| author | wenzelm | 
| Sun, 27 Oct 2024 12:54:58 +0100 | |
| changeset 81277 | 0eb96012d416 | 
| parent 76051 | 854e9223767f | 
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| permissions | -rw-r--r-- | 
| 32169 | 1 | (* Title: Pure/tactical.ML | 
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changeset | 2 | Author: Lawrence C Paulson, Cambridge University Computer Laboratory | 
| 0 | 3 | |
| 16179 | 4 | Tacticals. | 
| 0 | 5 | *) | 
| 6 | ||
| 4602 | 7 | infix 1 THEN THEN' THEN_ALL_NEW; | 
| 46463 | 8 | infix 0 ORELSE APPEND ORELSE' APPEND'; | 
| 671 | 9 | infix 0 THEN_ELSE; | 
| 10 | ||
| 0 | 11 | signature TACTICAL = | 
| 11916 | 12 | sig | 
| 23538 | 13 | type tactic = thm -> thm Seq.seq | 
| 14 | val THEN: tactic * tactic -> tactic | |
| 15 | val ORELSE: tactic * tactic -> tactic | |
| 16 | val APPEND: tactic * tactic -> tactic | |
| 17 | val THEN_ELSE: tactic * (tactic*tactic) -> tactic | |
| 18 |   val THEN': ('a -> tactic) * ('a -> tactic) -> 'a -> tactic
 | |
| 19 |   val ORELSE': ('a -> tactic) * ('a -> tactic) -> 'a -> tactic
 | |
| 20 |   val APPEND': ('a -> tactic) * ('a -> tactic) -> 'a -> tactic
 | |
| 21 | val all_tac: tactic | |
| 22 | val no_tac: tactic | |
| 23 | val DETERM: tactic -> tactic | |
| 24 | val COND: (thm -> bool) -> tactic -> tactic -> tactic | |
| 25 | val TRY: tactic -> tactic | |
| 26 | val EVERY: tactic list -> tactic | |
| 27 |   val EVERY': ('a -> tactic) list -> 'a -> tactic
 | |
| 28 | val EVERY1: (int -> tactic) list -> tactic | |
| 29 | val FIRST: tactic list -> tactic | |
| 30 |   val FIRST': ('a -> tactic) list -> 'a -> tactic
 | |
| 31 | val FIRST1: (int -> tactic) list -> tactic | |
| 32 | val RANGE: (int -> tactic) list -> int -> tactic | |
| 56491 | 33 | val print_tac: Proof.context -> string -> tactic | 
| 23538 | 34 | val REPEAT_DETERM_N: int -> tactic -> tactic | 
| 35 | val REPEAT_DETERM: tactic -> tactic | |
| 36 | val REPEAT: tactic -> tactic | |
| 37 | val REPEAT_DETERM1: tactic -> tactic | |
| 38 | val REPEAT1: tactic -> tactic | |
| 39 | val FILTER: (thm -> bool) -> tactic -> tactic | |
| 40 | val CHANGED: tactic -> tactic | |
| 41 | val CHANGED_PROP: tactic -> tactic | |
| 42 | val ALLGOALS: (int -> tactic) -> tactic | |
| 43 | val SOMEGOAL: (int -> tactic) -> tactic | |
| 44 | val FIRSTGOAL: (int -> tactic) -> tactic | |
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changeset | 45 | val HEADGOAL: (int -> tactic) -> tactic | 
| 23538 | 46 | val REPEAT_SOME: (int -> tactic) -> tactic | 
| 47 | val REPEAT_DETERM_SOME: (int -> tactic) -> tactic | |
| 48 | val REPEAT_FIRST: (int -> tactic) -> tactic | |
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changeset | 49 | val REPEAT_DETERM_FIRST: (int -> tactic) -> tactic | 
| 23538 | 50 | val TRYALL: (int -> tactic) -> tactic | 
| 51 | val CSUBGOAL: ((cterm * int) -> tactic) -> int -> tactic | |
| 52 | val SUBGOAL: ((term * int) -> tactic) -> int -> tactic | |
| 49865 | 53 | val ASSERT_SUBGOAL: (int -> tactic) -> int -> tactic | 
| 23538 | 54 | val CHANGED_GOAL: (int -> tactic) -> int -> tactic | 
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changeset | 55 | val SOLVED': (int -> tactic) -> int -> tactic | 
| 23538 | 56 | val THEN_ALL_NEW: (int -> tactic) * (int -> tactic) -> int -> tactic | 
| 57 | val REPEAT_ALL_NEW: (int -> tactic) -> int -> tactic | |
| 58 | val PRIMSEQ: (thm -> thm Seq.seq) -> tactic | |
| 59 | val PRIMITIVE: (thm -> thm) -> tactic | |
| 60 | val SINGLE: tactic -> thm -> thm option | |
| 61 | val CONVERSION: conv -> int -> tactic | |
| 11916 | 62 | end; | 
| 0 | 63 | |
| 13108 | 64 | structure Tactical : TACTICAL = | 
| 0 | 65 | struct | 
| 66 | ||
| 67 | (**** Tactics ****) | |
| 68 | ||
| 69 | (*A tactic maps a proof tree to a sequence of proof trees: | |
| 70 | if length of sequence = 0 then the tactic does not apply; | |
| 71 | if length > 1 then backtracking on the alternatives can occur.*) | |
| 72 | ||
| 4270 | 73 | type tactic = thm -> thm Seq.seq; | 
| 0 | 74 | |
| 75 | ||
| 76 | (*** LCF-style tacticals ***) | |
| 77 | ||
| 78 | (*the tactical THEN performs one tactic followed by another*) | |
| 17344 | 79 | fun (tac1 THEN tac2) st = Seq.maps tac2 (tac1 st); | 
| 0 | 80 | |
| 81 | ||
| 82 | (*The tactical ORELSE uses the first tactic that returns a nonempty sequence. | |
| 83 | Like in LCF, ORELSE commits to either tac1 or tac2 immediately. | |
| 84 | Does not backtrack to tac2 if tac1 was initially chosen. *) | |
| 1502 | 85 | fun (tac1 ORELSE tac2) st = | 
| 60941 | 86 | (case Seq.pull (tac1 st) of | 
| 87 | NONE => tac2 st | |
| 88 | | some => Seq.make (fn () => some)); | |
| 0 | 89 | |
| 90 | ||
| 91 | (*The tactical APPEND combines the results of two tactics. | |
| 92 | Like ORELSE, but allows backtracking on both tac1 and tac2. | |
| 93 | The tactic tac2 is not applied until needed.*) | |
| 13108 | 94 | fun (tac1 APPEND tac2) st = | 
| 19861 | 95 | Seq.append (tac1 st) (Seq.make(fn()=> Seq.pull (tac2 st))); | 
| 0 | 96 | |
| 671 | 97 | (*Conditional tactic. | 
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changeset | 98 | tac1 ORELSE tac2 = tac1 THEN_ELSE (all_tac, tac2) | 
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changeset | 99 | tac1 THEN tac2 = tac1 THEN_ELSE (tac2, no_tac) | 
| 671 | 100 | *) | 
| 13108 | 101 | fun (tac THEN_ELSE (tac1, tac2)) st = | 
| 60941 | 102 | (case Seq.pull (tac st) of | 
| 103 | NONE => tac2 st (*failed; try tactic 2*) | |
| 104 | | some => Seq.maps tac1 (Seq.make (fn () => some))); (*succeeded; use tactic 1*) | |
| 671 | 105 | |
| 106 | ||
| 0 | 107 | (*Versions for combining tactic-valued functions, as in | 
| 108 | SOMEGOAL (resolve_tac rls THEN' assume_tac) *) | |
| 1502 | 109 | fun (tac1 THEN' tac2) x = tac1 x THEN tac2 x; | 
| 110 | fun (tac1 ORELSE' tac2) x = tac1 x ORELSE tac2 x; | |
| 111 | fun (tac1 APPEND' tac2) x = tac1 x APPEND tac2 x; | |
| 0 | 112 | |
| 113 | (*passes all proofs through unchanged; identity of THEN*) | |
| 4270 | 114 | fun all_tac st = Seq.single st; | 
| 0 | 115 | |
| 116 | (*passes no proofs through; identity of ORELSE and APPEND*) | |
| 4270 | 117 | fun no_tac st = Seq.empty; | 
| 0 | 118 | |
| 119 | ||
| 120 | (*Make a tactic deterministic by chopping the tail of the proof sequence*) | |
| 12851 | 121 | fun DETERM tac = Seq.DETERM tac; | 
| 0 | 122 | |
| 123 | (*Conditional tactical: testfun controls which tactic to use next. | |
| 124 | Beware: due to eager evaluation, both thentac and elsetac are evaluated.*) | |
| 60941 | 125 | fun COND testfun thenf elsef = | 
| 126 | (fn st => if testfun st then thenf st else elsef st); | |
| 0 | 127 | |
| 128 | (*Do the tactic or else do nothing*) | |
| 129 | fun TRY tac = tac ORELSE all_tac; | |
| 130 | ||
| 60941 | 131 | |
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changeset | 132 | (*** List-oriented tactics ***) | 
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changeset | 133 | |
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changeset | 134 | local | 
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changeset | 135 | (*This version of EVERY avoids backtracking over repeated states*) | 
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changeset | 136 | |
| 13108 | 137 | fun EVY (trail, []) st = | 
| 60941 | 138 | Seq.make (fn () => SOME (st, Seq.make (fn () => Seq.pull (evyBack trail)))) | 
| 139 | | EVY (trail, tac :: tacs) st = | |
| 140 | (case Seq.pull (tac st) of | |
| 141 | NONE => evyBack trail (*failed: backtrack*) | |
| 142 | | SOME (st', q) => EVY ((st', q, tacs) :: trail, tacs) st') | |
| 4270 | 143 | and evyBack [] = Seq.empty (*no alternatives*) | 
| 60941 | 144 | | evyBack ((st', q, tacs) :: trail) = | 
| 145 | (case Seq.pull q of | |
| 146 | NONE => evyBack trail | |
| 147 | | SOME (st, q') => | |
| 148 | if Thm.eq_thm (st', st) | |
| 149 | then evyBack ((st', q', tacs) :: trail) | |
| 150 | else EVY ((st, q', tacs) :: trail, tacs) st); | |
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changeset | 151 | in | 
| 60941 | 152 | (* EVERY [tac1,...,tacn] equals tac1 THEN ... THEN tacn *) | 
| 153 | fun EVERY tacs = EVY ([], tacs); | |
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changeset | 154 | end; | 
| 2627 | 155 | |
| 0 | 156 | |
| 1502 | 157 | (* EVERY' [tac1,...,tacn] i equals tac1 i THEN ... THEN tacn i *) | 
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changeset | 158 | fun EVERY' tacs i = EVERY (map (fn f => f i) tacs); | 
| 0 | 159 | |
| 160 | (*Apply every tactic to 1*) | |
| 1502 | 161 | fun EVERY1 tacs = EVERY' tacs 1; | 
| 0 | 162 | |
| 163 | (* FIRST [tac1,...,tacn] equals tac1 ORELSE ... ORELSE tacn *) | |
| 23178 | 164 | fun FIRST tacs = fold_rev (curry op ORELSE) tacs no_tac; | 
| 0 | 165 | |
| 1502 | 166 | (* FIRST' [tac1,...,tacn] i equals tac1 i ORELSE ... ORELSE tacn i *) | 
| 23178 | 167 | fun FIRST' tacs = fold_rev (curry op ORELSE') tacs (K no_tac); | 
| 0 | 168 | |
| 169 | (*Apply first tactic to 1*) | |
| 1502 | 170 | fun FIRST1 tacs = FIRST' tacs 1; | 
| 0 | 171 | |
| 11916 | 172 | (*Apply tactics on consecutive subgoals*) | 
| 173 | fun RANGE [] _ = all_tac | |
| 174 | | RANGE (tac :: tacs) i = RANGE tacs (i + 1) THEN tac i; | |
| 175 | ||
| 0 | 176 | |
| 177 | (*Print the current proof state and pass it on.*) | |
| 56491 | 178 | fun print_tac ctxt msg st = | 
| 76051 | 179 | (tracing (msg ^ "\n" ^ Goal_Display.string_of_goal ctxt st); Seq.single st); | 
| 0 | 180 | |
| 181 | ||
| 13108 | 182 | (*Deterministic REPEAT: only retains the first outcome; | 
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changeset | 183 | uses less space than REPEAT; tail recursive. | 
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changeset | 184 | If non-negative, n bounds the number of repetitions.*) | 
| 13108 | 185 | fun REPEAT_DETERM_N n tac = | 
| 60941 | 186 | let | 
| 187 | fun drep 0 st = SOME (st, Seq.empty) | |
| 188 | | drep n st = | |
| 189 | (case Seq.pull (tac st) of | |
| 190 | NONE => SOME(st, Seq.empty) | |
| 191 | | SOME (st', _) => drep (n - 1) st'); | |
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changeset | 192 | in fn st => Seq.make (fn () => drep n st) end; | 
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changeset | 193 | |
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changeset | 194 | (*Allows any number of repetitions*) | 
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changeset | 195 | val REPEAT_DETERM = REPEAT_DETERM_N ~1; | 
| 0 | 196 | |
| 197 | (*General REPEAT: maintains a stack of alternatives; tail recursive*) | |
| 13108 | 198 | fun REPEAT tac = | 
| 60941 | 199 | let | 
| 200 | fun rep qs st = | |
| 201 | (case Seq.pull (tac st) of | |
| 202 | NONE => SOME (st, Seq.make (fn () => repq qs)) | |
| 203 | | SOME (st', q) => rep (q :: qs) st') | |
| 204 | and repq [] = NONE | |
| 205 | | repq (q :: qs) = | |
| 206 | (case Seq.pull q of | |
| 207 | NONE => repq qs | |
| 208 | | SOME (st, q) => rep (q :: qs) st); | |
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changeset | 209 | in fn st => Seq.make (fn () => rep [] st) end; | 
| 0 | 210 | |
| 211 | (*Repeat 1 or more times*) | |
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changeset | 212 | fun REPEAT_DETERM1 tac = DETERM tac THEN REPEAT_DETERM tac; | 
| 0 | 213 | fun REPEAT1 tac = tac THEN REPEAT tac; | 
| 214 | ||
| 215 | ||
| 216 | (** Filtering tacticals **) | |
| 217 | ||
| 4270 | 218 | fun FILTER pred tac st = Seq.filter pred (tac st); | 
| 0 | 219 | |
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changeset | 220 | (*Accept only next states that change the theorem somehow*) | 
| 13108 | 221 | fun CHANGED tac st = | 
| 222 | let fun diff st' = not (Thm.eq_thm (st, st')); | |
| 223 | in Seq.filter diff (tac st) end; | |
| 0 | 224 | |
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changeset | 225 | (*Accept only next states that change the theorem's prop field | 
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changeset | 226 | (changes to signature, hyps, etc. don't count)*) | 
| 13108 | 227 | fun CHANGED_PROP tac st = | 
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changeset | 228 | let fun diff st' = not (Thm.eq_thm_prop (st, st')); | 
| 13108 | 229 | in Seq.filter diff (tac st) end; | 
| 10821 | 230 | |
| 0 | 231 | |
| 232 | (*** Tacticals based on subgoal numbering ***) | |
| 233 | ||
| 13108 | 234 | (*For n subgoals, performs tac(n) THEN ... THEN tac(1) | 
| 1502 | 235 | Essential to work backwards since tac(i) may add/delete subgoals at i. *) | 
| 13108 | 236 | fun ALLGOALS tac st = | 
| 60941 | 237 | let | 
| 238 | fun doall 0 = all_tac | |
| 239 | | doall n = tac n THEN doall (n - 1); | |
| 240 | in doall (Thm.nprems_of st) st end; | |
| 0 | 241 | |
| 1502 | 242 | (*For n subgoals, performs tac(n) ORELSE ... ORELSE tac(1) *) | 
| 13108 | 243 | fun SOMEGOAL tac st = | 
| 60941 | 244 | let | 
| 245 | fun find 0 = no_tac | |
| 246 | | find n = tac n ORELSE find (n - 1); | |
| 247 | in find (Thm.nprems_of st) st end; | |
| 0 | 248 | |
| 1502 | 249 | (*For n subgoals, performs tac(1) ORELSE ... ORELSE tac(n). | 
| 0 | 250 | More appropriate than SOMEGOAL in some cases.*) | 
| 13108 | 251 | fun FIRSTGOAL tac st = | 
| 60941 | 252 | let fun find (i, n) = if i > n then no_tac else tac i ORELSE find (i + 1, n) | 
| 253 | in find (1, Thm.nprems_of st) st end; | |
| 0 | 254 | |
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changeset | 255 | (*First subgoal only.*) | 
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changeset | 256 | fun HEADGOAL tac = tac 1; | 
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changeset | 257 | |
| 1502 | 258 | (*Repeatedly solve some using tac. *) | 
| 259 | fun REPEAT_SOME tac = REPEAT1 (SOMEGOAL (REPEAT1 o tac)); | |
| 260 | fun REPEAT_DETERM_SOME tac = REPEAT_DETERM1 (SOMEGOAL (REPEAT_DETERM1 o tac)); | |
| 0 | 261 | |
| 1502 | 262 | (*Repeatedly solve the first possible subgoal using tac. *) | 
| 263 | fun REPEAT_FIRST tac = REPEAT1 (FIRSTGOAL (REPEAT1 o tac)); | |
| 264 | fun REPEAT_DETERM_FIRST tac = REPEAT_DETERM1 (FIRSTGOAL (REPEAT_DETERM1 o tac)); | |
| 0 | 265 | |
| 1502 | 266 | (*For n subgoals, tries to apply tac to n,...1 *) | 
| 267 | fun TRYALL tac = ALLGOALS (TRY o tac); | |
| 0 | 268 | |
| 269 | ||
| 270 | (*Make a tactic for subgoal i, if there is one. *) | |
| 23224 | 271 | fun CSUBGOAL goalfun i st = | 
| 272 | (case SOME (Thm.cprem_of st i) handle THM _ => NONE of | |
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changeset | 273 | SOME goal => goalfun (goal, i) st | 
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changeset | 274 | | NONE => Seq.empty); | 
| 0 | 275 | |
| 23224 | 276 | fun SUBGOAL goalfun = | 
| 277 | CSUBGOAL (fn (goal, i) => goalfun (Thm.term_of goal, i)); | |
| 278 | ||
| 60941 | 279 | fun ASSERT_SUBGOAL (tac: int -> tactic) i st = | 
| 280 | (Logic.get_goal (Thm.prop_of st) i; tac i st); | |
| 49865 | 281 | |
| 5141 | 282 | (*Returns all states that have changed in subgoal i, counted from the LAST | 
| 283 | subgoal. For stac, for example.*) | |
| 13108 | 284 | fun CHANGED_GOAL tac i st = | 
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changeset | 285 | SUBGOAL (fn (t, _) => | 
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changeset | 286 | let | 
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changeset | 287 | val np = Thm.nprems_of st; | 
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changeset | 288 | val d = np - i; (*distance from END*) | 
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changeset | 289 | fun diff st' = | 
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changeset | 290 | Thm.nprems_of st' - d <= 0 orelse (*the subgoal no longer exists*) | 
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changeset | 291 | not (Envir.aeconv (t, Thm.term_of (Thm.cprem_of st' (Thm.nprems_of st' - d)))); | 
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changeset | 292 | in Seq.filter diff o tac i end) i st; | 
| 5141 | 293 | |
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changeset | 294 | (*Returns all states where some subgoals have been solved. For | 
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changeset | 295 | subgoal-based tactics this means subgoal i has been solved | 
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changeset | 296 | altogether -- no new subgoals have emerged.*) | 
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changeset | 297 | fun SOLVED' tac i st = | 
| 59582 | 298 | tac i st |> Seq.filter (fn st' => Thm.nprems_of st' < Thm.nprems_of st); | 
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changeset | 299 | |
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changeset | 300 | (*Apply second tactic to all subgoals emerging from the first -- | 
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changeset | 301 | following usual convention for subgoal-based tactics.*) | 
| 4602 | 302 | fun (tac1 THEN_ALL_NEW tac2) i st = | 
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changeset | 303 | st |> (tac1 i THEN (fn st' => | 
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changeset | 304 | st' |> Seq.INTERVAL tac2 i (i + Thm.nprems_of st' - Thm.nprems_of st))); | 
| 4602 | 305 | |
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changeset | 306 | (*Repeatedly dig into any emerging subgoals.*) | 
| 8341 | 307 | fun REPEAT_ALL_NEW tac = | 
| 308 | tac THEN_ALL_NEW (TRY o (fn i => REPEAT_ALL_NEW tac i)); | |
| 309 | ||
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changeset | 310 | (*Makes a tactic whose effect on a state is given by thmfun: thm->thm seq.*) | 
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changeset | 311 | fun PRIMSEQ thmfun st = thmfun st handle THM _ => Seq.empty; | 
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changeset | 312 | |
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changeset | 313 | (*Makes a tactic whose effect on a state is given by thmfun: thm->thm.*) | 
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changeset | 314 | fun PRIMITIVE thmfun = PRIMSEQ (Seq.single o thmfun); | 
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changeset | 315 | |
| 23538 | 316 | (*Inverse (more or less) of PRIMITIVE*) | 
| 15570 | 317 | fun SINGLE tacf = Option.map fst o Seq.pull o tacf | 
| 19455 | 318 | |
| 23538 | 319 | (*Conversions as tactics*) | 
| 23584 | 320 | fun CONVERSION cv i st = Seq.single (Conv.gconv_rule cv i st) | 
| 23561 | 321 | handle THM _ => Seq.empty | 
| 322 | | CTERM _ => Seq.empty | |
| 323 | | TERM _ => Seq.empty | |
| 324 | | TYPE _ => Seq.empty; | |
| 23538 | 325 | |
| 0 | 326 | end; | 
| 1502 | 327 | |
| 328 | open Tactical; |