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keyword-gen.c revision 1.14
      1  1.13  christos /*	$NetBSD: keyword-gen.c,v 1.14 2024/08/18 20:47:17 christos Exp $	*/
      2   1.1    kardel 
      3   1.1    kardel /*
      4   1.1    kardel  * keyword-gen.c -- generate keyword scanner finite state machine and
      5   1.1    kardel  *		    keyword_text array.
      6   1.4  christos  *
      7   1.4  christos  * This program is run to generate ntp_keyword.h
      8   1.4  christos  * After making a change here, two output files should be committed at
      9   1.4  christos  * the same time as keyword-gen.c:
     10   1.4  christos  *	ntp_keyword.h
     11   1.4  christos  *	keyword-gen-utd
     12   1.4  christos  *
     13   1.4  christos  * keyword-gen-utd is a sentinel used by Makefile.am to avoid compiling
     14   1.4  christos  * keyword_gen.c and generating ntp_keyword.h if the input keyword-gen.c
     15   1.4  christos  * has not changed.  This is not solely an optimization, it also breaks
     16   1.4  christos  * a dependency chain that otherwise would cause programs to be compiled
     17   1.4  christos  * when running "make dist" or "make distdir".  We want these to package
     18   1.4  christos  * the existing source without building anything but a tarball.  See
     19   1.4  christos  * [Bug 1470].
     20   1.1    kardel  */
     21   1.1    kardel #include <config.h>
     22   1.1    kardel #include <stdio.h>
     23   1.1    kardel #include <stdlib.h>
     24   1.1    kardel #include <time.h>
     25   1.1    kardel 
     26   1.1    kardel #include <ntp_stdlib.h>
     27   1.1    kardel #include <ntp_config.h>
     28   1.1    kardel #include "ntp_scanner.h"
     29   1.1    kardel #include "ntp_parser.h"
     30   1.1    kardel 
     31   1.1    kardel 
     32   1.1    kardel /* Define a structure to hold a (keyword, token) pair */
     33   1.1    kardel struct key_tok {
     34   1.1    kardel 	char *	key;		/* Keyword */
     35   1.4  christos 	u_short	token;		/* Associated Token */
     36   1.1    kardel 	follby	followedby;	/* nonzero indicates the next token(s)
     37   1.1    kardel 				   forced to be string(s) */
     38   1.1    kardel };
     39   1.1    kardel 
     40   1.1    kardel struct key_tok ntp_keywords[] = {
     41   1.3    kardel { "...",		T_Ellipsis,		FOLLBY_TOKEN },
     42   1.4  christos { "allpeers",		T_Allpeers,		FOLLBY_TOKEN },
     43   1.1    kardel { "automax",		T_Automax,		FOLLBY_TOKEN },
     44   1.1    kardel { "broadcast",		T_Broadcast,		FOLLBY_STRING },
     45   1.1    kardel { "broadcastclient",	T_Broadcastclient,	FOLLBY_TOKEN },
     46   1.1    kardel { "broadcastdelay",	T_Broadcastdelay,	FOLLBY_TOKEN },
     47  1.13  christos { "checkhash",		T_Checkhash,		FOLLBY_TOKEN },
     48   1.4  christos { "ctl",		T_Ctl,			FOLLBY_TOKEN },
     49  1.14  christos { "delrestrict",	T_Delrestrict,		FOLLBY_TOKEN },
     50  1.14  christos { "device",		T_Device,		FOLLBY_STRING },
     51   1.1    kardel { "disable",		T_Disable,		FOLLBY_TOKEN },
     52   1.1    kardel { "driftfile",		T_Driftfile,		FOLLBY_STRING },
     53   1.7  christos { "dscp",		T_Dscp,			FOLLBY_TOKEN },
     54   1.1    kardel { "enable",		T_Enable,		FOLLBY_TOKEN },
     55   1.1    kardel { "end",		T_End,			FOLLBY_TOKEN },
     56   1.1    kardel { "filegen",		T_Filegen,		FOLLBY_TOKEN },
     57   1.1    kardel { "fudge",		T_Fudge,		FOLLBY_STRING },
     58  1.13  christos { "ignorehash",		T_Ignorehash,		FOLLBY_TOKEN },
     59   1.4  christos { "io",			T_Io,			FOLLBY_TOKEN },
     60   1.1    kardel { "includefile",	T_Includefile,		FOLLBY_STRING },
     61   1.1    kardel { "leapfile",		T_Leapfile,		FOLLBY_STRING },
     62   1.7  christos { "leapsmearinterval",	T_Leapsmearinterval,	FOLLBY_TOKEN },
     63   1.1    kardel { "logconfig",		T_Logconfig,		FOLLBY_STRINGS_TO_EOC },
     64   1.1    kardel { "logfile",		T_Logfile,		FOLLBY_STRING },
     65   1.1    kardel { "manycastclient",	T_Manycastclient,	FOLLBY_STRING },
     66   1.1    kardel { "manycastserver",	T_Manycastserver,	FOLLBY_STRINGS_TO_EOC },
     67   1.4  christos { "mem",		T_Mem,			FOLLBY_TOKEN },
     68   1.1    kardel { "multicastclient",	T_Multicastclient,	FOLLBY_STRINGS_TO_EOC },
     69   1.1    kardel { "peer",		T_Peer,			FOLLBY_STRING },
     70   1.1    kardel { "phone",		T_Phone,		FOLLBY_STRINGS_TO_EOC },
     71   1.1    kardel { "pidfile",		T_Pidfile,		FOLLBY_STRING },
     72  1.13  christos { "pollskewlist",	T_PollSkewList,		FOLLBY_TOKEN },
     73   1.1    kardel { "pool",		T_Pool,			FOLLBY_STRING },
     74   1.1    kardel { "discard",		T_Discard,		FOLLBY_TOKEN },
     75   1.4  christos { "reset",		T_Reset,		FOLLBY_TOKEN },
     76   1.1    kardel { "restrict",		T_Restrict,		FOLLBY_TOKEN },
     77   1.4  christos { "rlimit",		T_Rlimit,		FOLLBY_TOKEN },
     78   1.1    kardel { "server",		T_Server,		FOLLBY_STRING },
     79  1.13  christos { "serverresponse",	T_Serverresponse,	FOLLBY_TOKEN },
     80  1.13  christos { "fuzz",		T_Fuzz,			FOLLBY_TOKEN },
     81  1.13  christos { "poll",		T_Poll,			FOLLBY_TOKEN },
     82   1.1    kardel { "setvar",		T_Setvar,		FOLLBY_STRING },
     83   1.1    kardel { "statistics",		T_Statistics,		FOLLBY_TOKEN },
     84   1.1    kardel { "statsdir",		T_Statsdir,		FOLLBY_STRING },
     85   1.4  christos { "sys",		T_Sys,			FOLLBY_TOKEN },
     86   1.1    kardel { "tick",		T_Tick,			FOLLBY_TOKEN },
     87   1.4  christos { "timer",		T_Timer,		FOLLBY_TOKEN },
     88   1.1    kardel { "tinker",		T_Tinker,		FOLLBY_TOKEN },
     89   1.1    kardel { "tos",		T_Tos,			FOLLBY_TOKEN },
     90   1.1    kardel { "trap",		T_Trap,			FOLLBY_STRING },
     91   1.1    kardel { "unconfig",		T_Unconfig,		FOLLBY_STRING },
     92   1.1    kardel { "unpeer",		T_Unpeer,		FOLLBY_STRING },
     93  1.13  christos { "xmtnonce",		T_Xmtnonce,		FOLLBY_TOKEN },
     94   1.1    kardel /* authentication_command */
     95   1.1    kardel { "controlkey",		T_ControlKey,		FOLLBY_TOKEN },
     96   1.1    kardel { "crypto",		T_Crypto,		FOLLBY_TOKEN },
     97   1.1    kardel { "keys",		T_Keys,			FOLLBY_STRING },
     98   1.1    kardel { "keysdir",		T_Keysdir,		FOLLBY_STRING },
     99   1.1    kardel { "ntpsigndsocket",	T_NtpSignDsocket,	FOLLBY_STRING },
    100   1.1    kardel { "requestkey",		T_Requestkey,		FOLLBY_TOKEN },
    101   1.1    kardel { "revoke",		T_Revoke,		FOLLBY_TOKEN },
    102   1.1    kardel { "trustedkey",		T_Trustedkey,		FOLLBY_TOKEN },
    103   1.1    kardel /* IPv4/IPv6 protocol override flag */
    104   1.1    kardel { "-4",			T_Ipv4_flag,		FOLLBY_TOKEN },
    105   1.1    kardel { "-6",			T_Ipv6_flag,		FOLLBY_TOKEN },
    106   1.1    kardel /* option */
    107   1.1    kardel { "autokey",		T_Autokey,		FOLLBY_TOKEN },
    108   1.1    kardel { "burst",		T_Burst,		FOLLBY_TOKEN },
    109   1.1    kardel { "iburst",		T_Iburst,		FOLLBY_TOKEN },
    110   1.1    kardel { "key",		T_Key,			FOLLBY_TOKEN },
    111   1.1    kardel { "maxpoll",		T_Maxpoll,		FOLLBY_TOKEN },
    112   1.2  christos { "mdnstries",		T_Mdnstries,		FOLLBY_TOKEN },
    113   1.1    kardel { "minpoll",		T_Minpoll,		FOLLBY_TOKEN },
    114   1.1    kardel { "mode",		T_Mode,			FOLLBY_TOKEN },
    115   1.1    kardel { "noselect",		T_Noselect,		FOLLBY_TOKEN },
    116   1.1    kardel { "preempt",		T_Preempt,		FOLLBY_TOKEN },
    117   1.1    kardel { "true",		T_True,			FOLLBY_TOKEN },
    118   1.1    kardel { "prefer",		T_Prefer,		FOLLBY_TOKEN },
    119   1.1    kardel { "ttl",		T_Ttl,			FOLLBY_TOKEN },
    120   1.1    kardel { "version",		T_Version,		FOLLBY_TOKEN },
    121   1.1    kardel { "xleave",		T_Xleave,		FOLLBY_TOKEN },
    122   1.1    kardel /* crypto_command */
    123   1.1    kardel { "host",		T_Host,			FOLLBY_STRING },
    124   1.1    kardel { "ident",		T_Ident,		FOLLBY_STRING },
    125   1.1    kardel { "pw",			T_Pw,			FOLLBY_STRING },
    126   1.1    kardel { "randfile",		T_Randfile,		FOLLBY_STRING },
    127   1.1    kardel { "digest",		T_Digest,		FOLLBY_STRING },
    128   1.1    kardel /*** MONITORING COMMANDS ***/
    129   1.1    kardel /* stat */
    130   1.1    kardel { "clockstats",		T_Clockstats,		FOLLBY_TOKEN },
    131   1.1    kardel { "cryptostats",	T_Cryptostats,		FOLLBY_TOKEN },
    132   1.1    kardel { "loopstats",		T_Loopstats,		FOLLBY_TOKEN },
    133   1.1    kardel { "peerstats",		T_Peerstats,		FOLLBY_TOKEN },
    134   1.1    kardel { "rawstats",		T_Rawstats,		FOLLBY_TOKEN },
    135   1.1    kardel { "sysstats", 		T_Sysstats,		FOLLBY_TOKEN },
    136   1.1    kardel { "protostats",		T_Protostats,		FOLLBY_TOKEN },
    137   1.1    kardel { "timingstats",	T_Timingstats,		FOLLBY_TOKEN },
    138   1.1    kardel /* filegen_option */
    139   1.1    kardel { "file",		T_File,			FOLLBY_STRING },
    140   1.1    kardel { "link",		T_Link,			FOLLBY_TOKEN },
    141   1.1    kardel { "nolink",		T_Nolink,		FOLLBY_TOKEN },
    142   1.1    kardel { "type",		T_Type,			FOLLBY_TOKEN },
    143   1.1    kardel /* filegen_type */
    144   1.1    kardel { "age",		T_Age,			FOLLBY_TOKEN },
    145   1.1    kardel { "day",		T_Day,			FOLLBY_TOKEN },
    146   1.1    kardel { "month",		T_Month,		FOLLBY_TOKEN },
    147   1.1    kardel { "none",		T_None,			FOLLBY_TOKEN },
    148   1.1    kardel { "pid",		T_Pid,			FOLLBY_TOKEN },
    149   1.1    kardel { "week",		T_Week,			FOLLBY_TOKEN },
    150   1.1    kardel { "year",		T_Year,			FOLLBY_TOKEN },
    151   1.1    kardel /*** ORPHAN MODE COMMANDS ***/
    152   1.1    kardel /* tos_option */
    153   1.1    kardel { "minclock",		T_Minclock,		FOLLBY_TOKEN },
    154   1.1    kardel { "maxclock",		T_Maxclock,		FOLLBY_TOKEN },
    155   1.1    kardel { "minsane",		T_Minsane,		FOLLBY_TOKEN },
    156   1.1    kardel { "floor",		T_Floor,		FOLLBY_TOKEN },
    157   1.1    kardel { "ceiling",		T_Ceiling,		FOLLBY_TOKEN },
    158   1.1    kardel { "cohort",		T_Cohort,		FOLLBY_TOKEN },
    159   1.1    kardel { "mindist",		T_Mindist,		FOLLBY_TOKEN },
    160   1.1    kardel { "maxdist",		T_Maxdist,		FOLLBY_TOKEN },
    161  1.11  christos { "bcpollbstep",	T_Bcpollbstep,		FOLLBY_TOKEN },
    162   1.1    kardel { "beacon",		T_Beacon,		FOLLBY_TOKEN },
    163   1.1    kardel { "orphan",		T_Orphan,		FOLLBY_TOKEN },
    164   1.4  christos { "orphanwait",		T_Orphanwait,		FOLLBY_TOKEN },
    165   1.4  christos { "nonvolatile",	T_Nonvolatile,		FOLLBY_TOKEN },
    166  1.12  christos { "basedate",		T_Basedate,		FOLLBY_STRING },
    167   1.1    kardel /* access_control_flag */
    168   1.1    kardel { "default",		T_Default,		FOLLBY_TOKEN },
    169   1.4  christos { "source",		T_Source,		FOLLBY_TOKEN },
    170  1.12  christos { "epeer",		T_Epeer,		FOLLBY_TOKEN },
    171  1.12  christos { "noepeer",		T_Noepeer,		FOLLBY_TOKEN },
    172   1.1    kardel { "flake",		T_Flake,		FOLLBY_TOKEN },
    173   1.1    kardel { "ignore",		T_Ignore,		FOLLBY_TOKEN },
    174  1.12  christos { "ippeerlimit",	T_Ippeerlimit,		FOLLBY_TOKEN },
    175   1.1    kardel { "limited",		T_Limited,		FOLLBY_TOKEN },
    176   1.1    kardel { "mssntp",		T_Mssntp,		FOLLBY_TOKEN },
    177   1.1    kardel { "kod",		T_Kod,			FOLLBY_TOKEN },
    178   1.1    kardel { "lowpriotrap",	T_Lowpriotrap,		FOLLBY_TOKEN },
    179   1.1    kardel { "mask",		T_Mask,			FOLLBY_TOKEN },
    180   1.1    kardel { "nomodify",		T_Nomodify,		FOLLBY_TOKEN },
    181   1.4  christos { "nomrulist",		T_Nomrulist,		FOLLBY_TOKEN },
    182   1.1    kardel { "nopeer",		T_Nopeer,		FOLLBY_TOKEN },
    183   1.1    kardel { "noquery",		T_Noquery,		FOLLBY_TOKEN },
    184   1.1    kardel { "noserve",		T_Noserve,		FOLLBY_TOKEN },
    185   1.1    kardel { "notrap",		T_Notrap,		FOLLBY_TOKEN },
    186   1.1    kardel { "notrust",		T_Notrust,		FOLLBY_TOKEN },
    187   1.1    kardel { "ntpport",		T_Ntpport,		FOLLBY_TOKEN },
    188   1.1    kardel /* discard_option */
    189   1.1    kardel { "average",		T_Average,		FOLLBY_TOKEN },
    190   1.1    kardel { "minimum",		T_Minimum,		FOLLBY_TOKEN },
    191   1.1    kardel { "monitor",		T_Monitor,		FOLLBY_TOKEN },
    192   1.4  christos /* mru_option */
    193   1.4  christos { "incalloc",		T_Incalloc,		FOLLBY_TOKEN },
    194   1.4  christos { "incmem",		T_Incmem,		FOLLBY_TOKEN },
    195   1.4  christos { "initalloc",		T_Initalloc,		FOLLBY_TOKEN },
    196   1.4  christos { "initmem",		T_Initmem,		FOLLBY_TOKEN },
    197   1.4  christos { "mindepth",		T_Mindepth,		FOLLBY_TOKEN },
    198   1.4  christos { "maxage",		T_Maxage,		FOLLBY_TOKEN },
    199   1.4  christos { "maxdepth",		T_Maxdepth,		FOLLBY_TOKEN },
    200   1.4  christos { "maxmem",		T_Maxmem,		FOLLBY_TOKEN },
    201   1.4  christos { "mru",		T_Mru,			FOLLBY_TOKEN },
    202   1.1    kardel /* fudge_factor */
    203   1.4  christos { "abbrev",		T_Abbrev,		FOLLBY_STRING },
    204   1.1    kardel { "flag1",		T_Flag1,		FOLLBY_TOKEN },
    205   1.1    kardel { "flag2",		T_Flag2,		FOLLBY_TOKEN },
    206   1.1    kardel { "flag3",		T_Flag3,		FOLLBY_TOKEN },
    207   1.1    kardel { "flag4",		T_Flag4,		FOLLBY_TOKEN },
    208   1.1    kardel { "refid",		T_Refid,		FOLLBY_STRING },
    209   1.1    kardel { "stratum",		T_Stratum,		FOLLBY_TOKEN },
    210   1.1    kardel { "time1",		T_Time1,		FOLLBY_TOKEN },
    211   1.1    kardel { "time2",		T_Time2,		FOLLBY_TOKEN },
    212  1.13  christos { "minjitter",		T_Minjitter,		FOLLBY_TOKEN },
    213  1.14  christos /* device spec */
    214  1.14  christos { "ppsdata",		T_PpsData,		FOLLBY_STRING },
    215  1.14  christos { "timedata",		T_TimeData,		FOLLBY_STRING },
    216   1.1    kardel /* system_option */
    217   1.1    kardel { "auth",		T_Auth,			FOLLBY_TOKEN },
    218   1.1    kardel { "bclient",		T_Bclient,		FOLLBY_TOKEN },
    219   1.1    kardel { "calibrate",		T_Calibrate,		FOLLBY_TOKEN },
    220   1.1    kardel { "kernel",		T_Kernel,		FOLLBY_TOKEN },
    221  1.10  christos { "mode7",		T_Mode7,		FOLLBY_TOKEN },
    222   1.1    kardel { "ntp",		T_Ntp,			FOLLBY_TOKEN },
    223  1.10  christos { "peer_clear_digest_early",	T_PCEdigest,	FOLLBY_TOKEN },
    224   1.1    kardel { "stats",		T_Stats,		FOLLBY_TOKEN },
    225   1.9  christos { "unpeer_crypto_early",	T_UEcrypto,	FOLLBY_TOKEN },
    226   1.9  christos { "unpeer_crypto_nak_early",	T_UEcryptonak,	FOLLBY_TOKEN },
    227   1.9  christos { "unpeer_digest_early",	T_UEdigest,	FOLLBY_TOKEN },
    228   1.4  christos /* rlimit_option */
    229   1.4  christos { "memlock",		T_Memlock,		FOLLBY_TOKEN },
    230   1.4  christos { "stacksize",		T_Stacksize,		FOLLBY_TOKEN },
    231   1.4  christos { "filenum",		T_Filenum,		FOLLBY_TOKEN },
    232   1.1    kardel /* tinker_option */
    233   1.1    kardel { "step",		T_Step,			FOLLBY_TOKEN },
    234   1.6  christos { "stepback",		T_Stepback,		FOLLBY_TOKEN },
    235   1.6  christos { "stepfwd",		T_Stepfwd,		FOLLBY_TOKEN },
    236   1.1    kardel { "panic",		T_Panic,		FOLLBY_TOKEN },
    237   1.1    kardel { "dispersion",		T_Dispersion,		FOLLBY_TOKEN },
    238   1.1    kardel { "stepout",		T_Stepout,		FOLLBY_TOKEN },
    239   1.1    kardel { "allan",		T_Allan,		FOLLBY_TOKEN },
    240   1.1    kardel { "huffpuff",		T_Huffpuff,		FOLLBY_TOKEN },
    241   1.1    kardel { "freq",		T_Freq,			FOLLBY_TOKEN },
    242   1.1    kardel /* miscellaneous_command */
    243   1.1    kardel { "port",		T_Port,			FOLLBY_TOKEN },
    244   1.1    kardel { "interface",		T_Interface,		FOLLBY_TOKEN },
    245   1.1    kardel { "saveconfigdir",	T_Saveconfigdir,	FOLLBY_STRING },
    246   1.1    kardel /* interface_command (ignore and interface already defined) */
    247   1.1    kardel { "nic",		T_Nic,			FOLLBY_TOKEN },
    248   1.1    kardel { "all",		T_All,			FOLLBY_TOKEN },
    249   1.1    kardel { "ipv4",		T_Ipv4,			FOLLBY_TOKEN },
    250   1.1    kardel { "ipv6",		T_Ipv6,			FOLLBY_TOKEN },
    251   1.1    kardel { "wildcard",		T_Wildcard,		FOLLBY_TOKEN },
    252   1.1    kardel { "listen",		T_Listen,		FOLLBY_TOKEN },
    253   1.1    kardel { "drop",		T_Drop,			FOLLBY_TOKEN },
    254   1.1    kardel /* simulator commands */
    255   1.1    kardel { "simulate",		T_Simulate,		FOLLBY_TOKEN },
    256   1.1    kardel { "simulation_duration",T_Sim_Duration,		FOLLBY_TOKEN },
    257   1.1    kardel { "beep_delay",		T_Beep_Delay,		FOLLBY_TOKEN },
    258   1.1    kardel { "duration",		T_Duration,		FOLLBY_TOKEN },
    259   1.1    kardel { "server_offset",	T_Server_Offset,	FOLLBY_TOKEN },
    260   1.1    kardel { "freq_offset",	T_Freq_Offset,		FOLLBY_TOKEN },
    261   1.1    kardel { "wander",		T_Wander,		FOLLBY_TOKEN },
    262   1.1    kardel { "jitter",		T_Jitter,		FOLLBY_TOKEN },
    263   1.1    kardel { "prop_delay",		T_Prop_Delay,		FOLLBY_TOKEN },
    264   1.1    kardel { "proc_delay",		T_Proc_Delay,		FOLLBY_TOKEN },
    265   1.1    kardel };
    266   1.1    kardel 
    267   1.1    kardel typedef struct big_scan_state_tag {
    268   1.1    kardel 	char	ch;		/* Character this state matches on */
    269   1.1    kardel 	char	followedby;	/* Forces next token(s) to T_String */
    270   1.1    kardel 	u_short	finishes_token;	/* nonzero ID if last keyword char */
    271   1.1    kardel 	u_short	match_next_s;	/* next state to check matching ch */
    272   1.1    kardel 	u_short	other_next_s;	/* next state to check if not ch */
    273   1.1    kardel } big_scan_state;
    274   1.1    kardel 
    275   1.1    kardel /*
    276   1.1    kardel  * Note: to increase MAXSTATES beyond 2048, be aware it is currently
    277   1.1    kardel  * crammed into 11 bits in scan_state form.  Raising to 4096 would be
    278   1.1    kardel  * relatively easy by storing the followedby value in a separate
    279   1.1    kardel  * array with one entry per token, and shrinking the char value to
    280   1.1    kardel  * 7 bits to free a bit for accepting/non-accepting.  More than 4096
    281   1.1    kardel  * states will require expanding scan_state beyond 32 bits each.
    282   1.1    kardel  */
    283   1.4  christos #define MAXSTATES	2048
    284   1.4  christos #define MAX_TOK_LEN	63
    285   1.1    kardel 
    286   1.1    kardel const char *	current_keyword;/* for error reporting */
    287   1.1    kardel big_scan_state	sst[MAXSTATES];	/* scanner FSM state entries */
    288   1.4  christos u_short		sst_highwater;	/* next entry index to consider */
    289   1.1    kardel char *		symb[1024];	/* map token ID to symbolic name */
    290   1.1    kardel 
    291   1.1    kardel /* for libntp */
    292   1.1    kardel const char *	progname = "keyword-gen";
    293   1.1    kardel 
    294   1.1    kardel int		main			(int, char **);
    295   1.1    kardel static void	generate_preamble	(void);
    296   1.1    kardel static void	generate_fsm		(void);
    297   1.1    kardel static void	generate_token_text	(void);
    298   1.4  christos static u_short	create_keyword_scanner	(void);
    299   1.4  christos static u_short	create_scan_states	(char *, u_short, follby, u_short);
    300   1.4  christos int		compare_key_tok_id	(const void *, const void *);
    301   1.4  christos int		compare_key_tok_text	(const void *, const void *);
    302   1.1    kardel void		populate_symb		(char *);
    303   1.4  christos const char *	symbname		(u_short);
    304   1.1    kardel 
    305   1.1    kardel 
    306   1.1    kardel int main(int argc, char **argv)
    307   1.1    kardel {
    308   1.1    kardel 	if (argc < 2) {
    309   1.1    kardel 		fprintf(stderr, "Usage:\n%s t_header.h\n", argv[0]);
    310   1.1    kardel 		exit(1);
    311   1.1    kardel 	}
    312   1.4  christos 	debug = 1;
    313   1.4  christos 
    314   1.1    kardel 	populate_symb(argv[1]);
    315   1.1    kardel 
    316   1.1    kardel 	generate_preamble();
    317   1.1    kardel 	generate_token_text();
    318   1.1    kardel 	generate_fsm();
    319   1.1    kardel 
    320   1.1    kardel 	return 0;
    321   1.1    kardel }
    322   1.1    kardel 
    323   1.1    kardel 
    324   1.1    kardel static void
    325   1.1    kardel generate_preamble(void)
    326   1.1    kardel {
    327   1.1    kardel 	time_t now;
    328   1.1    kardel 	char timestamp[128];
    329   1.1    kardel 	char preamble[] =
    330   1.1    kardel "/*\n"
    331   1.1    kardel " * ntp_keyword.h\n"
    332   1.1    kardel " * \n"
    333   1.1    kardel " * NOTE: edit this file with caution, it is generated by keyword-gen.c\n"
    334   1.1    kardel " *\t Generated %s UTC	  diff_ignore_line\n"
    335   1.1    kardel " *\n"
    336   1.1    kardel " */\n"
    337   1.1    kardel "#include \"ntp_scanner.h\"\n"
    338   1.1    kardel "#include \"ntp_parser.h\"\n"
    339   1.1    kardel "\n";
    340   1.1    kardel 
    341   1.1    kardel 	time(&now);
    342   1.1    kardel 	if (!strftime(timestamp, sizeof(timestamp),
    343   1.1    kardel 		      "%Y-%m-%d %H:%M:%S", gmtime(&now)))
    344   1.1    kardel 		timestamp[0] = '\0';
    345   1.1    kardel 
    346   1.1    kardel 	printf(preamble, timestamp);
    347   1.1    kardel }
    348   1.1    kardel 
    349   1.1    kardel 
    350   1.1    kardel static void
    351   1.1    kardel generate_fsm(void)
    352   1.1    kardel {
    353   1.4  christos 	char rprefix[MAX_TOK_LEN + 1];
    354   1.4  christos 	char prefix[MAX_TOK_LEN + 1];
    355   1.4  christos 	char token_id_comment[16 + MAX_TOK_LEN + 1];
    356   1.4  christos 	size_t prefix_len;
    357   1.4  christos 	char *p;
    358   1.4  christos 	char *r;
    359   1.4  christos 	u_short initial_state;
    360   1.4  christos 	u_short this_state;
    361   1.4  christos 	u_short state;
    362   1.4  christos 	u_short i;
    363   1.4  christos 	u_short token;
    364   1.1    kardel 
    365   1.7  christos 	/*
    366   1.1    kardel 	 * Sort ntp_keywords in alphabetical keyword order.  This is
    367   1.1    kardel 	 * not necessary, but minimizes nonfunctional changes in the
    368   1.1    kardel 	 * generated finite state machine when keywords are modified.
    369   1.1    kardel 	 */
    370   1.1    kardel 	qsort(ntp_keywords, COUNTOF(ntp_keywords),
    371   1.1    kardel 	      sizeof(ntp_keywords[0]), compare_key_tok_text);
    372   1.1    kardel 
    373   1.1    kardel 	/*
    374   1.7  christos 	 * To save space, reserve the state array entry matching each
    375   1.1    kardel 	 * token number for its terminal state, so the token identifier
    376   1.1    kardel 	 * does not need to be stored in each state, but can be
    377   1.1    kardel 	 * recovered trivially.  To mark the entry reserved,
    378   1.1    kardel 	 * finishes_token is nonzero.
    379   1.1    kardel 	 */
    380   1.1    kardel 
    381   1.1    kardel 	for (i = 0; i < COUNTOF(ntp_keywords); i++) {
    382   1.1    kardel 		token = ntp_keywords[i].token;
    383   1.1    kardel 		if (1 > token || token >= COUNTOF(sst)) {
    384   1.1    kardel 			fprintf(stderr,
    385   1.1    kardel 				"keyword-gen sst[%u] too small "
    386   1.1    kardel 				"for keyword '%s' id %d\n",
    387   1.2  christos 				(int)COUNTOF(sst),
    388   1.1    kardel 				ntp_keywords[i].key,
    389   1.1    kardel 				token);
    390   1.1    kardel 			exit(4);
    391   1.1    kardel 		}
    392   1.1    kardel 		sst[token].finishes_token = token;
    393   1.1    kardel 	}
    394   1.1    kardel 
    395   1.1    kardel 	initial_state = create_keyword_scanner();
    396   1.1    kardel 
    397   1.1    kardel 	fprintf(stderr,
    398   1.1    kardel 		"%d keywords consumed %d states of %d max.\n",
    399   1.1    kardel 		(int)COUNTOF(ntp_keywords),
    400   1.1    kardel 		sst_highwater - 1,
    401   1.1    kardel 		(int)COUNTOF(sst) - 1);
    402   1.1    kardel 
    403   1.1    kardel 	printf("#define SCANNER_INIT_S %d\n\n", initial_state);
    404   1.1    kardel 
    405   1.1    kardel 	printf("const scan_state sst[%d] = {\n"
    406   1.1    kardel 	       "/*SS_T( ch,\tf-by, match, other ),\t\t\t\t */\n"
    407   1.1    kardel 	       "  0,\t\t\t\t      /* %5d %-17s */\n",
    408   1.1    kardel 	       sst_highwater,
    409   1.1    kardel 	       0, "");
    410   1.1    kardel 
    411   1.1    kardel 	for (i = 1; i < sst_highwater; i++) {
    412   1.1    kardel 
    413   1.1    kardel 		/* verify fields will fit */
    414   1.1    kardel 		if (sst[i].followedby & ~0x3) {
    415   1.1    kardel 			fprintf(stderr,
    416   1.1    kardel 				"keyword-gen internal error "
    417   1.1    kardel 				"sst[%d].followedby %d too big\n",
    418   1.1    kardel 				i, sst[i].followedby);
    419   1.1    kardel 			exit(7);
    420   1.1    kardel 		}
    421   1.1    kardel 
    422   1.1    kardel 		if (sst_highwater <= sst[i].match_next_s
    423   1.1    kardel 		    || sst[i].match_next_s & ~0x7ff) {
    424   1.1    kardel 			fprintf(stderr,
    425   1.1    kardel 				"keyword-gen internal error "
    426   1.1    kardel 				"sst[%d].match_next_s %d too big\n",
    427   1.1    kardel 				i, sst[i].match_next_s);
    428   1.1    kardel 			exit(8);
    429   1.1    kardel 		}
    430   1.1    kardel 
    431   1.1    kardel 		if (sst_highwater <= sst[i].other_next_s
    432   1.1    kardel 		    || sst[i].other_next_s & ~0x7ff) {
    433   1.1    kardel 			fprintf(stderr,
    434   1.1    kardel 				"keyword-gen internal error "
    435   1.1    kardel 				"sst[%d].other_next_s %d too big\n",
    436   1.1    kardel 				i, sst[i].other_next_s);
    437   1.1    kardel 			exit(9);
    438   1.1    kardel 		}
    439   1.1    kardel 
    440   1.4  christos 		if (sst[i].finishes_token) {
    441   1.7  christos 			snprintf(token_id_comment,
    442   1.1    kardel 				 sizeof(token_id_comment), "%5d %-17s",
    443   1.1    kardel 				 i, symbname(sst[i].finishes_token));
    444   1.1    kardel 			if (i != sst[i].finishes_token) {
    445   1.1    kardel 				fprintf(stderr,
    446   1.1    kardel 					"keyword-gen internal error "
    447   1.1    kardel 					"entry %d finishes token %d\n",
    448   1.1    kardel 					i, sst[i].finishes_token);
    449   1.1    kardel 				exit(5);
    450   1.1    kardel 			}
    451   1.4  christos 		} else {
    452   1.4  christos 		/*
    453   1.4  christos 		 * Determine the keyword prefix that leads to this
    454   1.4  christos 		 * state.  This is expensive but keyword-gen is run
    455   1.4  christos 		 * only when it changes.  Distributing keyword-gen-utd
    456   1.4  christos 		 * achieves that, which is why it must be committed
    457   1.4  christos 		 * at the same time as keyword-gen.c and ntp_keyword.h.
    458   1.4  christos 		 *
    459   1.4  christos 		 * Scan the state array iteratively looking for a state
    460   1.4  christos 		 * which leads to the current one, collecting matching
    461   1.4  christos 		 * characters along the way.  There is only one such
    462   1.4  christos 		 * path back to the starting state given the way our
    463   1.4  christos 		 * scanner state machine is built and the practice of
    464   1.4  christos 		 * using the spelling of the keyword as its T_* token
    465   1.4  christos 		 * identifier, which results in never having two
    466   1.4  christos 		 * spellings result in the same T_* value.
    467   1.4  christos 		 */
    468   1.4  christos 			prefix_len = 0;
    469   1.4  christos 			this_state = i;
    470   1.4  christos 			do {
    471   1.4  christos 				for (state = 1; state < sst_highwater; state++)
    472   1.4  christos 					if (sst[state].other_next_s == this_state) {
    473   1.4  christos 						this_state = state;
    474   1.4  christos 						break;
    475   1.4  christos 					} else if (sst[state].match_next_s == this_state) {
    476   1.4  christos 						this_state = state;
    477   1.4  christos 						rprefix[prefix_len] = sst[state].ch;
    478   1.4  christos 						prefix_len++;
    479   1.4  christos 						break;
    480   1.4  christos 					}
    481   1.4  christos 			} while (this_state != initial_state);
    482   1.4  christos 
    483   1.4  christos 			if (prefix_len) {
    484   1.4  christos 				/* reverse rprefix into prefix */
    485   1.4  christos 				p = prefix + prefix_len;
    486   1.4  christos 				r = rprefix;
    487   1.4  christos 				while (r < rprefix + prefix_len)
    488   1.4  christos 					*--p = *r++;
    489   1.4  christos 			}
    490   1.4  christos 			prefix[prefix_len] = '\0';
    491   1.4  christos 
    492   1.4  christos 			snprintf(token_id_comment,
    493   1.4  christos 				 sizeof(token_id_comment), "%5d %-17s",
    494   1.7  christos 				 i, (initial_state == i)
    495   1.7  christos 					? "[initial state]"
    496   1.4  christos 					: prefix);
    497   1.1    kardel 		}
    498   1.1    kardel 
    499   1.1    kardel 		printf("  S_ST( '%c',\t%d,    %5u, %5u )%s /* %s */\n",
    500   1.1    kardel 		       sst[i].ch,
    501   1.1    kardel 		       sst[i].followedby,
    502   1.1    kardel 		       sst[i].match_next_s,
    503   1.1    kardel 		       sst[i].other_next_s,
    504   1.1    kardel 		       (i + 1 < sst_highwater)
    505   1.1    kardel 			   ? ","
    506   1.1    kardel 			   : " ",
    507   1.1    kardel 		       token_id_comment);
    508   1.1    kardel 	}
    509   1.1    kardel 
    510   1.1    kardel 	printf("};\n\n");
    511   1.1    kardel }
    512   1.1    kardel 
    513   1.1    kardel 
    514   1.1    kardel /* Define a function to create the states of the scanner. This function
    515   1.1    kardel  * is used by the create_keyword_scanner function below.
    516   1.1    kardel  *
    517   1.1    kardel  * This function takes a suffix of a keyword, the token to be returned on
    518   1.1    kardel  * recognizing the complete keyword, and any pre-existing state that exists
    519   1.1    kardel  * for some other keyword that has the same prefix as the current one.
    520   1.1    kardel  */
    521   1.4  christos static u_short
    522   1.1    kardel create_scan_states(
    523   1.7  christos 	char *	text,
    524   1.7  christos 	u_short	token,
    525   1.1    kardel 	follby	followedby,
    526   1.4  christos 	u_short	prev_state
    527   1.1    kardel 	)
    528   1.1    kardel {
    529   1.4  christos 	u_short my_state;
    530   1.4  christos 	u_short return_state;
    531   1.4  christos 	u_short prev_char_s;
    532   1.4  christos 	u_short curr_char_s;
    533   1.1    kardel 
    534   1.1    kardel 	return_state = prev_state;
    535   1.1    kardel 	curr_char_s = prev_state;
    536   1.1    kardel 	prev_char_s = 0;
    537   1.1    kardel 
    538   1.7  christos 	/* Find the correct position to insert the state.
    539   1.1    kardel 	 * All states should be in alphabetical order
    540   1.1    kardel 	 */
    541   1.1    kardel 	while (curr_char_s && (text[0] < sst[curr_char_s].ch)) {
    542   1.1    kardel 		prev_char_s = curr_char_s;
    543   1.1    kardel 		curr_char_s = sst[curr_char_s].other_next_s;
    544   1.1    kardel 	}
    545   1.1    kardel 
    546   1.7  christos 	/*
    547   1.1    kardel 	 * Check if a previously seen keyword has the same prefix as
    548   1.1    kardel 	 * the current keyword.  If so, simply use the state for that
    549   1.1    kardel 	 * keyword as my_state, otherwise, allocate a new state.
    550   1.1    kardel 	 */
    551   1.1    kardel 	if (curr_char_s && (text[0] == sst[curr_char_s].ch)) {
    552   1.1    kardel 		my_state = curr_char_s;
    553   1.1    kardel 		if ('\0' == text[1]) {
    554   1.1    kardel 			fprintf(stderr,
    555   1.1    kardel 				"Duplicate entries for keyword '%s' in"
    556   1.1    kardel 				" keyword_gen.c ntp_keywords[].\n",
    557   1.1    kardel 				current_keyword);
    558   1.1    kardel 			exit(2);
    559   1.1    kardel 		}
    560   1.1    kardel 	} else {
    561   1.1    kardel 		do
    562   1.1    kardel 			my_state = sst_highwater++;
    563   1.1    kardel 		while (my_state < COUNTOF(sst)
    564   1.1    kardel 		       && sst[my_state].finishes_token);
    565   1.1    kardel 		if (my_state >= COUNTOF(sst)) {
    566   1.1    kardel 			fprintf(stderr,
    567   1.1    kardel 				"fatal, keyword scanner state array "
    568   1.1    kardel 				"sst[%d] is too small, modify\n"
    569   1.1    kardel 				"keyword-gen.c to increase.\n",
    570   1.1    kardel 				(int)COUNTOF(sst));
    571   1.1    kardel 			exit(3);
    572   1.1    kardel 		}
    573   1.1    kardel 		/* Store the next character of the keyword */
    574   1.7  christos 		sst[my_state].ch = text[0];
    575   1.1    kardel 		sst[my_state].other_next_s = curr_char_s;
    576   1.1    kardel 		sst[my_state].followedby = FOLLBY_NON_ACCEPTING;
    577   1.1    kardel 
    578   1.1    kardel 		if (prev_char_s)
    579   1.1    kardel 			sst[prev_char_s].other_next_s = my_state;
    580   1.1    kardel 		else
    581   1.1    kardel 			return_state = my_state;
    582   1.1    kardel 	}
    583   1.1    kardel 
    584   1.1    kardel 	/* Check if the next character is '\0'.
    585   1.1    kardel 	 * If yes, we are done with the recognition and this is an accepting
    586   1.1    kardel 	 * state.
    587   1.1    kardel 	 * If not, we need to continue scanning
    588   1.1    kardel 	 */
    589   1.1    kardel 	if ('\0' == text[1]) {
    590   1.1    kardel 		sst[my_state].finishes_token = (u_short)token;
    591   1.1    kardel 		sst[my_state].followedby = (char)followedby;
    592   1.1    kardel 
    593   1.1    kardel 		if (sst[token].finishes_token != (u_short)token) {
    594   1.1    kardel 			fprintf(stderr,
    595   1.1    kardel 				"fatal, sst[%d] not reserved for %s.\n",
    596   1.1    kardel 				token, symbname(token));
    597   1.1    kardel 			exit(6);
    598   1.1    kardel 		}
    599   1.1    kardel 		/* relocate so token id is sst[] index */
    600   1.1    kardel 		if (my_state != token) {
    601   1.1    kardel 			sst[token] = sst[my_state];
    602   1.4  christos 			ZERO(sst[my_state]);
    603   1.1    kardel 			do
    604   1.1    kardel 				sst_highwater--;
    605   1.1    kardel 			while (sst[sst_highwater].finishes_token);
    606   1.1    kardel 			my_state = token;
    607   1.1    kardel 			if (prev_char_s)
    608   1.1    kardel 				sst[prev_char_s].other_next_s = my_state;
    609   1.1    kardel 			else
    610   1.1    kardel 				return_state = my_state;
    611   1.1    kardel 		}
    612   1.1    kardel 	} else
    613   1.7  christos 		sst[my_state].match_next_s =
    614   1.1    kardel 		    create_scan_states(
    615   1.1    kardel 			&text[1],
    616   1.1    kardel 			token,
    617   1.1    kardel 			followedby,
    618   1.1    kardel 			sst[my_state].match_next_s);
    619   1.1    kardel 
    620   1.1    kardel 	return return_state;
    621   1.1    kardel }
    622   1.1    kardel 
    623   1.1    kardel 
    624   1.1    kardel /* Define a function that takes a list of (keyword, token) values and
    625   1.1    kardel  * creates a keywords scanner out of it.
    626   1.1    kardel  */
    627   1.1    kardel 
    628   1.4  christos static u_short
    629   1.1    kardel create_keyword_scanner(void)
    630   1.1    kardel {
    631   1.4  christos 	u_short scanner;
    632   1.4  christos 	u_short i;
    633   1.1    kardel 
    634   1.1    kardel 	sst_highwater = 1;	/* index 0 invalid, unused */
    635   1.1    kardel 	scanner = 0;
    636   1.1    kardel 
    637   1.1    kardel 	for (i = 0; i < COUNTOF(ntp_keywords); i++) {
    638   1.1    kardel 		current_keyword = ntp_keywords[i].key;
    639   1.1    kardel 		scanner =
    640   1.1    kardel 		    create_scan_states(
    641   1.7  christos 			ntp_keywords[i].key,
    642   1.7  christos 			ntp_keywords[i].token,
    643   1.1    kardel 			ntp_keywords[i].followedby,
    644   1.1    kardel 			scanner);
    645   1.1    kardel 	}
    646   1.1    kardel 
    647   1.1    kardel 	return scanner;
    648   1.1    kardel }
    649   1.1    kardel 
    650   1.1    kardel 
    651   1.1    kardel static void
    652   1.1    kardel generate_token_text(void)
    653   1.1    kardel {
    654   1.4  christos 	u_short lowest_id;
    655   1.4  christos 	u_short highest_id;
    656   1.4  christos 	u_short id_count;
    657   1.4  christos 	u_short id;
    658   1.4  christos 	u_short i;
    659   1.1    kardel 
    660   1.1    kardel 	/* sort ntp_keywords in token ID order */
    661   1.1    kardel 	qsort(ntp_keywords, COUNTOF(ntp_keywords),
    662   1.1    kardel 	      sizeof(ntp_keywords[0]), compare_key_tok_id);
    663   1.1    kardel 
    664   1.1    kardel 	lowest_id = ntp_keywords[0].token;
    665   1.1    kardel 	highest_id = ntp_keywords[COUNTOF(ntp_keywords) - 1].token;
    666   1.1    kardel 	id_count = highest_id - lowest_id + 1;
    667   1.1    kardel 
    668   1.1    kardel 	printf("#define LOWEST_KEYWORD_ID %d\n\n", lowest_id);
    669   1.1    kardel 
    670   1.1    kardel 	printf("const char * const keyword_text[%d] = {", id_count);
    671   1.1    kardel 
    672   1.1    kardel 	id = lowest_id;
    673   1.1    kardel 	i = 0;
    674   1.1    kardel 	while (i < COUNTOF(ntp_keywords)) {
    675   1.1    kardel 		while (id < ntp_keywords[i].token) {
    676   1.1    kardel 			printf(",\n\t/* %-5d %5d %20s */\tNULL",
    677   1.1    kardel 			       id - lowest_id, id, symbname(id));
    678   1.1    kardel 			id++;
    679   1.1    kardel 		}
    680   1.1    kardel 		if (i > 0)
    681   1.1    kardel 			printf(",");
    682   1.1    kardel 		printf("\n\t/* %-5d %5d %20s */\t\"%s\"",
    683   1.7  christos 		       id - lowest_id, id, symbname(id),
    684   1.1    kardel 		       ntp_keywords[i].key);
    685   1.1    kardel 		i++;
    686   1.1    kardel 		id++;
    687   1.1    kardel 	}
    688   1.1    kardel 
    689   1.1    kardel 	printf("\n};\n\n");
    690   1.1    kardel }
    691   1.1    kardel 
    692   1.7  christos 
    693   1.1    kardel int
    694   1.1    kardel compare_key_tok_id(
    695   1.4  christos 	const void *a1,
    696   1.4  christos 	const void *a2
    697   1.1    kardel 	)
    698   1.1    kardel {
    699   1.4  christos 	const struct key_tok *p1 = a1;
    700   1.4  christos 	const struct key_tok *p2 = a2;
    701   1.1    kardel 
    702   1.1    kardel 	if (p1->token == p2->token)
    703   1.1    kardel 		return 0;
    704   1.1    kardel 
    705   1.1    kardel 	if (p1->token < p2->token)
    706   1.1    kardel 		return -1;
    707   1.1    kardel 	else
    708   1.1    kardel 		return 1;
    709   1.1    kardel }
    710   1.1    kardel 
    711   1.1    kardel 
    712   1.1    kardel int
    713   1.1    kardel compare_key_tok_text(
    714   1.4  christos 	const void *a1,
    715   1.4  christos 	const void *a2
    716   1.1    kardel 	)
    717   1.1    kardel {
    718   1.4  christos 	const struct key_tok *p1 = a1;
    719   1.4  christos 	const struct key_tok *p2 = a2;
    720   1.1    kardel 
    721   1.1    kardel 	return strcmp(p1->key, p2->key);
    722   1.1    kardel }
    723   1.1    kardel 
    724   1.1    kardel 
    725   1.1    kardel /*
    726   1.1    kardel  * populate_symb() - populate symb[] lookup array with symbolic token
    727   1.1    kardel  *		     names such that symb[T_Age] == "T_Age", etc.
    728   1.1    kardel  */
    729   1.1    kardel void
    730   1.1    kardel populate_symb(
    731   1.1    kardel 	char *header_file
    732   1.1    kardel 	)
    733   1.1    kardel {
    734   1.1    kardel 	FILE *	yh;
    735   1.4  christos 	char	line[2 * MAX_TOK_LEN];
    736   1.4  christos 	char	name[2 * MAX_TOK_LEN];
    737   1.1    kardel 	int	token;
    738   1.1    kardel 
    739   1.1    kardel 	yh = fopen(header_file, "r");
    740   1.1    kardel 	if (NULL == yh) {
    741   1.1    kardel 		perror("unable to open yacc/bison header file");
    742   1.1    kardel 		exit(4);
    743   1.1    kardel 	}
    744   1.1    kardel 
    745   1.1    kardel 	while (NULL != fgets(line, sizeof(line), yh))
    746   1.1    kardel 		if (2 == sscanf(line, "#define %s %d", name, &token)
    747   1.1    kardel 		    && 'T' == name[0] && '_' == name[1] && token >= 0
    748   1.4  christos 		    && token < COUNTOF(symb)) {
    749   1.1    kardel 
    750   1.1    kardel 			symb[token] = estrdup(name);
    751   1.4  christos 			if (strlen(name) > MAX_TOK_LEN) {
    752   1.4  christos 				fprintf(stderr,
    753   1.4  christos 					"MAX_TOK_LEN %d too small for '%s'\n"
    754   1.4  christos 					"Edit keyword-gen.c to raise.\n",
    755   1.4  christos 					MAX_TOK_LEN, name);
    756   1.4  christos 				exit(10);
    757   1.4  christos 			}
    758   1.4  christos 		}
    759   1.1    kardel 	fclose(yh);
    760   1.1    kardel }
    761   1.1    kardel 
    762   1.1    kardel 
    763   1.1    kardel const char *
    764   1.1    kardel symbname(
    765   1.4  christos 	u_short token
    766   1.1    kardel 	)
    767   1.1    kardel {
    768   1.1    kardel 	char *name;
    769   1.1    kardel 
    770   1.4  christos 	if (token < COUNTOF(symb) && symb[token] != NULL) {
    771   1.4  christos 		name = symb[token];
    772   1.4  christos 	} else {
    773   1.4  christos 		LIB_GETBUF(name);
    774   1.4  christos 		snprintf(name, LIB_BUFLENGTH, "%d", token);
    775   1.7  christos 	}
    776   1.1    kardel 
    777   1.1    kardel 	return name;
    778   1.1    kardel }
    779