package rocq-runtime
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The Rocq Prover -- Core Binaries and Tools
Install
dune-project
Dependency
Authors
Maintainers
Sources
rocq-9.3.0.tar.gz
sha256=3f0fc283e8644394aa9c7a6e3995b6d9ebbe1e6dda712bf431f9c372dcef95ad
doc/src/rocq-runtime.lib/hopcroft.ml.html
Source file hopcroft.ml
1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 48 49 50 51 52 53 54 55 56 57 58 59 60 61 62 63 64 65 66 67 68 69 70 71 72 73 74 75 76 77 78 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 94 95 96 97 98 99 100 101 102 103 104 105 106 107 108 109 110 111 112 113 114 115 116 117 118 119 120 121 122 123 124 125 126 127 128 129 130 131 132 133 134 135 136 137 138 139 140 141 142 143 144 145 146 147 148 149 150 151 152 153 154 155 156 157 158 159 160 161 162 163 164 165 166 167 168 169 170 171 172 173 174 175 176 177 178 179 180 181 182 183 184 185 186 187 188 189 190 191 192 193 194 195 196 197 198 199 200 201 202 203 204 205 206 207 208 209 210 211 212 213 214 215 216 217 218 219 220 221 222 223 224 225 226 227 228 229 230 231 232 233 234 235 236 237 238 239 240 241 242 243 244 245 246 247 248 249 250 251 252 253 254 255 256 257 258 259 260 261 262 263 264 265 266 267 268 269 270 271 272 273 274 275 276 277 278 279 280 281 282 283 284 285 286 287 288 289 290 291 292 293 294 295 296 297 298 299 300 301 302 303 304 305 306 307 308 309 310 311 312 313 314 315 316 317 318 319 320 321 322 323 324 325 326 327 328 329 330 331 332 333 334 335 336 337 338 339 340 341 342 343 344 345 346 347 348 349 350 351 352 353 354 355 356 357 358 359 360 361 362 363 364 365(************************************************************************) (* * The Rocq Prover / The Rocq Development Team *) (* v * Copyright INRIA, CNRS and contributors *) (* <O___,, * (see version control and CREDITS file for authors & dates) *) (* \VV/ **************************************************************) (* // * This file is distributed under the terms of the *) (* * GNU Lesser General Public License Version 2.1 *) (* * (see LICENSE file for the text of the license) *) (************************************************************************) (** Partition refinement algorithm *) module type PartitionS = sig type t (** Type of partition structure *) type set (** Type of partitions *) val create : int -> t (** Create a partition structure of the given size *) val length : t -> int (** Number of partitions *) val size : set -> t -> int (** Number of elements of a partition *) val partition : int -> t -> set (** [partition i t] returns the index of the partition which contains [i] *) val iter : set -> (int -> unit) -> t -> unit (** Iter on elements of a partition. Don't [mark] and [split] in the loop! *) val fold : set -> (int -> 'a -> 'a) -> t -> 'a -> 'a (** Fold left to right on elements of a partition. Don't [mark] and [split] in the loop! *) val iter_all : (set -> unit) -> t -> unit (** Iter on partitions. Don't [mark] and [split] in the loop! *) val fold_all : (set -> 'a -> 'a) -> t -> 'a -> 'a (** Fold left to right on partitions. Don't [mark] and [split] in the loop! *) val mark : int -> t -> unit (** Mark an element for splitting *) val split : set -> t -> set (** Performs splitting and return the set of marked elements *) val is_marked : set -> t -> bool (** Returns [true] if some element of the set is marked *) val is_valid : set -> bool (** Test whether a splitting succeeded *) val represent : set -> int (** Associate a unique number to each partition. If the partition is valid, then the returned number is guaranteed to be between [0] and [len - 1] when [len] is the number of partitions of the structure. *) end module Partition = struct type set = int type t = { mutable partitions : int; (** number of partitions *) mutable first : int array; (** index of the first element of a partition *) mutable last : int array; (** successor index of the last element of a partition *) mutable marked : int array; (** index of the last marked element of a partition *) index : set array; (** associate a partition to an element *) elements : int array; (** contain elements in a contiguous way w.r.t. partitions *) location : int array; (** keep the location of an element in [elements] *) } let initial_size n = max (n / 100) 7 let create n = { partitions = 0; first = Array.make (initial_size n) 0; last = Array.make (initial_size n) n; marked = Array.make (initial_size n) 0; index = Array.make n 0; elements = Array.init n (fun i -> i); location = Array.init n (fun i -> i); } let uget (t : int array) i = Array.get t i let uset (t : int array) i x = Array.set t i x let length t = succ t.partitions let size s t = uget t.last s - uget t.first s let partition i t = uget t.index i let iter s f t = let fst = uget t.first s in let lst = uget t.last s in for i = fst to lst - 1 do f (uget t.elements i); done let fold s f t accu = let fst = uget t.first s in let lst = uget t.last s in let rec fold accu i = if lst <= i then accu else fold (f (uget t.elements i) accu) (succ i) in fold accu fst let iter_all f t = for i = 0 to t.partitions do f i; done let fold_all f t accu = let rec fold accu i = if t.partitions <= i then accu else fold (f i accu) (succ i) in fold accu 0 let resize t = let len = Array.length t.first in if len <= t.partitions then begin let nlen = 2 * len + 1 in let pfirst = t.first in let plast = t.last in let pmarked = t.marked in let nfirst = Array.make nlen 0 in let nlast = Array.make nlen 0 in let nmarked = Array.make nlen 0 in for i = 0 to pred len do uset nfirst i (uget pfirst i); uset nlast i (uget plast i); uset nmarked i (uget pmarked i); done; t.first <- nfirst; t.last <- nlast; t.marked <- nmarked; end let split s t = if uget t.marked s = uget t.last s then uset t.marked s (uget t.first s); if uget t.marked s = uget t.first s then -1 (* Nothing to split *) else begin let len = succ t.partitions in t.partitions <- len; resize t; uset t.first len (uget t.first s); uset t.marked len (uget t.first s); uset t.last len (uget t.marked s); uset t.first s (uget t.marked s); for i = uget t.first len to pred (uget t.last len) do uset t.index (uget t.elements i) len; done; len end let mark i t = let set = uget t.index i in let loc = uget t.location i in let mark = uget t.marked set in if mark <= loc then begin uset t.elements loc (uget t.elements mark); uset t.location (uget t.elements loc) loc; uset t.elements mark i; uset t.location i mark; uset t.marked set (succ mark); end let is_marked s t = (uget t.marked s) <> (uget t.first s) let is_valid s = 0 <= s let represent s = s end (** Hopcroft algorithm *) module type S = sig type label type state type transition = { src : state; lbl : label; dst : state; } type automaton = { states : int; partitions : state list list; transitions : transition list; } val reduce : automaton -> state list array end module Make (Label : Map.OrderedType) : S with type label = Label.t and type state = int = struct type label = Label.t type state = int type transition = { src : state; lbl : label; dst : state; } module TMap = Map.Make(Label) type automaton = { states : int; partitions : state list list; transitions : transition list; } (** Partitions of states *) module SPartition : PartitionS = Partition (** Partitions of transitions *) module TPartition : PartitionS = Partition type environment = { state_partition : SPartition.t; splitter_partition : TPartition.t; transition_source : int array; } (** Associate the list of transitions ending in a given state *) let reverse automaton = let ans = Array.make automaton.states [] in let add (x : int) l = (* if List.mem x l then l else *) x :: l in let iter i trans = let l = Array.get ans trans.dst in Array.set ans trans.dst (add i l) in let () = List.iteri iter automaton.transitions in ans let init automaton = let transitions = automaton.transitions in let len = List.length transitions in (* Sort transitions according to their label *) let env = { state_partition = SPartition.create automaton.states; splitter_partition = TPartition.create len; transition_source = Array.make len (-1); } in (* Set the source of the transitions *) let iteri i trans = env.transition_source.(i) <- trans.src in let () = List.iteri iteri transitions in (* Split splitters according to their label *) let fold i accu trans = match TMap.find_opt trans.lbl accu with | None -> TMap.add trans.lbl [i] accu | Some l -> TMap.add trans.lbl (i :: l) accu in let lblmap = CList.fold_left_i fold 0 TMap.empty transitions in let p = env.splitter_partition in let pt = TPartition.partition 0 p in let iter _ trs = let iter idx = TPartition.mark idx p in let () = List.iter iter trs in ignore (TPartition.split pt p : TPartition.set) in let () = TMap.iter iter lblmap in (* Push every splitter in the todo stack *) let fold pt todo = pt :: todo in let splitter_todo = TPartition.fold_all fold env.splitter_partition [] in env, splitter_todo, automaton.partitions let split_partition s inv env todo = let p = env.state_partition in let r = SPartition.split s p in if SPartition.is_valid r then begin let r = if SPartition.size r p < SPartition.size s p then r else s in let fold state accu = let fold accu trans = let pt = TPartition.partition trans env.splitter_partition in let accu = if TPartition.is_marked pt env.splitter_partition then accu else pt :: accu in let () = TPartition.mark trans env.splitter_partition in accu in List.fold_left fold accu inv.(state) in let splitter_touched = SPartition.fold r fold p [] in let fold_touched todo pt = let npt = TPartition.split pt env.splitter_partition in if TPartition.is_valid npt then npt :: todo else todo in List.fold_left fold_touched todo splitter_touched end else todo let reduce_aux automaton = let env, splitter_todo, initial = init automaton in let inv = reverse automaton in (* Mark every state in each initial partition and split *) let ps = SPartition.partition 0 env.state_partition in let splitter_todo = let separate todo pt = let iter state () = SPartition.mark state env.state_partition in let () = List.fold_right iter pt () in split_partition ps inv env todo in List.fold_left separate splitter_todo initial in (* Main loop *) let rec loop = function | [] -> () | pt :: todo -> let fold t state_touched = let previous = env.transition_source.(t) in let equiv = SPartition.partition previous env.state_partition in let state_touched = if SPartition.is_marked equiv env.state_partition then state_touched else equiv :: state_touched in let () = SPartition.mark previous env.state_partition in state_touched in let state_touched = TPartition.fold pt fold env.splitter_partition [] in let fold_touched todo equiv = split_partition equiv inv env todo in let splitter_todo = List.fold_left fold_touched todo state_touched in loop splitter_todo in let () = loop splitter_todo in (env, inv) let reduce automaton = let (ans, _) = reduce_aux automaton in let mapping = Array.make (SPartition.length ans.state_partition) [] in let iter set = let pi = SPartition.represent set in let iter i = let map = Array.get mapping pi in Array.set mapping pi (i :: map) in SPartition.iter set iter ans.state_partition in let () = SPartition.iter_all iter ans.state_partition in mapping end
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