rpkt.associd), associd));
    992      1.1    kardel 			/*
    993      1.1    kardel 			 * Hack for silly fuzzballs which, at the time of writing,
    994      1.1    kardel 			 * return an assID of sys.peer when queried for system variables.
    995      1.1    kardel 			 */
    996      1.1    kardel #ifdef notdef
    997      1.1    kardel 			continue;
    998      1.1    kardel #endif
    999      1.1    kardel 		}
   1000      1.1    kardel 
   1001      1.1    kardel 		/*
   1002      1.1    kardel 		 * Collect offset and count.  Make sure they make sense.
   1003      1.1    kardel 		 */
   1004      1.1    kardel 		offset = ntohs(rpkt.offset);
   1005      1.1    kardel 		count = ntohs(rpkt.count);
   1006      1.1    kardel 
   1007      1.1    kardel 		/*
   1008      1.1    kardel 		 * validate received payload size is padded to next 32-bit
   1009      1.1    kardel 		 * boundary and no smaller than claimed by rpkt.count
   1010      1.1    kardel 		 */
   1011      1.1    kardel 		if (n & 0x3) {
   1012  1.1.1.3  christos 			TRACE(1, ("Response packet not padded, size = %d\n",
   1013  1.1.1.3  christos 				  n));
   1014      1.1    kardel 			continue;
   1015      1.1    kardel 		}
   1016      1.1    kardel 
   1017      1.1    kardel 		shouldbesize = (CTL_HEADER_LEN + count + 3) & ~3;
   1018      1.1    kardel 
   1019      1.1    kardel 		if (n < shouldbesize) {
   1020  1.1.1.3  christos 			printf("Response packet claims %u octets payload, above %ld received\n",
   1021  1.1.1.3  christos 			       count, (long)n - CTL_HEADER_LEN);
   1022      1.1    kardel 			return ERR_INCOMPLETE;
   1023      1.1    kardel 		}
   1024      1.1    kardel 
   1025      1.1    kardel 		if (debug >= 3 && shouldbesize > n) {
   1026      1.1    kardel 			u_int32 key;
   1027      1.1    kardel 			u_int32 *lpkt;
   1028      1.1    kardel 			int maclen;
   1029      1.1    kardel 
   1030      1.1    kardel 			/*
   1031      1.1    kardel 			 * Usually we ignore authentication, but for debugging purposes
   1032      1.1    kardel 			 * we watch it here.
   1033      1.1    kardel 			 */
   1034      1.1    kardel 			/* round to 8 octet boundary */
   1035      1.1    kardel 			shouldbesize = (shouldbesize + 7) & ~7;
   1036      1.1    kardel 
   1037      1.1    kardel 			maclen = n - shouldbesize;
   1038  1.1.1.5  christos 			if (maclen >= (int)MIN_MAC_LEN) {
   1039      1.1    kardel 				printf(
   1040      1.1    kardel 					"Packet shows signs of authentication (total %d, data %d, mac %d)\n",
   1041      1.1    kardel 					n, shouldbesize, maclen);
   1042      1.1    kardel 				lpkt = (u_int32 *)&rpkt;
   1043      1.1    kardel 				printf("%08lx %08lx %08lx %08lx %08lx %08lx\n",
   1044      1.1    kardel 				       (u_long)ntohl(lpkt[(n - maclen)/sizeof(u_int32) - 3]),
   1045      1.1    kardel 				       (u_long)ntohl(lpkt[(n - maclen)/sizeof(u_int32) - 2]),
   1046      1.1    kardel 				       (u_long)ntohl(lpkt[(n - maclen)/sizeof(u_int32) - 1]),
   1047      1.1    kardel 				       (u_long)ntohl(lpkt[(n - maclen)/sizeof(u_int32)]),
   1048      1.1    kardel 				       (u_long)ntohl(lpkt[(n - maclen)/sizeof(u_int32) + 1]),
   1049      1.1    kardel 				       (u_long)ntohl(lpkt[(n - maclen)/sizeof(u_int32) + 2]));
   1050      1.1    kardel 				key = ntohl(lpkt[(n - maclen) / sizeof(u_int32)]);
   1051      1.1    kardel 				printf("Authenticated with keyid %lu\n", (u_long)key);
   1052      1.1    kardel 				if (key != 0 && key != info_auth_keyid) {
   1053      1.1    kardel 					printf("We don't know that key\n");
   1054      1.1    kardel 				} else {
   1055      1.1    kardel 					if (authdecrypt(key, (u_int32 *)&rpkt,
   1056      1.1    kardel 					    n - maclen, maclen)) {
   1057      1.1    kardel 						printf("Auth okay!\n");
   1058      1.1    kardel 					} else {
   1059      1.1    kardel 						printf("Auth failed!\n");
   1060      1.1    kardel 					}
   1061      1.1    kardel 				}
   1062      1.1    kardel 			}
   1063      1.1    kardel 		}
   1064      1.1    kardel 
   1065  1.1.1.3  christos 		TRACE(2, ("Got packet, size = %d\n", n));
   1066  1.1.1.3  christos 		if (count > (n - CTL_HEADER_LEN)) {
   1067  1.1.1.3  christos 			TRACE(1, ("Received count of %u octets, data in packet is %ld\n",
   1068  1.1.1.3  christos 				  count, (long)n - CTL_HEADER_LEN));
   1069      1.1    kardel 			continue;
   1070      1.1    kardel 		}
   1071      1.1    kardel 		if (count == 0 && CTL_ISMORE(rpkt.r_m_e_op)) {
   1072  1.1.1.3  christos 			TRACE(1, ("Received count of 0 in non-final fragment\n"));
   1073      1.1    kardel 			continue;
   1074      1.1    kardel 		}
   1075      1.1    kardel 		if (offset + count > sizeof(pktdata)) {
   1076  1.1.1.3  christos 			TRACE(1, ("Offset %u, count %u, too big for buffer\n",
   1077  1.1.1.3  christos 				  offset, count));
   1078      1.1    kardel 			return ERR_TOOMUCH;
   1079      1.1    kardel 		}
   1080      1.1    kardel 		if (seenlastfrag && !CTL_ISMORE(rpkt.r_m_e_op)) {
   1081  1.1.1.3  christos 			TRACE(1, ("Received second last fragment packet\n"));
   1082      1.1    kardel 			continue;
   1083      1.1    kardel 		}
   1084      1.1    kardel 
   1085      1.1    kardel 		/*
   1086      1.1    kardel 		 * So far, so good.  Record this fragment, making sure it doesn't
   1087      1.1    kardel 		 * overlap anything.
   1088      1.1    kardel 		 */
   1089  1.1.1.3  christos 		TRACE(2, ("Packet okay\n"));
   1090      1.1    kardel 
   1091      1.1    kardel 		if (numfrags > (MAXFRAGS - 1)) {
   1092  1.1.1.3  christos 			TRACE(2, ("Number of fragments exceeds maximum %d\n",
   1093  1.1.1.3  christos 				  MAXFRAGS - 1));
   1094      1.1    kardel 			return ERR_TOOMUCH;
   1095      1.1    kardel 		}
   1096      1.1    kardel 
   1097      1.1    kardel 		/*
   1098      1.1    kardel 		 * Find the position for the fragment relative to any
   1099      1.1    kardel 		 * previously received.
   1100      1.1    kardel 		 */
   1101  1.1.1.3  christos 		for (f = 0;
   1102  1.1.1.3  christos 		     f < numfrags && offsets[f] < offset;
   1103  1.1.1.2    kardel 		     f++) {
   1104      1.1    kardel 			/* empty body */ ;
   1105      1.1    kardel 		}
   1106      1.1    kardel 
   1107  1.1.1.2    kardel 		if (f < numfrags && offset == offsets[f]) {
   1108  1.1.1.3  christos 			TRACE(1, ("duplicate %u octets at %u ignored, prior %u at %u\n",
   1109  1.1.1.3  christos 				  count, offset, counts[f], offsets[f]));
   1110      1.1    kardel 			continue;
   1111      1.1    kardel 		}
   1112      1.1    kardel 
   1113  1.1.1.2    kardel 		if (f > 0 && (offsets[f-1] + counts[f-1]) > offset) {
   1114  1.1.1.3  christos 			TRACE(1, ("received frag at %u overlaps with %u octet frag at %u\n",
   1115  1.1.1.3  christos 				  offset, counts[f-1], offsets[f-1]));
   1116      1.1    kardel 			continue;
   1117      1.1    kardel 		}
   1118      1.1    kardel 
   1119  1.1.1.2    kardel 		if (f < numfrags && (offset + count) > offsets[f]) {
   1120  1.1.1.3  christos 			TRACE(1, ("received %u octet frag at %u overlaps with frag at %u\n",
   1121  1.1.1.3  christos 				  count, offset, offsets[f]));
   1122      1.1    kardel 			continue;
   1123      1.1    kardel 		}
   1124      1.1    kardel 
   1125  1.1.1.2    kardel 		for (ff = numfrags; ff > f; ff--) {
   1126  1.1.1.2    kardel 			offsets[ff] = offsets[ff-1];
   1127  1.1.1.2    kardel 			counts[ff] = counts[ff-1];
   1128      1.1    kardel 		}
   1129  1.1.1.2    kardel 		offsets[f] = offset;
   1130  1.1.1.2    kardel 		counts[f] = count;
   1131      1.1    kardel 		numfrags++;
   1132      1.1    kardel 
   1133      1.1    kardel 		/*
   1134      1.1    kardel 		 * Got that stuffed in right.  Figure out if this was the last.
   1135      1.1    kardel 		 * Record status info out of the last packet.
   1136      1.1    kardel 		 */
   1137      1.1    kardel 		if (!CTL_ISMORE(rpkt.r_m_e_op)) {
   1138      1.1    kardel 			seenlastfrag = 1;
   1139      1.1    kardel 			if (rstatus != 0)
   1140  1.1.1.2    kardel 				*rstatus = ntohs(rpkt.status);
   1141      1.1    kardel 		}
   1142      1.1    kardel 
   1143      1.1    kardel 		/*
   1144      1.1    kardel 		 * Copy the data into the data buffer.
   1145      1.1    kardel 		 */
   1146  1.1.1.3  christos 		memcpy((char *)pktdata + offset, &rpkt.u, count);
   1147      1.1    kardel 
   1148      1.1    kardel 		/*
   1149      1.1    kardel 		 * If we've seen the last fragment, look for holes in the sequence.
   1150      1.1    kardel 		 * If there aren't any, we're done.
   1151      1.1    kardel 		 */
   1152      1.1    kardel 		if (seenlastfrag && offsets[0] == 0) {
   1153  1.1.1.2    kardel 			for (f = 1; f < numfrags; f++)
   1154  1.1.1.2    kardel 				if (offsets[f-1] + counts[f-1] !=
   1155  1.1.1.2    kardel 				    offsets[f])
   1156      1.1    kardel 					break;
   1157  1.1.1.2    kardel 			if (f == numfrags) {
   1158  1.1.1.2    kardel 				*rsize = offsets[f-1] + counts[f-1];
   1159  1.1.1.3  christos 				TRACE(1, ("%lu packets reassembled into response\n",
   1160  1.1.1.3  christos 					  (u_long)numfrags));
   1161      1.1    kardel 				return 0;
   1162      1.1    kardel 			}
   1163      1.1    kardel 		}
   1164      1.1    kardel 	}  /* giant for (;;) collecting response packets */
   1165      1.1    kardel }  /* getresponse() */
   1166      1.1    kardel 
   1167      1.1    kardel 
   1168      1.1    kardel /*
   1169      1.1    kardel  * sendrequest - format and send a request packet
   1170      1.1    kardel  */
   1171      1.1    kardel static int
   1172      1.1    kardel sendrequest(
   1173      1.1    kardel 	int opcode,
   1174  1.1.1.3  christos 	associd_t associd,
   1175      1.1    kardel 	int auth,
   1176      1.1    kardel 	int qsize,
   1177  1.1.1.3  christos 	const char *qdata
   1178      1.1    kardel 	)
   1179      1.1    kardel {
   1180      1.1    kardel 	struct ntp_control qpkt;
   1181      1.1    kardel 	int	pktsize;
   1182      1.1    kardel 	u_long	key_id;
   1183      1.1    kardel 	char *	pass;
   1184      1.1    kardel 	int	maclen;
   1185      1.1    kardel 
   1186      1.1    kardel 	/*
   1187      1.1    kardel 	 * Check to make sure the data will fit in one packet
   1188      1.1    kardel 	 */
   1189      1.1    kardel 	if (qsize > CTL_MAX_DATA_LEN) {
   1190      1.1    kardel 		fprintf(stderr,
   1191      1.1    kardel 			"***Internal error!  qsize (%d) too large\n",
   1192      1.1    kardel 			qsize);
   1193      1.1    kardel 		return 1;
   1194      1.1    kardel 	}
   1195      1.1    kardel 
   1196      1.1    kardel 	/*
   1197      1.1    kardel 	 * Fill in the packet
   1198      1.1    kardel 	 */
   1199      1.1    kardel 	qpkt.li_vn_mode = PKT_LI_VN_MODE(0, pktversion, MODE_CONTROL);
   1200      1.1    kardel 	qpkt.r_m_e_op = (u_char)(opcode & CTL_OP_MASK);
   1201      1.1    kardel 	qpkt.sequence = htons(sequence);
   1202      1.1    kardel 	qpkt.status = 0;
   1203      1.1    kardel 	qpkt.associd = htons((u_short)associd);
   1204      1.1    kardel 	qpkt.offset = 0;
   1205      1.1    kardel 	qpkt.count = htons((u_short)qsize);
   1206      1.1    kardel 
   1207      1.1    kardel 	pktsize = CTL_HEADER_LEN;
   1208      1.1    kardel 
   1209      1.1    kardel 	/*
   1210      1.1    kardel 	 * If we have data, copy and pad it out to a 32-bit boundary.
   1211      1.1    kardel 	 */
   1212      1.1    kardel 	if (qsize > 0) {
   1213  1.1.1.3  christos 		memcpy(&qpkt.u, qdata, (size_t)qsize);
   1214      1.1    kardel 		pktsize += qsize;
   1215      1.1    kardel 		while (pktsize & (sizeof(u_int32) - 1)) {
   1216  1.1.1.3  christos 			qpkt.u.data[qsize++] = 0;
   1217      1.1    kardel 			pktsize++;
   1218      1.1    kardel 		}
   1219      1.1    kardel 	}
   1220      1.1    kardel 
   1221      1.1    kardel 	/*
   1222      1.1    kardel 	 * If it isn't authenticated we can just send it.  Otherwise
   1223      1.1    kardel 	 * we're going to have to think about it a little.
   1224      1.1    kardel 	 */
   1225      1.1    kardel 	if (!auth && !always_auth) {
   1226      1.1    kardel 		return sendpkt(&qpkt, pktsize);
   1227  1.1.1.3  christos 	}
   1228      1.1    kardel 
   1229      1.1    kardel 	/*
   1230      1.1    kardel 	 * Pad out packet to a multiple of 8 octets to be sure
   1231      1.1    kardel 	 * receiver can handle it.
   1232      1.1    kardel 	 */
   1233      1.1    kardel 	while (pktsize & 7) {
   1234  1.1.1.3  christos 		qpkt.u.data[qsize++] = 0;
   1235      1.1    kardel 		pktsize++;
   1236      1.1    kardel 	}
   1237      1.1    kardel 
   1238      1.1    kardel 	/*
   1239      1.1    kardel 	 * Get the keyid and the password if we don't have one.
   1240      1.1    kardel 	 */
   1241      1.1    kardel 	if (info_auth_keyid == 0) {
   1242      1.1    kardel 		key_id = getkeyid("Keyid: ");
   1243      1.1    kardel 		if (key_id == 0 || key_id > NTP_MAXKEY) {
   1244  1.1.1.3  christos 			fprintf(stderr,
   1245      1.1    kardel 				"Invalid key identifier\n");
   1246      1.1    kardel 			return 1;
   1247      1.1    kardel 		}
   1248      1.1    kardel 		info_auth_keyid = key_id;
   1249      1.1    kardel 	}
   1250      1.1    kardel 	if (!authistrusted(info_auth_keyid)) {
   1251  1.1.1.2    kardel 		pass = getpass_keytype(info_auth_keytype);
   1252      1.1    kardel 		if ('\0' == pass[0]) {
   1253      1.1    kardel 			fprintf(stderr, "Invalid password\n");
   1254      1.1    kardel 			return 1;
   1255      1.1    kardel 		}
   1256      1.1    kardel 		authusekey(info_auth_keyid, info_auth_keytype,
   1257      1.1    kardel 			   (u_char *)pass);
   1258      1.1    kardel 		authtrust(info_auth_keyid, 1);
   1259      1.1    kardel 	}
   1260      1.1    kardel 
   1261      1.1    kardel 	/*
   1262      1.1    kardel 	 * Do the encryption.
   1263      1.1    kardel 	 */
   1264      1.1    kardel 	maclen = authencrypt(info_auth_keyid, (void *)&qpkt, pktsize);
   1265  1.1.1.3  christos 	if (!maclen) {
   1266      1.1    kardel 		fprintf(stderr, "Key not found\n");
   1267      1.1    kardel 		return 1;
   1268      1.1    kardel 	} else if ((size_t)maclen != (info_auth_hashlen + sizeof(keyid_t))) {
   1269      1.1    kardel 		fprintf(stderr,
   1270  1.1.1.5  christos 			"%d octet MAC, %zu expected with %zu octet digest\n",
   1271  1.1.1.5  christos 			maclen, (info_auth_hashlen + sizeof(keyid_t)),
   1272  1.1.1.5  christos 			info_auth_hashlen);
   1273      1.1    kardel 		return 1;
   1274      1.1    kardel 	}
   1275  1.1.1.3  christos 
   1276      1.1    kardel 	return sendpkt((char *)&qpkt, pktsize + maclen);
   1277      1.1    kardel }
   1278      1.1    kardel 
   1279      1.1    kardel 
   1280      1.1    kardel /*
   1281  1.1.1.2    kardel  * show_error_msg - display the error text for a mode 6 error response.
   1282  1.1.1.2    kardel  */
   1283  1.1.1.2    kardel void
   1284  1.1.1.2    kardel show_error_msg(
   1285  1.1.1.2    kardel 	int		m6resp,
   1286  1.1.1.2    kardel 	associd_t	associd
   1287  1.1.1.2    kardel 	)
   1288  1.1.1.2    kardel {
   1289  1.1.1.2    kardel 	if (numhosts > 1)
   1290  1.1.1.2    kardel 		fprintf(stderr, "server=%s ", currenthost);
   1291  1.1.1.2    kardel 
   1292  1.1.1.2    kardel 	switch(m6resp) {
   1293  1.1.1.2    kardel 
   1294  1.1.1.2    kardel 	case CERR_BADFMT:
   1295  1.1.1.2    kardel 		fprintf(stderr,
   1296  1.1.1.2    kardel 		    "***Server reports a bad format request packet\n");
   1297  1.1.1.2    kardel 		break;
   1298  1.1.1.2    kardel 
   1299  1.1.1.2    kardel 	case CERR_PERMISSION:
   1300  1.1.1.2    kardel 		fprintf(stderr,
   1301  1.1.1.2    kardel 		    "***Server disallowed request (authentication?)\n");
   1302  1.1.1.2    kardel 		break;
   1303  1.1.1.2    kardel 
   1304  1.1.1.2    kardel 	case CERR_BADOP:
   1305  1.1.1.2    kardel 		fprintf(stderr,
   1306  1.1.1.2    kardel 		    "***Server reports a bad opcode in request\n");
   1307  1.1.1.2    kardel 		break;
   1308  1.1.1.2    kardel 
   1309  1.1.1.2    kardel 	case CERR_BADASSOC:
   1310  1.1.1.2    kardel 		fprintf(stderr,
   1311  1.1.1.2    kardel 		    "***Association ID %d unknown to server\n",
   1312  1.1.1.2    kardel 		    associd);
   1313  1.1.1.2    kardel 		break;
   1314  1.1.1.2    kardel 
   1315  1.1.1.2    kardel 	case CERR_UNKNOWNVAR:
   1316  1.1.1.2    kardel 		fprintf(stderr,
   1317  1.1.1.2    kardel 		    "***A request variable unknown to the server\n");
   1318  1.1.1.2    kardel 		break;
   1319  1.1.1.2    kardel 
   1320  1.1.1.2    kardel 	case CERR_BADVALUE:
   1321  1.1.1.2    kardel 		fprintf(stderr,
   1322  1.1.1.2    kardel 		    "***Server indicates a request variable was bad\n");
   1323  1.1.1.2    kardel 		break;
   1324  1.1.1.2    kardel 
   1325  1.1.1.2    kardel 	case ERR_UNSPEC:
   1326  1.1.1.2    kardel 		fprintf(stderr,
   1327  1.1.1.2    kardel 		    "***Server returned an unspecified error\n");
   1328  1.1.1.2    kardel 		break;
   1329  1.1.1.2    kardel 
   1330  1.1.1.2    kardel 	case ERR_TIMEOUT:
   1331  1.1.1.2    kardel 		fprintf(stderr, "***Request timed out\n");
   1332  1.1.1.2    kardel 		break;
   1333  1.1.1.2    kardel 
   1334  1.1.1.2    kardel 	case ERR_INCOMPLETE:
   1335  1.1.1.2    kardel 		fprintf(stderr,
   1336  1.1.1.2    kardel 		    "***Response from server was incomplete\n");
   1337  1.1.1.2    kardel 		break;
   1338  1.1.1.2    kardel 
   1339  1.1.1.2    kardel 	case ERR_TOOMUCH:
   1340  1.1.1.2    kardel 		fprintf(stderr,
   1341  1.1.1.2    kardel 		    "***Buffer size exceeded for returned data\n");
   1342  1.1.1.2    kardel 		break;
   1343  1.1.1.2    kardel 
   1344  1.1.1.2    kardel 	default:
   1345  1.1.1.2    kardel 		fprintf(stderr,
   1346  1.1.1.2    kardel 		    "***Server returns unknown error code %d\n",
   1347  1.1.1.2    kardel 		    m6resp);
   1348  1.1.1.2    kardel 	}
   1349  1.1.1.2    kardel }
   1350  1.1.1.2    kardel 
   1351  1.1.1.2    kardel /*
   1352  1.1.1.2    kardel  * doquery - send a request and process the response, displaying
   1353  1.1.1.2    kardel  *	     error messages for any error responses.
   1354      1.1    kardel  */
   1355      1.1    kardel int
   1356      1.1    kardel doquery(
   1357      1.1    kardel 	int opcode,
   1358  1.1.1.2    kardel 	associd_t associd,
   1359      1.1    kardel 	int auth,
   1360      1.1    kardel 	int qsize,
   1361  1.1.1.3  christos 	const char *qdata,
   1362      1.1    kardel 	u_short *rstatus,
   1363      1.1    kardel 	int *rsize,
   1364  1.1.1.2    kardel 	const char **rdata
   1365  1.1.1.2    kardel 	)
   1366  1.1.1.2    kardel {
   1367  1.1.1.2    kardel 	return doqueryex(opcode, associd, auth, qsize, qdata, rstatus,
   1368  1.1.1.2    kardel 			 rsize, rdata, FALSE);
   1369  1.1.1.2    kardel }
   1370  1.1.1.2    kardel 
   1371  1.1.1.2    kardel 
   1372  1.1.1.2    kardel /*
   1373  1.1.1.2    kardel  * doqueryex - send a request and process the response, optionally
   1374  1.1.1.2    kardel  *	       displaying error messages for any error responses.
   1375  1.1.1.2    kardel  */
   1376  1.1.1.2    kardel int
   1377  1.1.1.2    kardel doqueryex(
   1378  1.1.1.2    kardel 	int opcode,
   1379  1.1.1.2    kardel 	associd_t associd,
   1380  1.1.1.2    kardel 	int auth,
   1381  1.1.1.2    kardel 	int qsize,
   1382  1.1.1.3  christos 	const char *qdata,
   1383  1.1.1.2    kardel 	u_short *rstatus,
   1384  1.1.1.2    kardel 	int *rsize,
   1385  1.1.1.2    kardel 	const char **rdata,
   1386  1.1.1.2    kardel 	int quiet
   1387      1.1    kardel 	)
   1388      1.1    kardel {
   1389      1.1    kardel 	int res;
   1390      1.1    kardel 	int done;
   1391      1.1    kardel 
   1392      1.1    kardel 	/*
   1393      1.1    kardel 	 * Check to make sure host is open
   1394      1.1    kardel 	 */
   1395      1.1    kardel 	if (!havehost) {
   1396  1.1.1.2    kardel 		fprintf(stderr, "***No host open, use `host' command\n");
   1397      1.1    kardel 		return -1;
   1398      1.1    kardel 	}
   1399      1.1    kardel 
   1400      1.1    kardel 	done = 0;
   1401      1.1    kardel 	sequence++;
   1402      1.1    kardel 
   1403      1.1    kardel     again:
   1404      1.1    kardel 	/*
   1405      1.1    kardel 	 * send a request
   1406      1.1    kardel 	 */
   1407      1.1    kardel 	res = sendrequest(opcode, associd, auth, qsize, qdata);
   1408      1.1    kardel 	if (res != 0)
   1409  1.1.1.2    kardel 		return res;
   1410  1.1.1.3  christos 
   1411      1.1    kardel 	/*
   1412      1.1    kardel 	 * Get the response.  If we got a standard error, print a message
   1413      1.1    kardel 	 */
   1414      1.1    kardel 	res = getresponse(opcode, associd, rstatus, rsize, rdata, done);
   1415      1.1    kardel 
   1416      1.1    kardel 	if (res > 0) {
   1417      1.1    kardel 		if (!done && (res == ERR_TIMEOUT || res == ERR_INCOMPLETE)) {
   1418      1.1    kardel 			if (res == ERR_INCOMPLETE) {
   1419      1.1    kardel 				/*
   1420      1.1    kardel 				 * better bump the sequence so we don't
   1421      1.1    kardel 				 * get confused about differing fragments.
   1422      1.1    kardel 				 */
   1423      1.1    kardel 				sequence++;
   1424      1.1    kardel 			}
   1425      1.1    kardel 			done = 1;
   1426      1.1    kardel 			goto again;
   1427      1.1    kardel 		}
   1428  1.1.1.2    kardel 		if (!quiet)
   1429  1.1.1.2    kardel 			show_error_msg(res, associd);
   1430  1.1.1.2    kardel 
   1431      1.1    kardel 	}
   1432      1.1    kardel 	return res;
   1433      1.1    kardel }
   1434      1.1    kardel 
   1435      1.1    kardel 
   1436      1.1    kardel #ifndef BUILD_AS_LIB
   1437      1.1    kardel /*
   1438      1.1    kardel  * getcmds - read commands from the standard input and execute them
   1439      1.1    kardel  */
   1440      1.1    kardel static void
   1441      1.1    kardel getcmds(void)
   1442      1.1    kardel {
   1443      1.1    kardel 	char *	line;
   1444      1.1    kardel 	int	count;
   1445      1.1    kardel 
   1446      1.1    kardel 	ntp_readline_init(interactive ? prompt : NULL);
   1447      1.1    kardel 
   1448      1.1    kardel 	for (;;) {
   1449      1.1    kardel 		line = ntp_readline(&count);
   1450      1.1    kardel 		if (NULL == line)
   1451      1.1    kardel 			break;
   1452      1.1    kardel 		docmd(line);
   1453      1.1    kardel 		free(line);
   1454      1.1    kardel 	}
   1455      1.1    kardel 
   1456      1.1    kardel 	ntp_readline_uninit();
   1457      1.1    kardel }
   1458      1.1    kardel #endif /* !BUILD_AS_LIB */
   1459      1.1    kardel 
   1460      1.1    kardel 
   1461      1.1    kardel #if !defined(SYS_WINNT) && !defined(BUILD_AS_LIB)
   1462      1.1    kardel /*
   1463      1.1    kardel  * abortcmd - catch interrupts and abort the current command
   1464      1.1    kardel  */
   1465      1.1    kardel static RETSIGTYPE
   1466      1.1    kardel abortcmd(
   1467      1.1    kardel 	int sig
   1468      1.1    kardel 	)
   1469      1.1    kardel {
   1470      1.1    kardel 	if (current_output == stdout)
   1471      1.1    kardel 	    (void) fflush(stdout);
   1472      1.1    kardel 	putc('\n', stderr);
   1473      1.1    kardel 	(void) fflush(stderr);
   1474      1.1    kardel 	if (jump) longjmp(interrupt_buf, 1);
   1475      1.1    kardel }
   1476      1.1    kardel #endif	/* !SYS_WINNT && !BUILD_AS_LIB */
   1477      1.1    kardel 
   1478      1.1    kardel 
   1479      1.1    kardel #ifndef	BUILD_AS_LIB
   1480      1.1    kardel /*
   1481      1.1    kardel  * docmd - decode the command line and execute a command
   1482      1.1    kardel  */
   1483      1.1    kardel static void
   1484      1.1    kardel docmd(
   1485      1.1    kardel 	const char *cmdline
   1486      1.1    kardel 	)
   1487      1.1    kardel {
   1488      1.1    kardel 	char *tokens[1+MAXARGS+2];
   1489      1.1    kardel 	struct parse pcmd;
   1490      1.1    kardel 	int ntok;
   1491      1.1    kardel 	static int i;
   1492      1.1    kardel 	struct xcmd *xcmd;
   1493      1.1    kardel 
   1494      1.1    kardel 	/*
   1495      1.1    kardel 	 * Tokenize the command line.  If nothing on it, return.
   1496      1.1    kardel 	 */
   1497      1.1    kardel 	tokenize(cmdline, tokens, &ntok);
   1498      1.1    kardel 	if (ntok == 0)
   1499      1.1    kardel 	    return;
   1500  1.1.1.3  christos 
   1501      1.1    kardel 	/*
   1502      1.1    kardel 	 * Find the appropriate command description.
   1503      1.1    kardel 	 */
   1504      1.1    kardel 	i = findcmd(tokens[0], builtins, opcmds, &xcmd);
   1505      1.1    kardel 	if (i == 0) {
   1506      1.1    kardel 		(void) fprintf(stderr, "***Command `%s' unknown\n",
   1507      1.1    kardel 			       tokens[0]);
   1508      1.1    kardel 		return;
   1509      1.1    kardel 	} else if (i >= 2) {
   1510      1.1    kardel 		(void) fprintf(stderr, "***Command `%s' ambiguous\n",
   1511      1.1    kardel 			       tokens[0]);
   1512      1.1    kardel 		return;
   1513      1.1    kardel 	}
   1514  1.1.1.3  christos 
   1515  1.1.1.3  christos 	/* Warn about ignored extra args */
   1516  1.1.1.3  christos 	for (i = MAXARGS + 1; i < ntok ; ++i) {
   1517  1.1.1.3  christos 		fprintf(stderr, "***Extra arg `%s' ignored\n", tokens[i]);
   1518  1.1.1.3  christos 	}
   1519  1.1.1.3  christos 
   1520      1.1    kardel 	/*
   1521      1.1    kardel 	 * Save the keyword, then walk through the arguments, interpreting
   1522      1.1    kardel 	 * as we go.
   1523      1.1    kardel 	 */
   1524      1.1    kardel 	pcmd.keyword = tokens[0];
   1525      1.1    kardel 	pcmd.nargs = 0;
   1526      1.1    kardel 	for (i = 0; i < MAXARGS && xcmd->arg[i] != NO; i++) {
   1527      1.1    kardel 		if ((i+1) >= ntok) {
   1528      1.1    kardel 			if (!(xcmd->arg[i] & OPT)) {
   1529      1.1    kardel 				printusage(xcmd, stderr);
   1530      1.1    kardel 				return;
   1531      1.1    kardel 			}
   1532      1.1    kardel 			break;
   1533      1.1    kardel 		}
   1534      1.1    kardel 		if ((xcmd->arg[i] & OPT) && (*tokens[i+1] == '>'))
   1535      1.1    kardel 			break;
   1536      1.1    kardel 		if (!getarg(tokens[i+1], (int)xcmd->arg[i], &pcmd.argval[i]))
   1537      1.1    kardel 			return;
   1538      1.1    kardel 		pcmd.nargs++;
   1539      1.1    kardel 	}
   1540      1.1    kardel 
   1541      1.1    kardel 	i++;
   1542      1.1    kardel 	if (i < ntok && *tokens[i] == '>') {
   1543      1.1    kardel 		char *fname;
   1544      1.1    kardel 
   1545      1.1    kardel 		if (*(tokens[i]+1) != '\0')
   1546      1.1    kardel 			fname = tokens[i]+1;
   1547      1.1    kardel 		else if ((i+1) < ntok)
   1548      1.1    kardel 			fname = tokens[i+1];
   1549      1.1    kardel 		else {
   1550      1.1    kardel 			(void) fprintf(stderr, "***No file for redirect\n");
   1551      1.1    kardel 			return;
   1552      1.1    kardel 		}
   1553      1.1    kardel 
   1554      1.1    kardel 		current_output = fopen(fname, "w");
   1555      1.1    kardel 		if (current_output == NULL) {
   1556      1.1    kardel 			(void) fprintf(stderr, "***Error opening %s: ", fname);
   1557      1.1    kardel 			perror("");
   1558      1.1    kardel 			return;
   1559      1.1    kardel 		}
   1560      1.1    kardel 		i = 1;		/* flag we need a close */
   1561      1.1    kardel 	} else {
   1562      1.1    kardel 		current_output = stdout;
   1563      1.1    kardel 		i = 0;		/* flag no close */
   1564      1.1    kardel 	}
   1565      1.1    kardel 
   1566      1.1    kardel 	if (interactive && setjmp(interrupt_buf)) {
   1567      1.1    kardel 		jump = 0;
   1568      1.1    kardel 		return;
   1569      1.1    kardel 	} else {
   1570      1.1    kardel 		jump++;
   1571      1.1    kardel 		(xcmd->handler)(&pcmd, current_output);
   1572      1.1    kardel 		jump = 0;	/* HMS: 961106: was after fclose() */
   1573      1.1    kardel 		if (i) (void) fclose(current_output);
   1574      1.1    kardel 	}
   1575  1.1.1.3  christos 
   1576  1.1.1.3  christos 	return;
   1577      1.1    kardel }
   1578      1.1    kardel 
   1579      1.1    kardel 
   1580      1.1    kardel /*
   1581      1.1    kardel  * tokenize - turn a command line into tokens
   1582      1.1    kardel  *
   1583  1.1.1.3  christos  * SK: Modified to allow a quoted string
   1584      1.1    kardel  *
   1585      1.1    kardel  * HMS: If the first character of the first token is a ':' then (after
   1586      1.1    kardel  * eating inter-token whitespace) the 2nd token is the rest of the line.
   1587      1.1    kardel  */
   1588      1.1    kardel 
   1589      1.1    kardel static void
   1590      1.1    kardel tokenize(
   1591      1.1    kardel 	const char *line,
   1592      1.1    kardel 	char **tokens,
   1593      1.1    kardel 	int *ntok
   1594      1.1    kardel 	)
   1595      1.1    kardel {
   1596      1.1    kardel 	register const char *cp;
   1597      1.1    kardel 	register char *sp;
   1598      1.1    kardel 	static char tspace[MAXLINE];
   1599      1.1    kardel 
   1600      1.1    kardel 	sp = tspace;
   1601      1.1    kardel 	cp = line;
   1602      1.1    kardel 	for (*ntok = 0; *ntok < MAXTOKENS; (*ntok)++) {
   1603      1.1    kardel 		tokens[*ntok] = sp;
   1604      1.1    kardel 
   1605      1.1    kardel 		/* Skip inter-token whitespace */
   1606      1.1    kardel 		while (ISSPACE(*cp))
   1607      1.1    kardel 		    cp++;
   1608      1.1    kardel 
   1609      1.1    kardel 		/* If we're at EOL we're done */
   1610      1.1    kardel 		if (ISEOL(*cp))
   1611      1.1    kardel 		    break;
   1612      1.1    kardel 
   1613      1.1    kardel 		/* If this is the 2nd token and the first token begins
   1614      1.1    kardel 		 * with a ':', then just grab to EOL.
   1615      1.1    kardel 		 */
   1616      1.1    kardel 
   1617      1.1    kardel 		if (*ntok == 1 && tokens[0][0] == ':') {
   1618      1.1    kardel 			do {
   1619  1.1.1.4  christos 				if (sp - tspace >= MAXLINE)
   1620  1.1.1.4  christos 					goto toobig;
   1621      1.1    kardel 				*sp++ = *cp++;
   1622      1.1    kardel 			} while (!ISEOL(*cp));
   1623      1.1    kardel 		}
   1624      1.1    kardel 
   1625      1.1    kardel 		/* Check if this token begins with a double quote.
   1626      1.1    kardel 		 * If yes, continue reading till the next double quote
   1627      1.1    kardel 		 */
   1628      1.1    kardel 		else if (*cp == '\"') {
   1629      1.1    kardel 			++cp;
   1630      1.1    kardel 			do {
   1631  1.1.1.4  christos 				if (sp - tspace >= MAXLINE)
   1632  1.1.1.4  christos 					goto toobig;
   1633      1.1    kardel 				*sp++ = *cp++;
   1634      1.1    kardel 			} while ((*cp != '\"') && !ISEOL(*cp));
   1635      1.1    kardel 			/* HMS: a missing closing " should be an error */
   1636      1.1    kardel 		}
   1637      1.1    kardel 		else {
   1638      1.1    kardel 			do {
   1639  1.1.1.4  christos 				if (sp - tspace >= MAXLINE)
   1640  1.1.1.4  christos 					goto toobig;
   1641      1.1    kardel 				*sp++ = *cp++;
   1642      1.1    kardel 			} while ((*cp != '\"') && !ISSPACE(*cp) && !ISEOL(*cp));
   1643      1.1    kardel 			/* HMS: Why check for a " in the previous line? */
   1644      1.1    kardel 		}
   1645      1.1    kardel 
   1646  1.1.1.4  christos 		if (sp - tspace >= MAXLINE)
   1647  1.1.1.4  christos 			goto toobig;
   1648      1.1    kardel 		*sp++ = '\0';
   1649      1.1    kardel 	}
   1650  1.1.1.4  christos 	return;
   1651  1.1.1.4  christos 
   1652  1.1.1.4  christos   toobig:
   1653  1.1.1.4  christos 	*ntok = 0;
   1654  1.1.1.4  christos 	fprintf(stderr,
   1655  1.1.1.4  christos 		"***Line `%s' is too big\n",
   1656  1.1.1.4  christos 		line);
   1657  1.1.1.4  christos 	return;
   1658      1.1    kardel }
   1659      1.1    kardel 
   1660      1.1    kardel 
   1661      1.1    kardel /*
   1662      1.1    kardel  * getarg - interpret an argument token
   1663      1.1    kardel  */
   1664      1.1    kardel static int
   1665      1.1    kardel getarg(
   1666  1.1.1.3  christos 	const char *str,
   1667      1.1    kardel 	int code,
   1668      1.1    kardel 	arg_v *argp
   1669      1.1    kardel 	)
   1670      1.1    kardel {
   1671  1.1.1.3  christos 	u_long ul;
   1672      1.1    kardel 
   1673      1.1    kardel 	switch (code & ~OPT) {
   1674  1.1.1.3  christos 	case NTP_STR:
   1675      1.1    kardel 		argp->string = str;
   1676      1.1    kardel 		break;
   1677  1.1.1.3  christos 
   1678  1.1.1.3  christos 	case NTP_ADD:
   1679  1.1.1.3  christos 		if (!getnetnum(str, &argp->netnum, NULL, 0))
   1680      1.1    kardel 			return 0;
   1681      1.1    kardel 		break;
   1682  1.1.1.3  christos 
   1683  1.1.1.3  christos 	case NTP_UINT:
   1684  1.1.1.3  christos 		if ('&' == str[0]) {
   1685  1.1.1.3  christos 			if (!atouint(&str[1], &ul)) {
   1686  1.1.1.3  christos 				fprintf(stderr,
   1687  1.1.1.3  christos 					"***Association index `%s' invalid/undecodable\n",
   1688  1.1.1.3  christos 					str);
   1689      1.1    kardel 				return 0;
   1690      1.1    kardel 			}
   1691  1.1.1.3  christos 			if (0 == numassoc) {
   1692  1.1.1.3  christos 				dogetassoc(stdout);
   1693  1.1.1.3  christos 				if (0 == numassoc) {
   1694  1.1.1.3  christos 					fprintf(stderr,
   1695  1.1.1.3  christos 						"***No associations found, `%s' unknown\n",
   1696  1.1.1.3  christos 						str);
   1697      1.1    kardel 					return 0;
   1698      1.1    kardel 				}
   1699      1.1    kardel 			}
   1700  1.1.1.3  christos 			ul = min(ul, numassoc);
   1701  1.1.1.3  christos 			argp->uval = assoc_cache[ul - 1].assid;
   1702      1.1    kardel 			break;
   1703      1.1    kardel 		}
   1704  1.1.1.3  christos 		if (!atouint(str, &argp->uval)) {
   1705  1.1.1.3  christos 			fprintf(stderr, "***Illegal unsigned value %s\n",
   1706  1.1.1.3  christos 				str);
   1707  1.1.1.3  christos 			return 0;
   1708      1.1    kardel 		}
   1709  1.1.1.3  christos 		break;
   1710      1.1    kardel 
   1711  1.1.1.3  christos 	case NTP_INT:
   1712  1.1.1.3  christos 		if (!atoint(str, &argp->ival)) {
   1713  1.1.1.3  christos 			fprintf(stderr, "***Illegal integer value %s\n",
   1714  1.1.1.3  christos 				str);
   1715  1.1.1.3  christos 			return 0;
   1716      1.1    kardel 		}
   1717      1.1    kardel 		break;
   1718  1.1.1.3  christos 
   1719  1.1.1.3  christos 	case IP_VERSION:
   1720  1.1.1.3  christos 		if (!strcmp("-6", str)) {
   1721  1.1.1.3  christos 			argp->ival = 6;
   1722  1.1.1.3  christos 		} else if (!strcmp("-4", str)) {
   1723  1.1.1.3  christos 			argp->ival = 4;
   1724  1.1.1.3  christos 		} else {
   1725  1.1.1.3  christos 			fprintf(stderr, "***Version must be either 4 or 6\n");
   1726      1.1    kardel 			return 0;
   1727      1.1    kardel 		}
   1728      1.1    kardel 		break;
   1729      1.1    kardel 	}
   1730      1.1    kardel 
   1731      1.1    kardel 	return 1;
   1732      1.1    kardel }
   1733      1.1    kardel #endif	/* !BUILD_AS_LIB */
   1734      1.1    kardel 
   1735      1.1    kardel 
   1736      1.1    kardel /*
   1737      1.1    kardel  * findcmd - find a command in a command description table
   1738      1.1    kardel  */
   1739      1.1    kardel static int
   1740      1.1    kardel findcmd(
   1741  1.1.1.3  christos 	const char *	str,
   1742  1.1.1.3  christos 	struct xcmd *	clist1,
   1743  1.1.1.3  christos 	struct xcmd *	clist2,
   1744  1.1.1.3  christos 	struct xcmd **	cmd
   1745      1.1    kardel 	)
   1746      1.1    kardel {
   1747  1.1.1.3  christos 	struct xcmd *cl;
   1748  1.1.1.3  christos 	int clen;
   1749      1.1    kardel 	int nmatch;
   1750      1.1    kardel 	struct xcmd *nearmatch = NULL;
   1751      1.1    kardel 	struct xcmd *clist;
   1752      1.1    kardel 
   1753      1.1    kardel 	clen = strlen(str);
   1754      1.1    kardel 	nmatch = 0;
   1755      1.1    kardel 	if (clist1 != 0)
   1756      1.1    kardel 	    clist = clist1;
   1757      1.1    kardel 	else if (clist2 != 0)
   1758      1.1    kardel 	    clist = clist2;
   1759      1.1    kardel 	else
   1760      1.1    kardel 	    return 0;
   1761      1.1    kardel 
   1762      1.1    kardel     again:
   1763      1.1    kardel 	for (cl = clist; cl->keyword != 0; cl++) {
   1764      1.1    kardel 		/* do a first character check, for efficiency */
   1765      1.1    kardel 		if (*str != *(cl->keyword))
   1766      1.1    kardel 		    continue;
   1767      1.1    kardel 		if (strncmp(str, cl->keyword, (unsigned)clen) == 0) {
   1768      1.1    kardel 			/*
   1769      1.1    kardel 			 * Could be extact match, could be approximate.
   1770      1.1    kardel 			 * Is exact if the length of the keyword is the
   1771      1.1    kardel 			 * same as the str.
   1772      1.1    kardel 			 */
   1773      1.1    kardel 			if (*((cl->keyword) + clen) == '\0') {
   1774      1.1    kardel 				*cmd = cl;
   1775      1.1    kardel 				return 1;
   1776      1.1    kardel 			}
   1777      1.1    kardel 			nmatch++;
   1778      1.1    kardel 			nearmatch = cl;
   1779      1.1    kardel 		}
   1780      1.1    kardel 	}
   1781      1.1    kardel 
   1782      1.1    kardel 	/*
   1783      1.1    kardel 	 * See if there is more to do.  If so, go again.  Sorry about the
   1784      1.1    kardel 	 * goto, too much looking at BSD sources...
   1785      1.1    kardel 	 */
   1786      1.1    kardel 	if (clist == clist1 && clist2 != 0) {
   1787      1.1    kardel 		clist = clist2;
   1788      1.1    kardel 		goto again;
   1789      1.1    kardel 	}
   1790      1.1    kardel 
   1791      1.1    kardel 	/*
   1792      1.1    kardel 	 * If we got extactly 1 near match, use it, else return number
   1793      1.1    kardel 	 * of matches.
   1794      1.1    kardel 	 */
   1795      1.1    kardel 	if (nmatch == 1) {
   1796      1.1    kardel 		*cmd = nearmatch;
   1797      1.1    kardel 		return 1;
   1798      1.1    kardel 	}
   1799      1.1    kardel 	return nmatch;
   1800      1.1    kardel }
   1801      1.1    kardel 
   1802      1.1    kardel 
   1803      1.1    kardel /*
   1804      1.1    kardel  * getnetnum - given a host name, return its net number
   1805      1.1    kardel  *	       and (optional) full name
   1806      1.1    kardel  */
   1807      1.1    kardel int
   1808      1.1    kardel getnetnum(
   1809      1.1    kardel 	const char *hname,
   1810      1.1    kardel 	sockaddr_u *num,
   1811      1.1    kardel 	char *fullhost,
   1812      1.1    kardel 	int af
   1813      1.1    kardel 	)
   1814      1.1    kardel {
   1815      1.1    kardel 	struct addrinfo hints, *ai = NULL;
   1816      1.1    kardel 
   1817  1.1.1.2    kardel 	ZERO(hints);
   1818      1.1    kardel 	hints.ai_flags = AI_CANONNAME;
   1819      1.1    kardel #ifdef AI_ADDRCONFIG
   1820      1.1    kardel 	hints.ai_flags |= AI_ADDRCONFIG;
   1821      1.1    kardel #endif
   1822  1.1.1.3  christos 
   1823  1.1.1.2    kardel 	/*
   1824  1.1.1.2    kardel 	 * decodenetnum only works with addresses, but handles syntax
   1825  1.1.1.2    kardel 	 * that getaddrinfo doesn't:  [2001::1]:1234
   1826  1.1.1.2    kardel 	 */
   1827      1.1    kardel 	if (decodenetnum(hname, num)) {
   1828  1.1.1.2    kardel 		if (fullhost != NULL)
   1829  1.1.1.2    kardel 			getnameinfo(&num->sa, SOCKLEN(num), fullhost,
   1830  1.1.1.2    kardel 				    LENHOSTNAME, NULL, 0, 0);
   1831      1.1    kardel 		return 1;
   1832      1.1    kardel 	} else if (getaddrinfo(hname, "ntp", &hints, &ai) == 0) {
   1833  1.1.1.3  christos 		INSIST(sizeof(*num) >= ai->ai_addrlen);
   1834  1.1.1.2    kardel 		memcpy(num, ai->ai_addr, ai->ai_addrlen);
   1835  1.1.1.2    kardel 		if (fullhost != NULL) {
   1836  1.1.1.3  christos 			if (ai->ai_canonname != NULL)
   1837  1.1.1.3  christos 				strlcpy(fullhost, ai->ai_canonname,
   1838  1.1.1.2    kardel 					LENHOSTNAME);
   1839  1.1.1.3  christos 			else
   1840  1.1.1.2    kardel 				getnameinfo(&num->sa, SOCKLEN(num),
   1841  1.1.1.2    kardel 					    fullhost, LENHOSTNAME, NULL,
   1842  1.1.1.2    kardel 					    0, 0);
   1843  1.1.1.2    kardel 		}
   1844  1.1.1.3  christos 		freeaddrinfo(ai);
   1845      1.1    kardel 		return 1;
   1846      1.1    kardel 	}
   1847  1.1.1.2    kardel 	fprintf(stderr, "***Can't find host %s\n", hname);
   1848  1.1.1.2    kardel 
   1849  1.1.1.2    kardel 	return 0;
   1850      1.1    kardel }
   1851      1.1    kardel 
   1852  1.1.1.3  christos 
   1853      1.1    kardel /*
   1854      1.1    kardel  * nntohost - convert network number to host name.  This routine enforces
   1855      1.1    kardel  *	       the showhostnames setting.
   1856      1.1    kardel  */
   1857  1.1.1.3  christos const char *
   1858      1.1    kardel nntohost(
   1859      1.1    kardel 	sockaddr_u *netnum
   1860      1.1    kardel 	)
   1861      1.1    kardel {
   1862  1.1.1.2    kardel 	return nntohost_col(netnum, LIB_BUFLENGTH - 1, FALSE);
   1863  1.1.1.2    kardel }
   1864  1.1.1.2    kardel 
   1865  1.1.1.2    kardel 
   1866  1.1.1.2    kardel /*
   1867  1.1.1.2    kardel  * nntohost_col - convert network number to host name in fixed width.
   1868  1.1.1.2    kardel  *		  This routine enforces the showhostnames setting.
   1869  1.1.1.2    kardel  *		  When displaying hostnames longer than the width,
   1870  1.1.1.2    kardel  *		  the first part of the hostname is displayed.  When
   1871  1.1.1.2    kardel  *		  displaying numeric addresses longer than the width,
   1872  1.1.1.2    kardel  *		  Such as IPv6 addresses, the caller decides whether
   1873  1.1.1.2    kardel  *		  the first or last of the numeric address is used.
   1874  1.1.1.2    kardel  */
   1875  1.1.1.3  christos const char *
   1876  1.1.1.2    kardel nntohost_col(
   1877  1.1.1.2    kardel 	sockaddr_u *	addr,
   1878  1.1.1.2    kardel 	size_t		width,
   1879  1.1.1.2    kardel 	int		preserve_lowaddrbits
   1880  1.1.1.2    kardel 	)
   1881  1.1.1.2    kardel {
   1882  1.1.1.2    kardel 	const char *	out;
   1883  1.1.1.2    kardel 
   1884  1.1.1.3  christos 	if (!showhostnames || SOCK_UNSPEC(addr)) {
   1885  1.1.1.2    kardel 		if (preserve_lowaddrbits)
   1886  1.1.1.2    kardel 			out = trunc_left(stoa(addr), width);
   1887  1.1.1.2    kardel 		else
   1888  1.1.1.2    kardel 			out = trunc_right(stoa(addr), width);
   1889  1.1.1.2    kardel 	} else if (ISREFCLOCKADR(addr)) {
   1890  1.1.1.2    kardel 		out = refnumtoa(addr);
   1891  1.1.1.2    kardel 	} else {
   1892  1.1.1.2    kardel 		out = trunc_right(socktohost(addr), width);
   1893  1.1.1.2    kardel 	}
   1894  1.1.1.2    kardel 	return out;
   1895      1.1    kardel }
   1896      1.1    kardel 
   1897      1.1    kardel 
   1898      1.1    kardel /*
   1899  1.1.1.3  christos  * nntohostp() is the same as nntohost() plus a :port suffix
   1900  1.1.1.3  christos  */
   1901  1.1.1.3  christos const char *
   1902  1.1.1.3  christos nntohostp(
   1903  1.1.1.3  christos 	sockaddr_u *netnum
   1904  1.1.1.3  christos 	)
   1905  1.1.1.3  christos {
   1906  1.1.1.3  christos 	const char *	hostn;
   1907  1.1.1.3  christos 	char *		buf;
   1908  1.1.1.3  christos 
   1909  1.1.1.3  christos 	if (!showhostnames || SOCK_UNSPEC(netnum))
   1910  1.1.1.3  christos 		return sptoa(netnum);
   1911  1.1.1.3  christos 	else if (ISREFCLOCKADR(netnum))
   1912  1.1.1.3  christos 		return refnumtoa(netnum);
   1913  1.1.1.3  christos 
   1914  1.1.1.3  christos 	hostn = socktohost(netnum);
   1915  1.1.1.3  christos 	LIB_GETBUF(buf);
   1916  1.1.1.3  christos 	snprintf(buf, LIB_BUFLENGTH, "%s:%u", hostn, SRCPORT(netnum));
   1917  1.1.1.3  christos 
   1918  1.1.1.3  christos 	return buf;
   1919  1.1.1.3  christos }
   1920  1.1.1.3  christos 
   1921  1.1.1.3  christos /*
   1922      1.1    kardel  * rtdatetolfp - decode an RT-11 date into an l_fp
   1923      1.1    kardel  */
   1924      1.1    kardel static int
   1925      1.1    kardel rtdatetolfp(
   1926      1.1    kardel 	char *str,
   1927      1.1    kardel 	l_fp *lfp
   1928      1.1    kardel 	)
   1929      1.1    kardel {
   1930      1.1    kardel 	register char *cp;
   1931      1.1    kardel 	register int i;
   1932      1.1    kardel 	struct calendar cal;
   1933      1.1    kardel 	char buf[4];
   1934      1.1    kardel 
   1935      1.1    kardel 	cal.yearday = 0;
   1936      1.1    kardel 
   1937      1.1    kardel 	/*
   1938      1.1    kardel 	 * An RT-11 date looks like:
   1939      1.1    kardel 	 *
   1940      1.1    kardel 	 * d[d]-Mth-y[y] hh:mm:ss
   1941      1.1    kardel 	 *
   1942      1.1    kardel 	 * (No docs, but assume 4-digit years are also legal...)
   1943      1.1    kardel 	 *
   1944      1.1    kardel 	 * d[d]-Mth-y[y[y[y]]] hh:mm:ss
   1945      1.1    kardel 	 */
   1946      1.1    kardel 	cp = str;
   1947      1.1    kardel 	if (!isdigit((int)*cp)) {
   1948      1.1    kardel 		if (*cp == '-') {
   1949      1.1    kardel 			/*
   1950      1.1    kardel 			 * Catch special case
   1951      1.1    kardel 			 */
   1952      1.1    kardel 			L_CLR(lfp);
   1953      1.1    kardel 			return 1;
   1954      1.1    kardel 		}
   1955      1.1    kardel 		return 0;
   1956      1.1    kardel 	}
   1957      1.1    kardel 
   1958      1.1    kardel 	cal.monthday = (u_char) (*cp++ - '0');	/* ascii dependent */
   1959      1.1    kardel 	if (isdigit((int)*cp)) {
   1960      1.1    kardel 		cal.monthday = (u_char)((cal.monthday << 3) + (cal.monthday << 1));
   1961      1.1    kardel 		cal.monthday = (u_char)(cal.monthday + *cp++ - '0');
   1962      1.1    kardel 	}
   1963      1.1    kardel 
   1964      1.1    kardel 	if (*cp++ != '-')
   1965      1.1    kardel 	    return 0;
   1966  1.1.1.3  christos 
   1967      1.1    kardel 	for (i = 0; i < 3; i++)
   1968      1.1    kardel 	    buf[i] = *cp++;
   1969      1.1    kardel 	buf[3] = '\0';
   1970      1.1    kardel 
   1971      1.1    kardel 	for (i = 0; i < 12; i++)
   1972      1.1    kardel 	    if (STREQ(buf, months[i]))
   1973      1.1    kardel 		break;
   1974      1.1    kardel 	if (i == 12)
   1975      1.1    kardel 	    return 0;
   1976      1.1    kardel 	cal.month = (u_char)(i + 1);
   1977      1.1    kardel 
   1978      1.1    kardel 	if (*cp++ != '-')
   1979      1.1    kardel 	    return 0;
   1980  1.1.1.3  christos 
   1981      1.1    kardel 	if (!isdigit((int)*cp))
   1982      1.1    kardel 	    return 0;
   1983      1.1    kardel 	cal.year = (u_short)(*cp++ - '0');
   1984      1.1    kardel 	if (isdigit((int)*cp)) {
   1985      1.1    kardel 		cal.year = (u_short)((cal.year << 3) + (cal.year << 1));
   1986      1.1    kardel 		cal.year = (u_short)(*cp++ - '0');
   1987      1.1    kardel 	}
   1988      1.1    kardel 	if (isdigit((int)*cp)) {
   1989      1.1    kardel 		cal.year = (u_short)((cal.year << 3) + (cal.year << 1));
   1990      1.1    kardel 		cal.year = (u_short)(cal.year + *cp++ - '0');
   1991      1.1    kardel 	}
   1992      1.1    kardel 	if (isdigit((int)*cp)) {
   1993      1.1    kardel 		cal.year = (u_short)((cal.year << 3) + (cal.year << 1));
   1994      1.1    kardel 		cal.year = (u_short)(cal.year + *cp++ - '0');
   1995      1.1    kardel 	}
   1996      1.1    kardel 
   1997      1.1    kardel 	/*
   1998      1.1    kardel 	 * Catch special case.  If cal.year == 0 this is a zero timestamp.
   1999      1.1    kardel 	 */
   2000      1.1    kardel 	if (cal.year == 0) {
   2001      1.1    kardel 		L_CLR(lfp);
   2002      1.1    kardel 		return 1;
   2003      1.1    kardel 	}
   2004      1.1    kardel 
   2005      1.1    kardel 	if (*cp++ != ' ' || !isdigit((int)*cp))
   2006      1.1    kardel 	    return 0;
   2007      1.1    kardel 	cal.hour = (u_char)(*cp++ - '0');
   2008      1.1    kardel 	if (isdigit((int)*cp)) {
   2009      1.1    kardel 		cal.hour = (u_char)((cal.hour << 3) + (cal.hour << 1));
   2010      1.1    kardel 		cal.hour = (u_char)(cal.hour + *cp++ - '0');
   2011      1.1    kardel 	}
   2012      1.1    kardel 
   2013      1.1    kardel 	if (*cp++ != ':' || !isdigit((int)*cp))
   2014      1.1    kardel 	    return 0;
   2015      1.1    kardel 	cal.minute = (u_char)(*cp++ - '0');
   2016      1.1    kardel 	if (isdigit((int)*cp)) {
   2017      1.1    kardel 		cal.minute = (u_char)((cal.minute << 3) + (cal.minute << 1));
   2018      1.1    kardel 		cal.minute = (u_char)(cal.minute + *cp++ - '0');
   2019      1.1    kardel 	}
   2020      1.1    kardel 
   2021      1.1    kardel 	if (*cp++ != ':' || !isdigit((int)*cp))
   2022      1.1    kardel 	    return 0;
   2023      1.1    kardel 	cal.second = (u_char)(*cp++ - '0');
   2024      1.1    kardel 	if (isdigit((int)*cp)) {
   2025      1.1    kardel 		cal.second = (u_char)((cal.second << 3) + (cal.second << 1));
   2026      1.1    kardel 		cal.second = (u_char)(cal.second + *cp++ - '0');
   2027      1.1    kardel 	}
   2028      1.1    kardel 
   2029      1.1    kardel 	/*
   2030      1.1    kardel 	 * For RT-11, 1972 seems to be the pivot year
   2031      1.1    kardel 	 */
   2032      1.1    kardel 	if (cal.year < 72)
   2033      1.1    kardel 		cal.year += 2000;
   2034      1.1    kardel 	if (cal.year < 100)
   2035      1.1    kardel 		cal.year += 1900;
   2036      1.1    kardel 
   2037      1.1    kardel 	lfp->l_ui = caltontp(&cal);
   2038      1.1    kardel 	lfp->l_uf = 0;
   2039      1.1    kardel 	return 1;
   2040      1.1    kardel }
   2041      1.1    kardel 
   2042      1.1    kardel 
   2043      1.1    kardel /*
   2044      1.1    kardel  * decodets - decode a timestamp into an l_fp format number, with
   2045      1.1    kardel  *	      consideration of fuzzball formats.
   2046      1.1    kardel  */
   2047      1.1    kardel int
   2048      1.1    kardel decodets(
   2049      1.1    kardel 	char *str,
   2050      1.1    kardel 	l_fp *lfp
   2051      1.1    kardel 	)
   2052      1.1    kardel {
   2053  1.1.1.2    kardel 	char *cp;
   2054  1.1.1.2    kardel 	char buf[30];
   2055  1.1.1.2    kardel 	size_t b;
   2056  1.1.1.2    kardel 
   2057      1.1    kardel 	/*
   2058      1.1    kardel 	 * If it starts with a 0x, decode as hex.
   2059      1.1    kardel 	 */
   2060      1.1    kardel 	if (*str == '0' && (*(str+1) == 'x' || *(str+1) == 'X'))
   2061      1.1    kardel 		return hextolfp(str+2, lfp);
   2062      1.1    kardel 
   2063      1.1    kardel 	/*
   2064      1.1    kardel 	 * If it starts with a '"', try it as an RT-11 date.
   2065      1.1    kardel 	 */
   2066      1.1    kardel 	if (*str == '"') {
   2067  1.1.1.2    kardel 		cp = str + 1;
   2068  1.1.1.2    kardel 		b = 0;
   2069  1.1.1.2    kardel 		while ('"' != *cp && '\0' != *cp &&
   2070  1.1.1.2    kardel 		       b < COUNTOF(buf) - 1)
   2071  1.1.1.2    kardel 			buf[b++] = *cp++;
   2072  1.1.1.2    kardel 		buf[b] = '\0';
   2073      1.1    kardel 		return rtdatetolfp(buf, lfp);
   2074      1.1    kardel 	}
   2075      1.1    kardel 
   2076      1.1    kardel 	/*
   2077      1.1    kardel 	 * Might still be hex.  Check out the first character.  Talk
   2078      1.1    kardel 	 * about heuristics!
   2079      1.1    kardel 	 */
   2080      1.1    kardel 	if ((*str >= 'A' && *str <= 'F') || (*str >= 'a' && *str <= 'f'))
   2081      1.1    kardel 		return hextolfp(str, lfp);
   2082      1.1    kardel 
   2083      1.1    kardel 	/*
   2084      1.1    kardel 	 * Try it as a decimal.  If this fails, try as an unquoted
   2085      1.1    kardel 	 * RT-11 date.  This code should go away eventually.
   2086      1.1    kardel 	 */
   2087      1.1    kardel 	if (atolfp(str, lfp))
   2088      1.1    kardel 		return 1;
   2089      1.1    kardel 
   2090      1.1    kardel 	return rtdatetolfp(str, lfp);
   2091      1.1    kardel }
   2092      1.1    kardel 
   2093      1.1    kardel 
   2094      1.1    kardel /*
   2095      1.1    kardel  * decodetime - decode a time value.  It should be in milliseconds
   2096      1.1    kardel  */
   2097      1.1    kardel int
   2098      1.1    kardel decodetime(
   2099      1.1    kardel 	char *str,
   2100      1.1    kardel 	l_fp *lfp
   2101      1.1    kardel 	)
   2102      1.1    kardel {
   2103      1.1    kardel 	return mstolfp(str, lfp);
   2104      1.1    kardel }
   2105      1.1    kardel 
   2106      1.1    kardel 
   2107      1.1    kardel /*
   2108      1.1    kardel  * decodeint - decode an integer
   2109      1.1    kardel  */
   2110      1.1    kardel int
   2111      1.1    kardel decodeint(
   2112      1.1    kardel 	char *str,
   2113      1.1    kardel 	long *val
   2114      1.1    kardel 	)
   2115      1.1    kardel {
   2116      1.1    kardel 	if (*str == '0') {
   2117      1.1    kardel 		if (*(str+1) == 'x' || *(str+1) == 'X')
   2118      1.1    kardel 		    return hextoint(str+2, (u_long *)val);
   2119      1.1    kardel 		return octtoint(str, (u_long *)val);
   2120      1.1    kardel 	}
   2121      1.1    kardel 	return atoint(str, val);
   2122      1.1    kardel }
   2123      1.1    kardel 
   2124      1.1    kardel 
   2125      1.1    kardel /*
   2126      1.1    kardel  * decodeuint - decode an unsigned integer
   2127      1.1    kardel  */
   2128      1.1    kardel int
   2129      1.1    kardel decodeuint(
   2130      1.1    kardel 	char *str,
   2131      1.1    kardel 	u_long *val
   2132      1.1    kardel 	)
   2133      1.1    kardel {
   2134      1.1    kardel 	if (*str == '0') {
   2135      1.1    kardel 		if (*(str + 1) == 'x' || *(str + 1) == 'X')
   2136      1.1    kardel 			return (hextoint(str + 2, val));
   2137      1.1    kardel 		return (octtoint(str, val));
   2138      1.1    kardel 	}
   2139      1.1    kardel 	return (atouint(str, val));
   2140      1.1    kardel }
   2141      1.1    kardel 
   2142      1.1    kardel 
   2143      1.1    kardel /*
   2144      1.1    kardel  * decodearr - decode an array of time values
   2145      1.1    kardel  */
   2146      1.1    kardel static int
   2147      1.1    kardel decodearr(
   2148      1.1    kardel 	char *str,
   2149      1.1    kardel 	int *narr,
   2150      1.1    kardel 	l_fp *lfparr
   2151      1.1    kardel 	)
   2152      1.1    kardel {
   2153      1.1    kardel 	register char *cp, *bp;
   2154      1.1    kardel 	register l_fp *lfp;
   2155      1.1    kardel 	char buf[60];
   2156      1.1    kardel 
   2157      1.1    kardel 	lfp = lfparr;
   2158      1.1    kardel 	cp = str;
   2159      1.1    kardel 	*narr = 0;
   2160      1.1    kardel 
   2161      1.1    kardel 	while (*narr < 8) {
   2162      1.1    kardel 		while (isspace((int)*cp))
   2163      1.1    kardel 		    cp++;
   2164      1.1    kardel 		if (*cp == '\0')
   2165      1.1    kardel 		    break;
   2166      1.1    kardel 
   2167      1.1    kardel 		bp = buf;
   2168      1.1    kardel 		while (!isspace((int)*cp) && *cp != '\0')
   2169      1.1    kardel 		    *bp++ = *cp++;
   2170      1.1    kardel 		*bp++ = '\0';
   2171      1.1    kardel 
   2172      1.1    kardel 		if (!decodetime(buf, lfp))
   2173      1.1    kardel 		    return 0;
   2174      1.1    kardel 		(*narr)++;
   2175      1.1    kardel 		lfp++;
   2176      1.1    kardel 	}
   2177      1.1    kardel 	return 1;
   2178      1.1    kardel }
   2179      1.1    kardel 
   2180      1.1    kardel 
   2181      1.1    kardel /*
   2182      1.1    kardel  * Finally, the built in command handlers
   2183      1.1    kardel  */
   2184      1.1    kardel 
   2185      1.1    kardel /*
   2186      1.1    kardel  * help - tell about commands, or details of a particular command
   2187      1.1    kardel  */
   2188      1.1    kardel static void
   2189      1.1    kardel help(
   2190      1.1    kardel 	struct parse *pcmd,
   2191      1.1    kardel 	FILE *fp
   2192      1.1    kardel 	)
   2193      1.1    kardel {
   2194      1.1    kardel 	struct xcmd *xcp = NULL;	/* quiet warning */
   2195  1.1.1.3  christos 	const char *cmd;
   2196      1.1    kardel 	const char *list[100];
   2197  1.1.1.2    kardel 	size_t word, words;
   2198  1.1.1.2    kardel 	size_t row, rows;
   2199  1.1.1.2    kardel 	size_t col, cols;
   2200  1.1.1.2    kardel 	size_t length;
   2201      1.1    kardel 
   2202      1.1    kardel 	if (pcmd->nargs == 0) {
   2203      1.1    kardel 		words = 0;
   2204  1.1.1.2    kardel 		for (xcp = builtins; xcp->keyword != NULL; xcp++) {
   2205  1.1.1.3  christos 			if (*(xcp->keyword) != '?' &&
   2206  1.1.1.3  christos 			    words < COUNTOF(list))
   2207      1.1    kardel 				list[words++] = xcp->keyword;
   2208      1.1    kardel 		}
   2209  1.1.1.2    kardel 		for (xcp = opcmds; xcp->keyword != NULL; xcp++)
   2210  1.1.1.3  christos 			if (words < COUNTOF(list))
   2211  1.1.1.3  christos 				list[words++] = xcp->keyword;
   2212      1.1    kardel 
   2213  1.1.1.3  christos 		qsort((void *)list, words, sizeof(list[0]), helpsort);
   2214      1.1    kardel 		col = 0;
   2215      1.1    kardel 		for (word = 0; word < words; word++) {
   2216  1.1.1.3  christos 			length = strlen(list[word]);
   2217  1.1.1.2    kardel 			col = max(col, length);
   2218      1.1    kardel 		}
   2219      1.1    kardel 
   2220      1.1    kardel 		cols = SCREENWIDTH / ++col;
   2221      1.1    kardel 		rows = (words + cols - 1) / cols;
   2222      1.1    kardel 
   2223  1.1.1.2    kardel 		fprintf(fp, "ntpq commands:\n");
   2224      1.1    kardel 
   2225      1.1    kardel 		for (row = 0; row < rows; row++) {
   2226  1.1.1.2    kardel 			for (word = row; word < words; word += rows)
   2227  1.1.1.3  christos 				fprintf(fp, "%-*.*s", (int)col,
   2228  1.1.1.3  christos 					(int)col - 1, list[word]);
   2229  1.1.1.2    kardel 			fprintf(fp, "\n");
   2230      1.1    kardel 		}
   2231      1.1    kardel 	} else {
   2232      1.1    kardel 		cmd = pcmd->argval[0].string;
   2233      1.1    kardel 		words = findcmd(cmd, builtins, opcmds, &xcp);
   2234      1.1    kardel 		if (words == 0) {
   2235  1.1.1.2    kardel 			fprintf(stderr,
   2236  1.1.1.2    kardel 				"Command `%s' is unknown\n", cmd);
   2237      1.1    kardel 			return;
   2238      1.1    kardel 		} else if (words >= 2) {
   2239  1.1.1.2    kardel 			fprintf(stderr,
   2240  1.1.1.2    kardel 				"Command `%s' is ambiguous\n", cmd);
   2241      1.1    kardel 			return;
   2242      1.1    kardel 		}
   2243  1.1.1.2    kardel 		fprintf(fp, "function: %s\n", xcp->comment);
   2244      1.1    kardel 		printusage(xcp, fp);
   2245      1.1    kardel 	}
   2246      1.1    kardel }
   2247      1.1    kardel 
   2248      1.1    kardel 
   2249      1.1    kardel /*
   2250      1.1    kardel  * helpsort - do hostname qsort comparisons
   2251      1.1    kardel  */
   2252      1.1    kardel static int
   2253      1.1    kardel helpsort(
   2254      1.1    kardel 	const void *t1,
   2255      1.1    kardel 	const void *t2
   2256      1.1    kardel 	)
   2257      1.1    kardel {
   2258  1.1.1.2    kardel 	const char * const *	name1 = t1;
   2259  1.1.1.2    kardel 	const char * const *	name2 = t2;
   2260      1.1    kardel 
   2261      1.1    kardel 	return strcmp(*name1, *name2);
   2262      1.1    kardel }
   2263      1.1    kardel 
   2264      1.1    kardel 
   2265      1.1    kardel /*
   2266      1.1    kardel  * printusage - print usage information for a command
   2267      1.1    kardel  */
   2268      1.1    kardel static void
   2269      1.1    kardel printusage(
   2270      1.1    kardel 	struct xcmd *xcp,
   2271      1.1    kardel 	FILE *fp
   2272      1.1    kardel 	)
   2273      1.1    kardel {
   2274      1.1    kardel 	register int i;
   2275      1.1    kardel 
   2276  1.1.1.3  christos 	/* XXX: Do we need to warn about extra args here too? */
   2277  1.1.1.3  christos 
   2278      1.1    kardel 	(void) fprintf(fp, "usage: %s", xcp->keyword);
   2279      1.1    kardel 	for (i = 0; i < MAXARGS && xcp->arg[i] != NO; i++) {
   2280      1.1    kardel 		if (xcp->arg[i] & OPT)
   2281      1.1    kardel 		    (void) fprintf(fp, " [ %s ]", xcp->desc[i]);
   2282      1.1    kardel 		else
   2283      1.1    kardel 		    (void) fprintf(fp, " %s", xcp->desc[i]);
   2284      1.1    kardel 	}
   2285      1.1    kardel 	(void) fprintf(fp, "\n");
   2286      1.1    kardel }
   2287      1.1    kardel 
   2288      1.1    kardel 
   2289      1.1    kardel /*
   2290      1.1    kardel  * timeout - set time out time
   2291      1.1    kardel  */
   2292      1.1    kardel static void
   2293      1.1    kardel timeout(
   2294      1.1    kardel 	struct parse *pcmd,
   2295      1.1    kardel 	FILE *fp
   2296      1.1    kardel 	)
   2297      1.1    kardel {
   2298      1.1    kardel 	int val;
   2299      1.1    kardel 
   2300      1.1    kardel 	if (pcmd->nargs == 0) {
   2301      1.1    kardel 		val = (int)tvout.tv_sec * 1000 + tvout.tv_usec / 1000;
   2302      1.1    kardel 		(void) fprintf(fp, "primary timeout %d ms\n", val);
   2303      1.1    kardel 	} else {
   2304      1.1    kardel 		tvout.tv_sec = pcmd->argval[0].uval / 1000;
   2305      1.1    kardel 		tvout.tv_usec = (pcmd->argval[0].uval - ((long)tvout.tv_sec * 1000))
   2306      1.1    kardel 			* 1000;
   2307      1.1    kardel 	}
   2308      1.1    kardel }
   2309      1.1    kardel 
   2310      1.1    kardel 
   2311      1.1    kardel /*
   2312      1.1    kardel  * auth_delay - set delay for auth requests
   2313      1.1    kardel  */
   2314      1.1    kardel static void
   2315      1.1    kardel auth_delay(
   2316      1.1    kardel 	struct parse *pcmd,
   2317      1.1    kardel 	FILE *fp
   2318      1.1    kardel 	)
   2319      1.1    kardel {
   2320      1.1    kardel 	int isneg;
   2321      1.1    kardel 	u_long val;
   2322      1.1    kardel 
   2323      1.1    kardel 	if (pcmd->nargs == 0) {
   2324      1.1    kardel 		val = delay_time.l_ui * 1000 + delay_time.l_uf / 4294967;
   2325      1.1    kardel 		(void) fprintf(fp, "delay %lu ms\n", val);
   2326      1.1    kardel 	} else {
   2327      1.1    kardel 		if (pcmd->argval[0].ival < 0) {
   2328      1.1    kardel 			isneg = 1;
   2329      1.1    kardel 			val = (u_long)(-pcmd->argval[0].ival);
   2330      1.1    kardel 		} else {
   2331      1.1    kardel 			isneg = 0;
   2332      1.1    kardel 			val = (u_long)pcmd->argval[0].ival;
   2333      1.1    kardel 		}
   2334      1.1    kardel 
   2335      1.1    kardel 		delay_time.l_ui = val / 1000;
   2336      1.1    kardel 		val %= 1000;
   2337      1.1    kardel 		delay_time.l_uf = val * 4294967;	/* 2**32/1000 */
   2338      1.1    kardel 
   2339      1.1    kardel 		if (isneg)
   2340      1.1    kardel 		    L_NEG(&delay_time);
   2341      1.1    kardel 	}
   2342      1.1    kardel }
   2343      1.1    kardel 
   2344      1.1    kardel 
   2345      1.1    kardel /*
   2346      1.1    kardel  * host - set the host we are dealing with.
   2347      1.1    kardel  */
   2348      1.1    kardel static void
   2349      1.1    kardel host(
   2350      1.1    kardel 	struct parse *pcmd,
   2351      1.1    kardel 	FILE *fp
   2352      1.1    kardel 	)
   2353      1.1    kardel {
   2354      1.1    kardel 	int i;
   2355      1.1    kardel 
   2356      1.1    kardel 	if (pcmd->nargs == 0) {
   2357      1.1    kardel 		if (havehost)
   2358      1.1    kardel 			(void) fprintf(fp, "current host is %s\n",
   2359      1.1    kardel 					   currenthost);
   2360      1.1    kardel 		else
   2361      1.1    kardel 			(void) fprintf(fp, "no current host\n");
   2362      1.1    kardel 		return;
   2363      1.1    kardel 	}
   2364      1.1    kardel 
   2365      1.1    kardel 	i = 0;
   2366      1.1    kardel 	ai_fam_templ = ai_fam_default;
   2367      1.1    kardel 	if (pcmd->nargs == 2) {
   2368      1.1    kardel 		if (!strcmp("-4", pcmd->argval[i].string))
   2369      1.1    kardel 			ai_fam_templ = AF_INET;
   2370      1.1    kardel 		else if (!strcmp("-6", pcmd->argval[i].string))
   2371      1.1    kardel 			ai_fam_templ = AF_INET6;
   2372  1.1.1.3  christos 		else
   2373  1.1.1.3  christos 			goto no_change;
   2374      1.1    kardel 		i = 1;
   2375      1.1    kardel 	}
   2376  1.1.1.3  christos 	if (openhost(pcmd->argval[i].string, ai_fam_templ)) {
   2377  1.1.1.3  christos 		fprintf(fp, "current host set to %s\n", currenthost);
   2378      1.1    kardel 	} else {
   2379  1.1.1.3  christos     no_change:
   2380      1.1    kardel 		if (havehost)
   2381  1.1.1.3  christos 			fprintf(fp, "current host remains %s\n",
   2382  1.1.1.3  christos 				currenthost);
   2383      1.1    kardel 		else
   2384  1.1.1.3  christos 			fprintf(fp, "still no current host\n");
   2385      1.1    kardel 	}
   2386      1.1    kardel }
   2387      1.1    kardel 
   2388      1.1    kardel 
   2389      1.1    kardel /*
   2390      1.1    kardel  * poll - do one (or more) polls of the host via NTP
   2391      1.1    kardel  */
   2392      1.1    kardel /*ARGSUSED*/
   2393      1.1    kardel static void
   2394      1.1    kardel ntp_poll(
   2395      1.1    kardel 	struct parse *pcmd,
   2396      1.1    kardel 	FILE *fp
   2397      1.1    kardel 	)
   2398      1.1    kardel {
   2399      1.1    kardel 	(void) fprintf(fp, "poll not implemented yet\n");
   2400      1.1    kardel }
   2401      1.1    kardel 
   2402      1.1    kardel 
   2403      1.1    kardel /*
   2404      1.1    kardel  * keyid - get a keyid to use for authenticating requests
   2405      1.1    kardel  */
   2406      1.1    kardel static void
   2407      1.1    kardel keyid(
   2408      1.1    kardel 	struct parse *pcmd,
   2409      1.1    kardel 	FILE *fp
   2410      1.1    kardel 	)
   2411      1.1    kardel {
   2412      1.1    kardel 	if (pcmd->nargs == 0) {
   2413      1.1    kardel 		if (info_auth_keyid == 0)
   2414      1.1    kardel 		    (void) fprintf(fp, "no keyid defined\n");
   2415      1.1    kardel 		else
   2416      1.1    kardel 		    (void) fprintf(fp, "keyid is %lu\n", (u_long)info_auth_keyid);
   2417      1.1    kardel 	} else {
   2418      1.1    kardel 		/* allow zero so that keyid can be cleared. */
   2419      1.1    kardel 		if(pcmd->argval[0].uval > NTP_MAXKEY)
   2420      1.1    kardel 		    (void) fprintf(fp, "Invalid key identifier\n");
   2421      1.1    kardel 		info_auth_keyid = pcmd->argval[0].uval;
   2422      1.1    kardel 	}
   2423      1.1    kardel }
   2424      1.1    kardel 
   2425      1.1    kardel /*
   2426      1.1    kardel  * keytype - get type of key to use for authenticating requests
   2427      1.1    kardel  */
   2428      1.1    kardel static void
   2429      1.1    kardel keytype(
   2430      1.1    kardel 	struct parse *pcmd,
   2431      1.1    kardel 	FILE *fp
   2432      1.1    kardel 	)
   2433      1.1    kardel {
   2434      1.1    kardel 	const char *	digest_name;
   2435      1.1    kardel 	size_t		digest_len;
   2436      1.1    kardel 	int		key_type;
   2437      1.1    kardel 
   2438      1.1    kardel 	if (!pcmd->nargs) {
   2439  1.1.1.2    kardel 		fprintf(fp, "keytype is %s with %lu octet digests\n",
   2440      1.1    kardel 			keytype_name(info_auth_keytype),
   2441  1.1.1.2    kardel 			(u_long)info_auth_hashlen);
   2442      1.1    kardel 		return;
   2443      1.1    kardel 	}
   2444      1.1    kardel 
   2445      1.1    kardel 	digest_name = pcmd->argval[0].string;
   2446      1.1    kardel 	digest_len = 0;
   2447      1.1    kardel 	key_type = keytype_from_text(digest_name, &digest_len);
   2448      1.1    kardel 
   2449      1.1    kardel 	if (!key_type) {
   2450  1.1.1.6  christos 		fprintf(fp, "keytype is not valid. "
   2451      1.1    kardel #ifdef OPENSSL
   2452  1.1.1.6  christos 			"Type \"help keytype\" for the available digest types.\n");
   2453      1.1    kardel #else
   2454  1.1.1.6  christos 			"Only \"md5\" is available.\n");
   2455      1.1    kardel #endif
   2456      1.1    kardel 		return;
   2457      1.1    kardel 	}
   2458      1.1    kardel 
   2459      1.1    kardel 	info_auth_keytype = key_type;
   2460      1.1    kardel 	info_auth_hashlen = digest_len;
   2461      1.1    kardel }
   2462      1.1    kardel 
   2463      1.1    kardel 
   2464      1.1    kardel /*
   2465      1.1    kardel  * passwd - get an authentication key
   2466      1.1    kardel  */
   2467      1.1    kardel /*ARGSUSED*/
   2468      1.1    kardel static void
   2469      1.1    kardel passwd(
   2470      1.1    kardel 	struct parse *pcmd,
   2471      1.1    kardel 	FILE *fp
   2472      1.1    kardel 	)
   2473      1.1    kardel {
   2474  1.1.1.3  christos 	const char *pass;
   2475      1.1    kardel 
   2476      1.1    kardel 	if (info_auth_keyid == 0) {
   2477  1.1.1.3  christos 		info_auth_keyid = getkeyid("Keyid: ");
   2478  1.1.1.3  christos 		if (info_auth_keyid == 0) {
   2479  1.1.1.3  christos 			(void)fprintf(fp, "Keyid must be defined\n");
   2480      1.1    kardel 			return;
   2481      1.1    kardel 		}
   2482      1.1    kardel 	}
   2483  1.1.1.2    kardel 	if (pcmd->nargs >= 1)
   2484  1.1.1.2    kardel 		pass = pcmd->argval[0].string;
   2485      1.1    kardel 	else {
   2486  1.1.1.2    kardel 		pass = getpass_keytype(info_auth_keytype);
   2487  1.1.1.2    kardel 		if ('\0' == pass[0]) {
   2488  1.1.1.2    kardel 			fprintf(fp, "Password unchanged\n");
   2489  1.1.1.2    kardel 			return;
   2490  1.1.1.2    kardel 		}
   2491      1.1    kardel 	}
   2492  1.1.1.3  christos 	authusekey(info_auth_keyid, info_auth_keytype,
   2493  1.1.1.3  christos 		   (const u_char *)pass);
   2494  1.1.1.2    kardel 	authtrust(info_auth_keyid, 1);
   2495      1.1    kardel }
   2496      1.1    kardel 
   2497      1.1    kardel 
   2498      1.1    kardel /*
   2499      1.1    kardel  * hostnames - set the showhostnames flag
   2500      1.1    kardel  */
   2501      1.1    kardel static void
   2502      1.1    kardel hostnames(
   2503      1.1    kardel 	struct parse *pcmd,
   2504      1.1    kardel 	FILE *fp
   2505      1.1    kardel 	)
   2506      1.1    kardel {
   2507      1.1    kardel 	if (pcmd->nargs == 0) {
   2508      1.1    kardel 		if (showhostnames)
   2509      1.1    kardel 		    (void) fprintf(fp, "hostnames being shown\n");
   2510      1.1    kardel 		else
   2511      1.1    kardel 		    (void) fprintf(fp, "hostnames not being shown\n");
   2512      1.1    kardel 	} else {
   2513      1.1    kardel 		if (STREQ(pcmd->argval[0].string, "yes"))
   2514      1.1    kardel 		    showhostnames = 1;
   2515      1.1    kardel 		else if (STREQ(pcmd->argval[0].string, "no"))
   2516      1.1    kardel 		    showhostnames = 0;
   2517      1.1    kardel 		else
   2518      1.1    kardel 		    (void)fprintf(stderr, "What?\n");
   2519      1.1    kardel 	}
   2520      1.1    kardel }
   2521      1.1    kardel 
   2522      1.1    kardel 
   2523      1.1    kardel 
   2524      1.1    kardel /*
   2525      1.1    kardel  * setdebug - set/change debugging level
   2526      1.1    kardel  */
   2527      1.1    kardel static void
   2528      1.1    kardel setdebug(
   2529      1.1    kardel 	struct parse *pcmd,
   2530      1.1    kardel 	FILE *fp
   2531      1.1    kardel 	)
   2532      1.1    kardel {
   2533      1.1    kardel 	if (pcmd->nargs == 0) {
   2534      1.1    kardel 		(void) fprintf(fp, "debug level is %d\n", debug);
   2535      1.1    kardel 		return;
   2536      1.1    kardel 	} else if (STREQ(pcmd->argval[0].string, "no")) {
   2537      1.1    kardel 		debug = 0;
   2538      1.1    kardel 	} else if (STREQ(pcmd->argval[0].string, "more")) {
   2539      1.1    kardel 		debug++;
   2540      1.1    kardel 	} else if (STREQ(pcmd->argval[0].string, "less")) {
   2541      1.1    kardel 		debug--;
   2542      1.1    kardel 	} else {
   2543      1.1    kardel 		(void) fprintf(fp, "What?\n");
   2544      1.1    kardel 		return;
   2545      1.1    kardel 	}
   2546      1.1    kardel 	(void) fprintf(fp, "debug level set to %d\n", debug);
   2547      1.1    kardel }
   2548      1.1    kardel 
   2549      1.1    kardel 
   2550      1.1    kardel /*
   2551      1.1    kardel  * quit - stop this nonsense
   2552      1.1    kardel  */
   2553      1.1    kardel /*ARGSUSED*/
   2554      1.1    kardel static void
   2555      1.1    kardel quit(
   2556      1.1    kardel 	struct parse *pcmd,
   2557      1.1    kardel 	FILE *fp
   2558      1.1    kardel 	)
   2559      1.1    kardel {
   2560      1.1    kardel 	if (havehost)
   2561      1.1    kardel 	    closesocket(sockfd);	/* cleanliness next to godliness */
   2562      1.1    kardel 	exit(0);
   2563      1.1    kardel }
   2564      1.1    kardel 
   2565      1.1    kardel 
   2566      1.1    kardel /*
   2567      1.1    kardel  * version - print the current version number
   2568      1.1    kardel  */
   2569      1.1    kardel /*ARGSUSED*/
   2570      1.1    kardel static void
   2571      1.1    kardel version(
   2572      1.1    kardel 	struct parse *pcmd,
   2573      1.1    kardel 	FILE *fp
   2574      1.1    kardel 	)
   2575      1.1    kardel {
   2576      1.1    kardel 
   2577      1.1    kardel 	(void) fprintf(fp, "%s\n", Version);
   2578      1.1    kardel 	return;
   2579      1.1    kardel }
   2580      1.1    kardel 
   2581      1.1    kardel 
   2582      1.1    kardel /*
   2583      1.1    kardel  * raw - set raw mode output
   2584      1.1    kardel  */
   2585      1.1    kardel /*ARGSUSED*/
   2586      1.1    kardel static void
   2587      1.1    kardel raw(
   2588      1.1    kardel 	struct parse *pcmd,
   2589      1.1    kardel 	FILE *fp
   2590      1.1    kardel 	)
   2591      1.1    kardel {
   2592      1.1    kardel 	rawmode = 1;
   2593      1.1    kardel 	(void) fprintf(fp, "Output set to raw\n");
   2594      1.1    kardel }
   2595      1.1    kardel 
   2596      1.1    kardel 
   2597      1.1    kardel /*
   2598      1.1    kardel  * cooked - set cooked mode output
   2599      1.1    kardel  */
   2600      1.1    kardel /*ARGSUSED*/
   2601      1.1    kardel static void
   2602      1.1    kardel cooked(
   2603      1.1    kardel 	struct parse *pcmd,
   2604      1.1    kardel 	FILE *fp
   2605      1.1    kardel 	)
   2606      1.1    kardel {
   2607      1.1    kardel 	rawmode = 0;
   2608      1.1    kardel 	(void) fprintf(fp, "Output set to cooked\n");
   2609      1.1    kardel 	return;
   2610      1.1    kardel }
   2611      1.1    kardel 
   2612      1.1    kardel 
   2613      1.1    kardel /*
   2614      1.1    kardel  * authenticate - always authenticate requests to this host
   2615      1.1    kardel  */
   2616      1.1    kardel static void
   2617      1.1    kardel authenticate(
   2618      1.1    kardel 	struct parse *pcmd,
   2619      1.1    kardel 	FILE *fp
   2620      1.1    kardel 	)
   2621      1.1    kardel {
   2622      1.1    kardel 	if (pcmd->nargs == 0) {
   2623      1.1    kardel 		if (always_auth) {
   2624      1.1    kardel 			(void) fprintf(fp,
   2625      1.1    kardel 				       "authenticated requests being sent\n");
   2626      1.1    kardel 		} else
   2627      1.1    kardel 		    (void) fprintf(fp,
   2628      1.1    kardel 				   "unauthenticated requests being sent\n");
   2629      1.1    kardel 	} else {
   2630      1.1    kardel 		if (STREQ(pcmd->argval[0].string, "yes")) {
   2631      1.1    kardel 			always_auth = 1;
   2632      1.1    kardel 		} else if (STREQ(pcmd->argval[0].string, "no")) {
   2633      1.1    kardel 			always_auth = 0;
   2634      1.1    kardel 		} else
   2635      1.1    kardel 		    (void)fprintf(stderr, "What?\n");
   2636      1.1    kardel 	}
   2637      1.1    kardel }
   2638      1.1    kardel 
   2639      1.1    kardel 
   2640      1.1    kardel /*
   2641      1.1    kardel  * ntpversion - choose the NTP version to use
   2642      1.1    kardel  */
   2643      1.1    kardel static void
   2644      1.1    kardel ntpversion(
   2645      1.1    kardel 	struct parse *pcmd,
   2646      1.1    kardel 	FILE *fp
   2647      1.1    kardel 	)
   2648      1.1    kardel {
   2649      1.1    kardel 	if (pcmd->nargs == 0) {
   2650      1.1    kardel 		(void) fprintf(fp,
   2651      1.1    kardel 			       "NTP version being claimed is %d\n", pktversion);
   2652      1.1    kardel 	} else {
   2653      1.1    kardel 		if (pcmd->argval[0].uval < NTP_OLDVERSION
   2654      1.1    kardel 		    || pcmd->argval[0].uval > NTP_VERSION) {
   2655      1.1    kardel 			(void) fprintf(stderr, "versions %d to %d, please\n",
   2656      1.1    kardel 				       NTP_OLDVERSION, NTP_VERSION);
   2657      1.1    kardel 		} else {
   2658      1.1    kardel 			pktversion = (u_char) pcmd->argval[0].uval;
   2659      1.1    kardel 		}
   2660      1.1    kardel 	}
   2661      1.1    kardel }
   2662      1.1    kardel 
   2663      1.1    kardel 
   2664  1.1.1.5  christos static void __attribute__((__format__(__printf__, 1, 0)))
   2665  1.1.1.5  christos vwarning(const char *fmt, va_list ap)
   2666  1.1.1.5  christos {
   2667  1.1.1.5  christos 	int serrno = errno;
   2668  1.1.1.5  christos 	(void) fprintf(stderr, "%s: ", progname);
   2669  1.1.1.5  christos 	vfprintf(stderr, fmt, ap);
   2670  1.1.1.5  christos 	(void) fprintf(stderr, ": %s", strerror(serrno));
   2671  1.1.1.5  christos }
   2672  1.1.1.5  christos 
   2673      1.1    kardel /*
   2674      1.1    kardel  * warning - print a warning message
   2675      1.1    kardel  */
   2676  1.1.1.5  christos static void __attribute__((__format__(__printf__, 1, 2)))
   2677      1.1    kardel warning(
   2678      1.1    kardel 	const char *fmt,
   2679  1.1.1.5  christos 	...
   2680      1.1    kardel 	)
   2681      1.1    kardel {
   2682  1.1.1.5  christos 	va_list ap;
   2683  1.1.1.5  christos 	va_start(ap, fmt);
   2684  1.1.1.5  christos 	vwarning(fmt, ap);
   2685  1.1.1.5  christos 	va_end(ap);
   2686      1.1    kardel }
   2687      1.1    kardel 
   2688      1.1    kardel 
   2689      1.1    kardel /*
   2690      1.1    kardel  * error - print a message and exit
   2691      1.1    kardel  */
   2692  1.1.1.5  christos static void __attribute__((__format__(__printf__, 1, 2)))
   2693      1.1    kardel error(
   2694      1.1    kardel 	const char *fmt,
   2695  1.1.1.5  christos 	...
   2696      1.1    kardel 	)
   2697      1.1    kardel {
   2698  1.1.1.5  christos 	va_list ap;
   2699  1.1.1.5  christos 	va_start(ap, fmt);
   2700  1.1.1.5  christos 	vwarning(fmt, ap);
   2701  1.1.1.5  christos 	va_end(ap);
   2702      1.1    kardel 	exit(1);
   2703      1.1    kardel }
   2704      1.1    kardel /*
   2705      1.1    kardel  * getkeyid - prompt the user for a keyid to use
   2706      1.1    kardel  */
   2707      1.1    kardel static u_long
   2708      1.1    kardel getkeyid(
   2709      1.1    kardel 	const char *keyprompt
   2710      1.1    kardel 	)
   2711      1.1    kardel {
   2712  1.1.1.2    kardel 	int c;
   2713      1.1    kardel 	FILE *fi;
   2714      1.1    kardel 	char pbuf[20];
   2715  1.1.1.2    kardel 	size_t i;
   2716  1.1.1.2    kardel 	size_t ilim;
   2717      1.1    kardel 
   2718      1.1    kardel #ifndef SYS_WINNT
   2719      1.1    kardel 	if ((fi = fdopen(open("/dev/tty", 2), "r")) == NULL)
   2720      1.1    kardel #else
   2721      1.1    kardel 	if ((fi = _fdopen(open("CONIN$", _O_TEXT), "r")) == NULL)
   2722      1.1    kardel #endif /* SYS_WINNT */
   2723      1.1    kardel 		fi = stdin;
   2724  1.1.1.2    kardel 	else
   2725      1.1    kardel 		setbuf(fi, (char *)NULL);
   2726      1.1    kardel 	fprintf(stderr, "%s", keyprompt); fflush(stderr);
   2727  1.1.1.2    kardel 	for (i = 0, ilim = COUNTOF(pbuf) - 1;
   2728  1.1.1.2    kardel 	     i < ilim && (c = getc(fi)) != '\n' && c != EOF;
   2729  1.1.1.2    kardel 	     )
   2730  1.1.1.2    kardel 		pbuf[i++] = (char)c;
   2731  1.1.1.2    kardel 	pbuf[i] = '\0';
   2732      1.1    kardel 	if (fi != stdin)
   2733  1.1.1.2    kardel 		fclose(fi);
   2734      1.1    kardel 
   2735      1.1    kardel 	return (u_long) atoi(pbuf);
   2736      1.1    kardel }
   2737      1.1    kardel 
   2738      1.1    kardel 
   2739      1.1    kardel /*
   2740      1.1    kardel  * atoascii - printable-ize possibly ascii data using the character
   2741      1.1    kardel  *	      transformations cat -v uses.
   2742      1.1    kardel  */
   2743      1.1    kardel static void
   2744      1.1    kardel atoascii(
   2745      1.1    kardel 	const char *in,
   2746      1.1    kardel 	size_t in_octets,
   2747      1.1    kardel 	char *out,
   2748      1.1    kardel 	size_t out_octets
   2749      1.1    kardel 	)
   2750      1.1    kardel {
   2751  1.1.1.3  christos 	const u_char *	pchIn;
   2752  1.1.1.3  christos 	const u_char *	pchInLimit;
   2753  1.1.1.3  christos 	u_char *	pchOut;
   2754  1.1.1.3  christos 	u_char		c;
   2755      1.1    kardel 
   2756      1.1    kardel 	pchIn = (const u_char *)in;
   2757      1.1    kardel 	pchInLimit = pchIn + in_octets;
   2758      1.1    kardel 	pchOut = (u_char *)out;
   2759      1.1    kardel 
   2760      1.1    kardel 	if (NULL == pchIn) {
   2761      1.1    kardel 		if (0 < out_octets)
   2762      1.1    kardel 			*pchOut = '\0';
   2763      1.1    kardel 		return;
   2764      1.1    kardel 	}
   2765      1.1    kardel 
   2766      1.1    kardel #define	ONEOUT(c)					\
   2767      1.1    kardel do {							\
   2768      1.1    kardel 	if (0 == --out_octets) {			\
   2769      1.1    kardel 		*pchOut = '\0';				\
   2770      1.1    kardel 		return;					\
   2771      1.1    kardel 	}						\
   2772      1.1    kardel 	*pchOut++ = (c);				\
   2773      1.1    kardel } while (0)
   2774      1.1    kardel 
   2775      1.1    kardel 	for (	; pchIn < pchInLimit; pchIn++) {
   2776      1.1    kardel 		c = *pchIn;
   2777      1.1    kardel 		if ('\0' == c)
   2778      1.1    kardel 			break;
   2779      1.1    kardel 		if (c & 0x80) {
   2780      1.1    kardel 			ONEOUT('M');
   2781      1.1    kardel 			ONEOUT('-');
   2782      1.1    kardel 			c &= 0x7f;
   2783      1.1    kardel 		}
   2784      1.1    kardel 		if (c < ' ') {
   2785      1.1    kardel 			ONEOUT('^');
   2786      1.1    kardel 			ONEOUT((u_char)(c + '@'));
   2787      1.1    kardel 		} else if (0x7f == c) {
   2788      1.1    kardel 			ONEOUT('^');
   2789      1.1    kardel 			ONEOUT('?');
   2790      1.1    kardel 		} else
   2791      1.1    kardel 			ONEOUT(c);
   2792      1.1    kardel 	}
   2793      1.1    kardel 	ONEOUT('\0');
   2794      1.1    kardel 
   2795      1.1    kardel #undef ONEOUT
   2796      1.1    kardel }
   2797      1.1    kardel 
   2798      1.1    kardel 
   2799      1.1    kardel /*
   2800      1.1    kardel  * makeascii - print possibly ascii data using the character
   2801      1.1    kardel  *	       transformations that cat -v uses.
   2802      1.1    kardel  */
   2803  1.1.1.2    kardel void
   2804      1.1    kardel makeascii(
   2805      1.1    kardel 	int length,
   2806  1.1.1.2    kardel 	const char *data,
   2807      1.1    kardel 	FILE *fp
   2808      1.1    kardel 	)
   2809      1.1    kardel {
   2810  1.1.1.2    kardel 	const u_char *data_u_char;
   2811  1.1.1.2    kardel 	const u_char *cp;
   2812  1.1.1.2    kardel 	int c;
   2813  1.1.1.2    kardel 
   2814  1.1.1.2    kardel 	data_u_char = (const u_char *)data;
   2815      1.1    kardel 
   2816  1.1.1.2    kardel 	for (cp = data_u_char; cp < data_u_char + length; cp++) {
   2817      1.1    kardel 		c = (int)*cp;
   2818      1.1    kardel 		if (c & 0x80) {
   2819      1.1    kardel 			putc('M', fp);
   2820      1.1    kardel 			putc('-', fp);
   2821      1.1    kardel 			c &= 0x7f;
   2822      1.1    kardel 		}
   2823      1.1    kardel 
   2824      1.1    kardel 		if (c < ' ') {
   2825      1.1    kardel 			putc('^', fp);
   2826      1.1    kardel 			putc(c + '@', fp);
   2827      1.1    kardel 		} else if (0x7f == c) {
   2828      1.1    kardel 			putc('^', fp);
   2829      1.1    kardel 			putc('?', fp);
   2830      1.1    kardel 		} else
   2831      1.1    kardel 			putc(c, fp);
   2832      1.1    kardel 	}
   2833      1.1    kardel }
   2834      1.1    kardel 
   2835      1.1    kardel 
   2836      1.1    kardel /*
   2837      1.1    kardel  * asciize - same thing as makeascii except add a newline
   2838      1.1    kardel  */
   2839      1.1    kardel void
   2840      1.1    kardel asciize(
   2841      1.1    kardel 	int length,
   2842      1.1    kardel 	char *data,
   2843      1.1    kardel 	FILE *fp
   2844      1.1    kardel 	)
   2845      1.1    kardel {
   2846      1.1    kardel 	makeascii(length, data, fp);
   2847      1.1    kardel 	putc('\n', fp);
   2848      1.1    kardel }
   2849      1.1    kardel 
   2850      1.1    kardel 
   2851      1.1    kardel /*
   2852  1.1.1.2    kardel  * truncate string to fit clipping excess at end.
   2853  1.1.1.2    kardel  *	"too long"	->	"too l"
   2854  1.1.1.2    kardel  * Used for hostnames.
   2855  1.1.1.2    kardel  */
   2856  1.1.1.3  christos const char *
   2857  1.1.1.2    kardel trunc_right(
   2858  1.1.1.2    kardel 	const char *	src,
   2859  1.1.1.2    kardel 	size_t		width
   2860  1.1.1.2    kardel 	)
   2861  1.1.1.2    kardel {
   2862  1.1.1.2    kardel 	size_t	sl;
   2863  1.1.1.2    kardel 	char *	out;
   2864  1.1.1.2    kardel 
   2865  1.1.1.3  christos 
   2866  1.1.1.2    kardel 	sl = strlen(src);
   2867  1.1.1.2    kardel 	if (sl > width && LIB_BUFLENGTH - 1 > width && width > 0) {
   2868  1.1.1.2    kardel 		LIB_GETBUF(out);
   2869  1.1.1.2    kardel 		memcpy(out, src, width);
   2870  1.1.1.2    kardel 		out[width] = '\0';
   2871  1.1.1.2    kardel 
   2872  1.1.1.2    kardel 		return out;
   2873  1.1.1.2    kardel 	}
   2874  1.1.1.2    kardel 
   2875  1.1.1.2    kardel 	return src;
   2876  1.1.1.2    kardel }
   2877  1.1.1.2    kardel 
   2878  1.1.1.2    kardel 
   2879  1.1.1.2    kardel /*
   2880  1.1.1.2    kardel  * truncate string to fit by preserving right side and using '_' to hint
   2881  1.1.1.2    kardel  *	"too long"	->	"_long"
   2882  1.1.1.2    kardel  * Used for local IPv6 addresses, where low bits differentiate.
   2883  1.1.1.2    kardel  */
   2884  1.1.1.3  christos const char *
   2885  1.1.1.2    kardel trunc_left(
   2886  1.1.1.2    kardel 	const char *	src,
   2887  1.1.1.2    kardel 	size_t		width
   2888  1.1.1.2    kardel 	)
   2889  1.1.1.2    kardel {
   2890  1.1.1.2    kardel 	size_t	sl;
   2891  1.1.1.2    kardel 	char *	out;
   2892  1.1.1.2    kardel 
   2893  1.1.1.2    kardel 
   2894  1.1.1.2    kardel 	sl = strlen(src);
   2895  1.1.1.2    kardel 	if (sl > width && LIB_BUFLENGTH - 1 > width && width > 1) {
   2896  1.1.1.2    kardel 		LIB_GETBUF(out);
   2897  1.1.1.2    kardel 		out[0] = '_';
   2898  1.1.1.2    kardel 		memcpy(&out[1], &src[sl + 1 - width], width);
   2899  1.1.1.2    kardel 
   2900  1.1.1.2    kardel 		return out;
   2901  1.1.1.2    kardel 	}
   2902  1.1.1.2    kardel 
   2903  1.1.1.2    kardel 	return src;
   2904  1.1.1.2    kardel }
   2905  1.1.1.2    kardel 
   2906  1.1.1.2    kardel 
   2907  1.1.1.2    kardel /*
   2908      1.1    kardel  * Some circular buffer space
   2909      1.1    kardel  */
   2910      1.1    kardel #define	CBLEN	80
   2911      1.1    kardel #define	NUMCB	6
   2912      1.1    kardel 
   2913      1.1    kardel char circ_buf[NUMCB][CBLEN];
   2914      1.1    kardel int nextcb = 0;
   2915      1.1    kardel 
   2916      1.1    kardel /*
   2917      1.1    kardel  * nextvar - find the next variable in the buffer
   2918      1.1    kardel  */
   2919      1.1    kardel int
   2920      1.1    kardel nextvar(
   2921      1.1    kardel 	int *datalen,
   2922  1.1.1.2    kardel 	const char **datap,
   2923      1.1    kardel 	char **vname,
   2924      1.1    kardel 	char **vvalue
   2925      1.1    kardel 	)
   2926      1.1    kardel {
   2927  1.1.1.2    kardel 	const char *cp;
   2928  1.1.1.3  christos 	const char *np;
   2929  1.1.1.2    kardel 	const char *cpend;
   2930  1.1.1.3  christos 	size_t srclen;
   2931  1.1.1.3  christos 	size_t len;
   2932      1.1    kardel 	static char name[MAXVARLEN];
   2933      1.1    kardel 	static char value[MAXVALLEN];
   2934      1.1    kardel 
   2935      1.1    kardel 	cp = *datap;
   2936      1.1    kardel 	cpend = cp + *datalen;
   2937      1.1    kardel 
   2938      1.1    kardel 	/*
   2939      1.1    kardel 	 * Space past commas and white space
   2940      1.1    kardel 	 */
   2941      1.1    kardel 	while (cp < cpend && (*cp == ',' || isspace((int)*cp)))
   2942  1.1.1.2    kardel 		cp++;
   2943  1.1.1.3  christos 	if (cp >= cpend)
   2944  1.1.1.2    kardel 		return 0;
   2945  1.1.1.3  christos 
   2946      1.1    kardel 	/*
   2947      1.1    kardel 	 * Copy name until we hit a ',', an '=', a '\r' or a '\n'.  Backspace
   2948      1.1    kardel 	 * over any white space and terminate it.
   2949      1.1    kardel 	 */
   2950  1.1.1.3  christos 	srclen = strcspn(cp, ",=\r\n");
   2951  1.1.1.3  christos 	srclen = min(srclen, (size_t)(cpend - cp));
   2952  1.1.1.3  christos 	len = srclen;
   2953  1.1.1.5  christos 	while (len > 0 && isspace((unsigned char)cp[len - 1]))
   2954  1.1.1.3  christos 		len--;
   2955  1.1.1.3  christos 	if (len > 0)
   2956  1.1.1.3  christos 		memcpy(name, cp, len);
   2957  1.1.1.3  christos 	name[len] = '\0';
   2958      1.1    kardel 	*vname = name;
   2959  1.1.1.3  christos 	cp += srclen;
   2960      1.1    kardel 
   2961      1.1    kardel 	/*
   2962      1.1    kardel 	 * Check if we hit the end of the buffer or a ','.  If so we are done.
   2963      1.1    kardel 	 */
   2964  1.1.1.3  christos 	if (cp >= cpend || *cp == ',' || *cp == '\r' || *cp == '\n') {
   2965  1.1.1.3  christos 		if (cp < cpend)
   2966  1.1.1.3  christos 			cp++;
   2967      1.1    kardel 		*datap = cp;
   2968      1.1    kardel 		*datalen = cpend - cp;
   2969  1.1.1.3  christos 		*vvalue = NULL;
   2970      1.1    kardel 		return 1;
   2971      1.1    kardel 	}
   2972      1.1    kardel 
   2973      1.1    kardel 	/*
   2974      1.1    kardel 	 * So far, so good.  Copy out the value
   2975      1.1    kardel 	 */
   2976      1.1    kardel 	cp++;	/* past '=' */
   2977  1.1.1.5  christos 	while (cp < cpend && (isspace((unsigned char)*cp) && *cp != '\r' && *cp != '\n'))
   2978  1.1.1.3  christos 		cp++;
   2979  1.1.1.3  christos 	np = cp;
   2980  1.1.1.3  christos 	if ('"' == *np) {
   2981  1.1.1.3  christos 		do {
   2982  1.1.1.3  christos 			np++;
   2983  1.1.1.3  christos 		} while (np < cpend && '"' != *np);
   2984  1.1.1.3  christos 		if (np < cpend && '"' == *np)
   2985  1.1.1.3  christos 			np++;
   2986  1.1.1.3  christos 	} else {
   2987  1.1.1.3  christos 		while (np < cpend && ',' != *np && '\r' != *np)
   2988  1.1.1.3  christos 			np++;
   2989      1.1    kardel 	}
   2990  1.1.1.3  christos 	len = np - cp;
   2991  1.1.1.3  christos 	if (np > cpend || len >= sizeof(value) ||
   2992  1.1.1.3  christos 	    (np < cpend && ',' != *np && '\r' != *np))
   2993  1.1.1.3  christos 		return 0;
   2994  1.1.1.3  christos 	memcpy(value, cp, len);
   2995      1.1    kardel 	/*
   2996      1.1    kardel 	 * Trim off any trailing whitespace
   2997      1.1    kardel 	 */
   2998  1.1.1.5  christos 	while (len > 0 && isspace((unsigned char)value[len - 1]))
   2999  1.1.1.3  christos 		len--;
   3000  1.1.1.3  christos 	value[len] = '\0';
   3001      1.1    kardel 
   3002      1.1    kardel 	/*
   3003      1.1    kardel 	 * Return this.  All done.
   3004      1.1    kardel 	 */
   3005  1.1.1.3  christos 	if (np < cpend && ',' == *np)
   3006  1.1.1.3  christos 		np++;
   3007  1.1.1.3  christos 	*datap = np;
   3008  1.1.1.3  christos 	*datalen = cpend - np;
   3009      1.1    kardel 	*vvalue = value;
   3010      1.1    kardel 	return 1;
   3011      1.1    kardel }
   3012      1.1    kardel 
   3013      1.1    kardel 
   3014  1.1.1.3  christos u_short
   3015  1.1.1.3  christos varfmt(const char * varname)
   3016  1.1.1.3  christos {
   3017  1.1.1.3  christos 	u_int n;
   3018      1.1    kardel 
   3019  1.1.1.3  christos 	for (n = 0; n < COUNTOF(cookedvars); n++)
   3020  1.1.1.3  christos 		if (!strcmp(varname, cookedvars[n].varname))
   3021  1.1.1.3  christos 			return cookedvars[n].fmt;
   3022  1.1.1.3  christos 
   3023  1.1.1.3  christos 	return PADDING;
   3024  1.1.1.3  christos }
   3025      1.1    kardel 
   3026      1.1    kardel 
   3027      1.1    kardel /*
   3028      1.1    kardel  * printvars - print variables returned in response packet
   3029      1.1    kardel  */
   3030      1.1    kardel void
   3031      1.1    kardel printvars(
   3032      1.1    kardel 	int length,
   3033  1.1.1.2    kardel 	const char *data,
   3034      1.1    kardel 	int status,
   3035      1.1    kardel 	int sttype,
   3036      1.1    kardel 	int quiet,
   3037      1.1    kardel 	FILE *fp
   3038      1.1    kardel 	)
   3039      1.1    kardel {
   3040      1.1    kardel 	if (rawmode)
   3041      1.1    kardel 	    rawprint(sttype, length, data, status, quiet, fp);
   3042      1.1    kardel 	else
   3043      1.1    kardel 	    cookedprint(sttype, length, data, status, quiet, fp);
   3044      1.1    kardel }
   3045      1.1    kardel 
   3046      1.1    kardel 
   3047      1.1    kardel /*
   3048      1.1    kardel  * rawprint - do a printout of the data in raw mode
   3049      1.1    kardel  */
   3050      1.1    kardel static void
   3051      1.1    kardel rawprint(
   3052      1.1    kardel 	int datatype,
   3053      1.1    kardel 	int length,
   3054  1.1.1.2    kardel 	const char *data,
   3055      1.1    kardel 	int status,
   3056      1.1    kardel 	int quiet,
   3057      1.1    kardel 	FILE *fp
   3058      1.1    kardel 	)
   3059      1.1    kardel {
   3060  1.1.1.2    kardel 	const char *cp;
   3061  1.1.1.2    kardel 	const char *cpend;
   3062      1.1    kardel 
   3063      1.1    kardel 	/*
   3064      1.1    kardel 	 * Essentially print the data as is.  We reformat unprintables, though.
   3065      1.1    kardel 	 */
   3066      1.1    kardel 	cp = data;
   3067      1.1    kardel 	cpend = data + length;
   3068      1.1    kardel 
   3069      1.1    kardel 	if (!quiet)
   3070      1.1    kardel 		(void) fprintf(fp, "status=0x%04x,\n", status);
   3071      1.1    kardel 
   3072      1.1    kardel 	while (cp < cpend) {
   3073      1.1    kardel 		if (*cp == '\r') {
   3074      1.1    kardel 			/*
   3075      1.1    kardel 			 * If this is a \r and the next character is a
   3076      1.1    kardel 			 * \n, supress this, else pretty print it.  Otherwise
   3077      1.1    kardel 			 * just output the character.
   3078      1.1    kardel 			 */
   3079      1.1    kardel 			if (cp == (cpend - 1) || *(cp + 1) != '\n')
   3080      1.1    kardel 			    makeascii(1, cp, fp);
   3081  1.1.1.5  christos 		} else if (isspace((unsigned char)*cp) || isprint((unsigned char)*cp))
   3082      1.1    kardel 			putc(*cp, fp);
   3083      1.1    kardel 		else
   3084      1.1    kardel 			makeascii(1, cp, fp);
   3085      1.1    kardel 		cp++;
   3086      1.1    kardel 	}
   3087      1.1    kardel }
   3088      1.1    kardel 
   3089      1.1    kardel 
   3090      1.1    kardel /*
   3091      1.1    kardel  * Global data used by the cooked output routines
   3092      1.1    kardel  */
   3093      1.1    kardel int out_chars;		/* number of characters output */
   3094      1.1    kardel int out_linecount;	/* number of characters output on this line */
   3095      1.1    kardel 
   3096      1.1    kardel 
   3097      1.1    kardel /*
   3098      1.1    kardel  * startoutput - get ready to do cooked output
   3099      1.1    kardel  */
   3100      1.1    kardel static void
   3101      1.1    kardel startoutput(void)
   3102      1.1    kardel {
   3103      1.1    kardel 	out_chars = 0;
   3104      1.1    kardel 	out_linecount = 0;
   3105      1.1    kardel }
   3106      1.1    kardel 
   3107      1.1    kardel 
   3108      1.1    kardel /*
   3109      1.1    kardel  * output - output a variable=value combination
   3110      1.1    kardel  */
   3111      1.1    kardel static void
   3112      1.1    kardel output(
   3113      1.1    kardel 	FILE *fp,
   3114  1.1.1.3  christos 	const char *name,
   3115  1.1.1.3  christos 	const char *value
   3116      1.1    kardel 	)
   3117      1.1    kardel {
   3118      1.1    kardel 	size_t len;
   3119      1.1    kardel 
   3120      1.1    kardel 	/* strlen of "name=value" */
   3121      1.1    kardel 	len = strlen(name) + 1 + strlen(value);
   3122      1.1    kardel 
   3123      1.1    kardel 	if (out_chars != 0) {
   3124      1.1    kardel 		out_chars += 2;
   3125      1.1    kardel 		if ((out_linecount + len + 2) > MAXOUTLINE) {
   3126      1.1    kardel 			fputs(",\n", fp);
   3127      1.1    kardel 			out_linecount = 0;
   3128      1.1    kardel 		} else {
   3129      1.1    kardel 			fputs(", ", fp);
   3130      1.1    kardel 			out_linecount += 2;
   3131      1.1    kardel 		}
   3132      1.1    kardel 	}
   3133      1.1    kardel 
   3134      1.1    kardel 	fputs(name, fp);
   3135      1.1    kardel 	putc('=', fp);
   3136      1.1    kardel 	fputs(value, fp);
   3137      1.1    kardel 	out_chars += len;
   3138      1.1    kardel 	out_linecount += len;
   3139      1.1    kardel }
   3140      1.1    kardel 
   3141      1.1    kardel 
   3142      1.1    kardel /*
   3143      1.1    kardel  * endoutput - terminate a block of cooked output
   3144      1.1    kardel  */
   3145      1.1    kardel static void
   3146      1.1    kardel endoutput(
   3147      1.1    kardel 	FILE *fp
   3148      1.1    kardel 	)
   3149      1.1    kardel {
   3150      1.1    kardel 	if (out_chars != 0)
   3151      1.1    kardel 		putc('\n', fp);
   3152      1.1    kardel }
   3153      1.1    kardel 
   3154      1.1    kardel 
   3155      1.1    kardel /*
   3156      1.1    kardel  * outputarr - output an array of values
   3157      1.1    kardel  */
   3158      1.1    kardel static void
   3159      1.1    kardel outputarr(
   3160      1.1    kardel 	FILE *fp,
   3161      1.1    kardel 	char *name,
   3162      1.1    kardel 	int narr,
   3163      1.1    kardel 	l_fp *lfp
   3164      1.1    kardel 	)
   3165      1.1    kardel {
   3166      1.1    kardel 	register char *bp;
   3167      1.1    kardel 	register char *cp;
   3168      1.1    kardel 	register int i;
   3169      1.1    kardel 	register int len;
   3170      1.1    kardel 	char buf[256];
   3171      1.1    kardel 
   3172      1.1    kardel 	bp = buf;
   3173      1.1    kardel 	/*
   3174      1.1    kardel 	 * Hack to align delay and offset values
   3175      1.1    kardel 	 */
   3176      1.1    kardel 	for (i = (int)strlen(name); i < 11; i++)
   3177      1.1    kardel 	    *bp++ = ' ';
   3178  1.1.1.3  christos 
   3179      1.1    kardel 	for (i = narr; i > 0; i--) {
   3180      1.1    kardel 		if (i != narr)
   3181      1.1    kardel 		    *bp++ = ' ';
   3182      1.1    kardel 		cp = lfptoms(lfp, 2);
   3183      1.1    kardel 		len = strlen(cp);
   3184      1.1    kardel 		if (len > 7) {
   3185      1.1    kardel 			cp[7] = '\0';
   3186      1.1    kardel 			len = 7;
   3187      1.1    kardel 		}
   3188      1.1    kardel 		while (len < 7) {
   3189      1.1    kardel 			*bp++ = ' ';
   3190      1.1    kardel 			len++;
   3191      1.1    kardel 		}
   3192      1.1    kardel 		while (*cp != '\0')
   3193      1.1    kardel 		    *bp++ = *cp++;
   3194      1.1    kardel 		lfp++;
   3195      1.1    kardel 	}
   3196      1.1    kardel 	*bp = '\0';
   3197      1.1    kardel 	output(fp, name, buf);
   3198      1.1    kardel }
   3199      1.1    kardel 
   3200      1.1    kardel static char *
   3201      1.1    kardel tstflags(
   3202      1.1    kardel 	u_long val
   3203      1.1    kardel 	)
   3204      1.1    kardel {
   3205  1.1.1.2    kardel 	register char *cp, *s;
   3206  1.1.1.2    kardel 	size_t cb;
   3207      1.1    kardel 	register int i;
   3208      1.1    kardel 	register const char *sep;
   3209      1.1    kardel 
   3210      1.1    kardel 	sep = "";
   3211      1.1    kardel 	i = 0;
   3212  1.1.1.2    kardel 	s = cp = circ_buf[nextcb];
   3213      1.1    kardel 	if (++nextcb >= NUMCB)
   3214  1.1.1.2    kardel 		nextcb = 0;
   3215  1.1.1.2    kardel 	cb = sizeof(circ_buf[0]);
   3216      1.1    kardel 
   3217  1.1.1.2    kardel 	snprintf(cp, cb, "%02lx", val);
   3218  1.1.1.2    kardel 	cp += strlen(cp);
   3219  1.1.1.2    kardel 	cb -= strlen(cp);
   3220      1.1    kardel 	if (!val) {
   3221  1.1.1.3  christos 		strlcat(cp, " ok", cb);
   3222  1.1.1.2    kardel 		cp += strlen(cp);
   3223  1.1.1.2    kardel 		cb -= strlen(cp);
   3224      1.1    kardel 	} else {
   3225  1.1.1.2    kardel 		if (cb) {
   3226  1.1.1.2    kardel 			*cp++ = ' ';
   3227  1.1.1.2    kardel 			cb--;
   3228  1.1.1.2    kardel 		}
   3229  1.1.1.5  christos 		for (i = 0; i < (int)COUNTOF(tstflagnames); i++) {
   3230      1.1    kardel 			if (val & 0x1) {
   3231  1.1.1.2    kardel 				snprintf(cp, cb, "%s%s", sep,
   3232  1.1.1.2    kardel 					 tstflagnames[i]);
   3233      1.1    kardel 				sep = ", ";
   3234  1.1.1.2    kardel 				cp += strlen(cp);
   3235  1.1.1.2    kardel 				cb -= strlen(cp);
   3236      1.1    kardel 			}
   3237      1.1    kardel 			val >>= 1;
   3238      1.1    kardel 		}
   3239      1.1    kardel 	}
   3240  1.1.1.2    kardel 	if (cb)
   3241  1.1.1.2    kardel 		*cp = '\0';
   3242  1.1.1.2    kardel 
   3243      1.1    kardel 	return s;
   3244      1.1    kardel }
   3245      1.1    kardel 
   3246      1.1    kardel /*
   3247      1.1    kardel  * cookedprint - output variables in cooked mode
   3248      1.1    kardel  */
   3249      1.1    kardel static void
   3250      1.1    kardel cookedprint(
   3251      1.1    kardel 	int datatype,
   3252      1.1    kardel 	int length,
   3253  1.1.1.2    kardel 	const char *data,
   3254      1.1    kardel 	int status,
   3255      1.1    kardel 	int quiet,
   3256      1.1    kardel 	FILE *fp
   3257      1.1    kardel 	)
   3258      1.1    kardel {
   3259      1.1    kardel 	char *name;
   3260      1.1    kardel 	char *value;
   3261      1.1    kardel 	char output_raw;
   3262      1.1    kardel 	int fmt;
   3263      1.1    kardel 	l_fp lfp;
   3264      1.1    kardel 	sockaddr_u hval;
   3265      1.1    kardel 	u_long uval;
   3266      1.1    kardel 	int narr;
   3267  1.1.1.3  christos 	size_t len;
   3268  1.1.1.3  christos 	l_fp lfparr[8];
   3269  1.1.1.3  christos 	char b[12];
   3270  1.1.1.3  christos 	char bn[2 * MAXVARLEN];
   3271  1.1.1.3  christos 	char bv[2 * MAXVALLEN];
   3272      1.1    kardel 
   3273  1.1.1.3  christos 	UNUSED_ARG(datatype);
   3274      1.1    kardel 
   3275      1.1    kardel 	if (!quiet)
   3276      1.1    kardel 		fprintf(fp, "status=%04x %s,\n", status,
   3277      1.1    kardel 			statustoa(datatype, status));
   3278      1.1    kardel 
   3279      1.1    kardel 	startoutput();
   3280      1.1    kardel 	while (nextvar(&length, &data, &name, &value)) {
   3281  1.1.1.3  christos 		fmt = varfmt(name);
   3282  1.1.1.3  christos 		output_raw = 0;
   3283  1.1.1.3  christos 		switch (fmt) {
   3284      1.1    kardel 
   3285  1.1.1.3  christos 		case PADDING:
   3286  1.1.1.3  christos 			output_raw = '*';
   3287  1.1.1.3  christos 			break;
   3288      1.1    kardel 
   3289  1.1.1.3  christos 		case TS:
   3290  1.1.1.3  christos 			if (!decodets(value, &lfp))
   3291  1.1.1.3  christos 				output_raw = '?';
   3292  1.1.1.3  christos 			else
   3293  1.1.1.3  christos 				output(fp, name, prettydate(&lfp));
   3294  1.1.1.3  christos 			break;
   3295      1.1    kardel 
   3296  1.1.1.3  christos 		case HA:	/* fallthru */
   3297  1.1.1.3  christos 		case NA:
   3298  1.1.1.3  christos 			if (!decodenetnum(value, &hval)) {
   3299  1.1.1.3  christos 				output_raw = '?';
   3300  1.1.1.3  christos 			} else if (fmt == HA){
   3301  1.1.1.3  christos 				output(fp, name, nntohost(&hval));
   3302  1.1.1.3  christos 			} else {
   3303  1.1.1.3  christos 				output(fp, name, stoa(&hval));
   3304  1.1.1.3  christos 			}
   3305  1.1.1.3  christos 			break;
   3306      1.1    kardel 
   3307  1.1.1.3  christos 		case RF:
   3308  1.1.1.3  christos 			if (decodenetnum(value, &hval)) {
   3309  1.1.1.3  christos 				if (ISREFCLOCKADR(&hval))
   3310  1.1.1.3  christos 					output(fp, name,
   3311  1.1.1.3  christos 					       refnumtoa(&hval));
   3312      1.1    kardel 				else
   3313  1.1.1.3  christos 					output(fp, name, stoa(&hval));
   3314  1.1.1.3  christos 			} else if (strlen(value) <= 4) {
   3315  1.1.1.3  christos 				output(fp, name, value);
   3316  1.1.1.3  christos 			} else {
   3317  1.1.1.3  christos 				output_raw = '?';
   3318  1.1.1.3  christos 			}
   3319  1.1.1.3  christos 			break;
   3320      1.1    kardel 
   3321  1.1.1.3  christos 		case LP:
   3322  1.1.1.3  christos 			if (!decodeuint(value, &uval) || uval > 3) {
   3323  1.1.1.3  christos 				output_raw = '?';
   3324  1.1.1.3  christos 			} else {
   3325  1.1.1.3  christos 				b[0] = (0x2 & uval)
   3326  1.1.1.3  christos 					   ? '1'
   3327  1.1.1.3  christos 					   : '0';
   3328  1.1.1.3  christos 				b[1] = (0x1 & uval)
   3329  1.1.1.3  christos 					   ? '1'
   3330  1.1.1.3  christos 					   : '0';
   3331  1.1.1.3  christos 				b[2] = '\0';
   3332  1.1.1.3  christos 				output(fp, name, b);
   3333  1.1.1.3  christos 			}
   3334  1.1.1.3  christos 			break;
   3335  1.1.1.3  christos 
   3336  1.1.1.3  christos 		case OC:
   3337  1.1.1.3  christos 			if (!decodeuint(value, &uval)) {
   3338  1.1.1.3  christos 				output_raw = '?';
   3339  1.1.1.3  christos 			} else {
   3340  1.1.1.3  christos 				snprintf(b, sizeof(b), "%03lo", uval);
   3341  1.1.1.3  christos 				output(fp, name, b);
   3342      1.1    kardel 			}
   3343  1.1.1.3  christos 			break;
   3344  1.1.1.3  christos 
   3345  1.1.1.3  christos 		case AR:
   3346  1.1.1.3  christos 			if (!decodearr(value, &narr, lfparr))
   3347  1.1.1.3  christos 				output_raw = '?';
   3348  1.1.1.3  christos 			else
   3349  1.1.1.3  christos 				outputarr(fp, name, narr, lfparr);
   3350  1.1.1.3  christos 			break;
   3351  1.1.1.3  christos 
   3352  1.1.1.3  christos 		case FX:
   3353  1.1.1.3  christos 			if (!decodeuint(value, &uval))
   3354  1.1.1.3  christos 				output_raw = '?';
   3355  1.1.1.3  christos 			else
   3356  1.1.1.3  christos 				output(fp, name, tstflags(uval));
   3357  1.1.1.3  christos 			break;
   3358      1.1    kardel 
   3359  1.1.1.3  christos 		default:
   3360  1.1.1.3  christos 			fprintf(stderr, "Internal error in cookedprint, %s=%s, fmt %d\n",
   3361  1.1.1.3  christos 				name, value, fmt);
   3362  1.1.1.3  christos 			output_raw = '?';
   3363  1.1.1.3  christos 			break;
   3364      1.1    kardel 		}
   3365      1.1    kardel 
   3366  1.1.1.3  christos 		if (output_raw != 0) {
   3367      1.1    kardel 			atoascii(name, MAXVARLEN, bn, sizeof(bn));
   3368  1.1.1.3  christos 			atoascii(value, MAXVALLEN, bv, sizeof(bv));
   3369      1.1    kardel 			if (output_raw != '*') {
   3370      1.1    kardel 				len = strlen(bv);
   3371      1.1    kardel 				bv[len] = output_raw;
   3372      1.1    kardel 				bv[len+1] = '\0';
   3373      1.1    kardel 			}
   3374      1.1    kardel 			output(fp, bn, bv);
   3375      1.1    kardel 		}
   3376      1.1    kardel 	}
   3377      1.1    kardel 	endoutput(fp);
   3378      1.1    kardel }
   3379      1.1    kardel 
   3380      1.1    kardel 
   3381      1.1    kardel /*
   3382      1.1    kardel  * sortassoc - sort associations in the cache into ascending order
   3383      1.1    kardel  */
   3384      1.1    kardel void
   3385      1.1    kardel sortassoc(void)
   3386      1.1    kardel {
   3387      1.1    kardel 	if (numassoc > 1)
   3388  1.1.1.3  christos 		qsort(assoc_cache, (size_t)numassoc,
   3389  1.1.1.3  christos 		      sizeof(assoc_cache[0]), &assoccmp);
   3390      1.1    kardel }
   3391      1.1    kardel 
   3392      1.1    kardel 
   3393      1.1    kardel /*
   3394      1.1    kardel  * assoccmp - compare two associations
   3395      1.1    kardel  */
   3396      1.1    kardel static int
   3397      1.1    kardel assoccmp(
   3398      1.1    kardel 	const void *t1,
   3399      1.1    kardel 	const void *t2
   3400      1.1    kardel 	)
   3401      1.1    kardel {
   3402  1.1.1.2    kardel 	const struct association *ass1 = t1;
   3403  1.1.1.2    kardel 	const struct association *ass2 = t2;
   3404      1.1    kardel 
   3405      1.1    kardel 	if (ass1->assid < ass2->assid)
   3406      1.1    kardel 		return -1;
   3407      1.1    kardel 	if (ass1->assid > ass2->assid)
   3408      1.1    kardel 		return 1;
   3409      1.1    kardel 	return 0;
   3410      1.1    kardel }
   3411  1.1.1.2    kardel 
   3412      1.1    kardel 
   3413      1.1    kardel /*
   3414  1.1.1.3  christos  * grow_assoc_cache() - enlarge dynamic assoc_cache array
   3415  1.1.1.3  christos  *
   3416  1.1.1.3  christos  * The strategy is to add an assumed 4k page size at a time, leaving
   3417  1.1.1.3  christos  * room for malloc() bookkeeping overhead equivalent to 4 pointers.
   3418  1.1.1.3  christos  */
   3419  1.1.1.3  christos void
   3420  1.1.1.3  christos grow_assoc_cache(void)
   3421  1.1.1.3  christos {
   3422  1.1.1.3  christos 	static size_t	prior_sz;
   3423  1.1.1.3  christos 	size_t		new_sz;
   3424  1.1.1.3  christos 
   3425  1.1.1.3  christos 	new_sz = prior_sz + 4 * 1024;
   3426  1.1.1.3  christos 	if (0 == prior_sz) {
   3427  1.1.1.3  christos 		new_sz -= 4 * sizeof(void *);
   3428  1.1.1.3  christos 	}
   3429  1.1.1.3  christos 	assoc_cache = erealloc_zero(assoc_cache, new_sz, prior_sz);
   3430  1.1.1.3  christos 	prior_sz = new_sz;
   3431  1.1.1.3  christos 	assoc_cache_slots = new_sz / sizeof(assoc_cache[0]);
   3432  1.1.1.3  christos }
   3433  1.1.1.3  christos 
   3434  1.1.1.3  christos 
   3435  1.1.1.3  christos /*
   3436      1.1    kardel  * ntpq_custom_opt_handler - autoopts handler for -c and -p
   3437      1.1    kardel  *
   3438      1.1    kardel  * By default, autoopts loses the relative order of -c and -p options
   3439      1.1    kardel  * on the command line.  This routine replaces the default handler for
   3440      1.1    kardel  * those routines and builds a list of commands to execute preserving
   3441      1.1    kardel  * the order.
   3442      1.1    kardel  */
   3443      1.1    kardel void
   3444      1.1    kardel ntpq_custom_opt_handler(
   3445      1.1    kardel 	tOptions *pOptions,
   3446      1.1    kardel 	tOptDesc *pOptDesc
   3447      1.1    kardel 	)
   3448      1.1    kardel {
   3449      1.1    kardel 	switch (pOptDesc->optValue) {
   3450  1.1.1.3  christos 
   3451      1.1    kardel 	default:
   3452  1.1.1.3  christos 		fprintf(stderr,
   3453      1.1    kardel 			"ntpq_custom_opt_handler unexpected option '%c' (%d)\n",
   3454      1.1    kardel 			pOptDesc->optValue, pOptDesc->optValue);
   3455  1.1.1.3  christos 		exit(1);
   3456      1.1    kardel 
   3457      1.1    kardel 	case 'c':
   3458      1.1    kardel 		ADDCMD(pOptDesc->pzLastArg);
   3459      1.1    kardel 		break;
   3460      1.1    kardel 
   3461      1.1    kardel 	case 'p':
   3462      1.1    kardel 		ADDCMD("peers");
   3463      1.1    kardel 		break;
   3464      1.1    kardel 	}
   3465      1.1    kardel }
   3466  1.1.1.6  christos /*
   3467  1.1.1.6  christos  * Obtain list of digest names
   3468  1.1.1.6  christos  */
   3469  1.1.1.6  christos 
   3470  1.1.1.6  christos #ifdef OPENSSL
   3471  1.1.1.6  christos # ifdef HAVE_EVP_MD_DO_ALL_SORTED
   3472  1.1.1.6  christos struct hstate {
   3473  1.1.1.6  christos    char *list;
   3474  1.1.1.6  christos    const char **seen;
   3475  1.1.1.6  christos    int idx;
   3476  1.1.1.6  christos };
   3477  1.1.1.6  christos #define K_PER_LINE 8
   3478  1.1.1.6  christos #define K_NL_PFX_STR "\n    "
   3479  1.1.1.6  christos #define K_DELIM_STR ", "
   3480  1.1.1.6  christos static void list_md_fn(const EVP_MD *m, const char *from, const char *to, void *arg )
   3481  1.1.1.6  christos {
   3482  1.1.1.6  christos     size_t len, n;
   3483  1.1.1.6  christos     const char *name, *cp, **seen;
   3484  1.1.1.6  christos     struct hstate *hstate = arg;
   3485  1.1.1.6  christos     EVP_MD_CTX ctx;
   3486  1.1.1.6  christos     u_int digest_len;
   3487  1.1.1.6  christos     u_char digest[EVP_MAX_MD_SIZE];
   3488  1.1.1.6  christos 
   3489  1.1.1.6  christos     if (!m)
   3490  1.1.1.6  christos         return; /* Ignore aliases */
   3491  1.1.1.6  christos 
   3492  1.1.1.6  christos     name = EVP_MD_name(m);
   3493  1.1.1.6  christos 
   3494  1.1.1.6  christos     /* Lowercase names aren't accepted by keytype_from_text in ssl_init.c */
   3495  1.1.1.6  christos 
   3496  1.1.1.6  christos     for( cp = name; *cp; cp++ ) {
   3497  1.1.1.6  christos 	if( islower(*cp) )
   3498  1.1.1.6  christos 	    return;
   3499  1.1.1.6  christos     }
   3500  1.1.1.6  christos     len = (cp - name) + 1;
   3501  1.1.1.6  christos 
   3502  1.1.1.6  christos     /* There are duplicates.  Discard if name has been seen. */
   3503  1.1.1.6  christos 
   3504  1.1.1.6  christos     for (seen = hstate->seen; *seen; seen++)
   3505  1.1.1.6  christos         if (!strcmp(*seen, name))
   3506  1.1.1.6  christos 	    return;
   3507  1.1.1.6  christos     n = (seen - hstate->seen) + 2;
   3508  1.1.1.6  christos     hstate->seen = realloc(hstate->seen, n * sizeof(*seen));
   3509  1.1.1.6  christos     hstate->seen[n-2] = name;
   3510  1.1.1.6  christos     hstate->seen[n-1] = NULL;
   3511  1.1.1.6  christos 
   3512  1.1.1.6  christos     /* Discard MACs that NTP won't accept.
   3513  1.1.1.6  christos      * Keep this consistent with keytype_from_text() in ssl_init.c.
   3514  1.1.1.6  christos      */
   3515  1.1.1.6  christos 
   3516  1.1.1.6  christos     EVP_DigestInit(&ctx, EVP_get_digestbyname(name));
   3517  1.1.1.6  christos     EVP_DigestFinal(&ctx, digest, &digest_len);
   3518  1.1.1.6  christos     if (digest_len > (MAX_MAC_LEN - sizeof(keyid_t)))
   3519  1.1.1.6  christos         return;
   3520  1.1.1.6  christos 
   3521  1.1.1.6  christos     if (hstate->list != NULL)
   3522  1.1.1.6  christos 	len += strlen(hstate->list);
   3523  1.1.1.6  christos     len += (hstate->idx >= K_PER_LINE)? strlen(K_NL_PFX_STR): strlen(K_DELIM_STR);
   3524  1.1.1.6  christos 
   3525  1.1.1.6  christos     if (hstate->list == NULL) {
   3526  1.1.1.6  christos 	hstate->list = (char *)malloc(len);
   3527  1.1.1.6  christos 	hstate->list[0] = '\0';
   3528  1.1.1.6  christos     } else
   3529  1.1.1.6  christos 	hstate->list = (char *)realloc(hstate->list, len);
   3530  1.1.1.6  christos 
   3531  1.1.1.6  christos     sprintf(hstate->list + strlen(hstate->list), "%s%s",
   3532  1.1.1.6  christos 	    ((hstate->idx >= K_PER_LINE)? K_NL_PFX_STR : K_DELIM_STR),
   3533  1.1.1.6  christos 	    name);
   3534  1.1.1.6  christos     if (hstate->idx >= K_PER_LINE)
   3535  1.1.1.6  christos 	hstate->idx = 1;
   3536  1.1.1.6  christos     else
   3537  1.1.1.6  christos 	hstate->idx++;
   3538  1.1.1.6  christos }
   3539  1.1.1.6  christos # endif
   3540  1.1.1.6  christos #endif
   3541  1.1.1.6  christos 
   3542  1.1.1.6  christos static char *list_digest_names(void)
   3543  1.1.1.6  christos {
   3544  1.1.1.6  christos     char *list = NULL;
   3545  1.1.1.6  christos 
   3546  1.1.1.6  christos #ifdef OPENSSL
   3547  1.1.1.6  christos # ifdef HAVE_EVP_MD_DO_ALL_SORTED
   3548  1.1.1.6  christos     struct hstate hstate = { NULL, NULL, K_PER_LINE+1 };
   3549  1.1.1.6  christos 
   3550  1.1.1.6  christos     hstate.seen = (const char **)calloc(1, sizeof( const char * ));
   3551  1.1.1.6  christos 
   3552  1.1.1.6  christos     INIT_SSL();
   3553  1.1.1.6  christos     EVP_MD_do_all_sorted(list_md_fn, &hstate);
   3554  1.1.1.6  christos     list = hstate.list;
   3555  1.1.1.6  christos     free(hstate.seen);
   3556  1.1.1.6  christos # else
   3557  1.1.1.6  christos     list = (char *)malloc(sizeof("md5, others (upgrade to OpenSSL-1.0 for full list)"));
   3558  1.1.1.6  christos     strcpy(list, "md5, others (upgrade to OpenSSL-1.0 for full list)");
   3559  1.1.1.6  christos # endif
   3560  1.1.1.6  christos #else
   3561  1.1.1.6  christos     list = (char *)malloc(sizeof("md5"));
   3562  1.1.1.6  christos     strcpy(list, "md5");
   3563  1.1.1.6  christos #endif
   3564  1.1.1.6  christos 
   3565  1.1.1.6  christos     return list;
   3566  1.1.1.6  christos }
   3567