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