package wax-lib
sectionYPositions = computeSectionYPositions($el), 10)"
x-init="setTimeout(() => sectionYPositions = computeSectionYPositions($el), 10)"
>
Libraries for Wax, a Rust-like syntax for WebAssembly
Install
dune-project
Dependency
Authors
Maintainers
Sources
wax-v0.2.0.tbz
sha256=4361e1324b7754a4c08ab5b505df32061f3ce0cea60443fd0d3699e0fa796b32
sha512=fcc756d2f160ba90a9aa1131f2ab22ed7f45466ccd658c21cf9df6868a6aab0cee7f404719d698a379958802f9820398f2fe0685ecc4dda018ca4f653294e39b
doc/src/wax-lib.wasm/cond_plan.ml.html
Source file cond_plan.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 322type item = | Cond of { key : Ast.location; cond : Ast.cond; then_ : item list; else_ : item list option; } | Body of { rank : int; items : item list } type run = int (* A conditional's identity: the byte span of its own node. *) type key = int * int let key_of (l : Ast.location) : key = (l.loc_start.pos_cnum, l.loc_end.pos_cnum) module Bdd_tbl = Hashtbl.Make (struct type t = Cond_solver.t let equal = Cond_solver.equal let hash = Cond_solver.hash end) type t = { decisions : (run * key, bool) Hashtbl.t; (* Every decision each run made at every conditional it reached. *) owners : (key * bool, run) Hashtbl.t; (* The run that owns each branch (the first to select it). *) node_owner : (key, run) Hashtbl.t; (* The run owning the branch a conditional sits directly in; the primary run for a top-level one. *) assumptions : (run, Cond_solver.t) Hashtbl.t; (* Each run's full assumption: the conjunction of the literals of every decision it made ([false_] for a forced run). *) env : Cond_solver.env; n_runs : int; truncated : bool; items : item list; } let max_runs = 4096 (* The conditionals directly inside a branch, through the bodies it holds. *) let rec direct items = List.concat_map (function | Cond { key; _ } -> [ key_of key ] | Body { items; _ } -> direct items) items (* Every branch the shape holds, outermost first. *) let rec branches items = List.concat_map (function | Cond { key; then_; else_; _ } -> let k = key_of key in ((k, true) :: branches then_) @ Option.fold ~none:[] ~some:(fun e -> (k, false) :: branches e) else_ | Body { items; _ } -> branches items) items let make ?(exhaustive = false) diagnostics items = let env = Cond_solver.create () in (* Translate each condition once. *) let formulas = Hashtbl.create 16 in let formula location cond = let k = key_of location in match Hashtbl.find_opt formulas k with | Some f -> f | None -> let f = Cond_solver.of_cond env diagnostics ~location cond in Hashtbl.replace formulas k f; f in let decisions = Hashtbl.create 16 in let owners = Hashtbl.create 16 in let node_owner = Hashtbl.create 16 in let assumptions = Hashtbl.create 16 in let n_runs = ref 0 in let truncated = ref false in List.iter (fun k -> Hashtbl.replace node_owner k 0) (direct items); (* One run: [decide] is called at each conditional reached, in stream order, and returns the selected side; [asm] accumulates the assumption. *) let walk r ~seed ~decide = let asm = ref seed in let bodies = ref [] in let claim k side inside = if not (Hashtbl.mem owners (k, side)) then begin Hashtbl.replace owners (k, side) r; List.iter (fun k' -> Hashtbl.replace node_owner k' r) (direct inside) end in let rec conds items = List.iter (function | Cond { key; cond; then_; else_ } -> let k = key_of key in let f = formula key cond in let d = decide k ~asm:!asm f ~has_else:(else_ <> None) in Hashtbl.replace decisions (r, k) d; asm := Cond_solver.and_ !asm (if d then f else Cond_solver.not_ f); let inside = if d then Some then_ else else_ in Option.iter (fun inside -> claim k d inside; conds inside) inside | Body { rank; items } -> bodies := (rank, items) :: !bodies) items in conds items; let bodies = List.stable_sort (fun (a, _) (b, _) -> compare a b) (List.rev !bodies) in List.iter (fun (_, items) -> conds items) bodies; Hashtbl.replace assumptions r !asm in (* Phase A: the worlds that exist. Each unselected branch nobody owns or has a run queued for gets a run seeded with the assumption that selects it; the queued run replays the same path (its seed entails every decision on it) and so selects that branch. Seeds are deduplicated by formula: an equal seed makes equal decisions. An [exhaustive] plan queues EVERY reachable other side, ownership or not, so it visits every reachable configuration (up to [max_runs]). *) let queue = Queue.create () in Queue.push Cond_solver.true_ queue; let seen = Bdd_tbl.create 16 in let pending = Hashtbl.create 16 in while (not (Queue.is_empty queue)) && not !truncated do let seed = Queue.pop queue in if not (Bdd_tbl.mem seen seed) then if !n_runs >= max_runs then truncated := true else begin Bdd_tbl.add seen seed (); let r = !n_runs in incr n_runs; walk r ~seed ~decide:(fun k ~asm f ~has_else -> let d = Cond_solver.is_satisfiable (Cond_solver.and_ asm f) in let other = not d in (* An exhaustive plan explores the other side even when it is no branch at all (a conditional without [else]): the world where the then-branch is absent is a configuration to check too. A covering plan needs only the branches that exist typed. *) if exhaustive || (other || has_else) && (not (Hashtbl.mem owners (k, other))) && not (Hashtbl.mem pending (k, other)) then begin let seed' = Cond_solver.and_ asm (if other then f else Cond_solver.not_ f) in if Cond_solver.is_satisfiable seed' then begin Hashtbl.replace pending (k, other) (); Queue.push seed' queue end end; d) end done; (* Phase B: the branches no world reaches. Outermost first (a dead branch's own nested branches become forceable once it is owned): replay the owner of the enclosing branch and force the selection; under the resulting inconsistent assumption every further conditional takes its else-branch, the one side that always exists. An exhaustive plan explores only what is reachable, as the checking it serves reports nothing about dead code. *) let all = if exhaustive then [] else branches items in let progress = ref true in while !progress do progress := false; List.iter (fun (k, side) -> if not (Hashtbl.mem owners (k, side)) then match Hashtbl.find_opt node_owner k with | None -> () | Some parent -> progress := true; let r = !n_runs in incr n_runs; walk r ~seed:Cond_solver.false_ ~decide:(fun k' ~asm:_ _f ~has_else:_ -> if k' = k then side else match Hashtbl.find_opt decisions (parent, k') with | Some d -> d | None -> false)) all done; { decisions; owners; node_owner; assumptions; env; n_runs = !n_runs; truncated = !truncated; items; } let runs t = List.init t.n_runs Fun.id let truncated t = t.truncated let assumption t r = Hashtbl.find t.assumptions r let explain t ?style f = Cond_solver.explain t.env ?style f let primary _ = 0 let select t r (location : Ast.location) = match Hashtbl.find_opt t.decisions (r, key_of location) with | Some d -> d | None -> failwith (Printf.sprintf "Cond_plan.select: run %d never reaches the conditional at %d-%d" r location.loc_start.pos_cnum location.loc_end.pos_cnum) let owner t location side = Hashtbl.find_opt t.owners (key_of location, side) let select_owned t (location : Ast.location) = let k = key_of location in match Hashtbl.find_opt t.node_owner k with | Some r -> select t r location | None -> failwith (Printf.sprintf "Cond_plan.select_owned: unplanned conditional at %d-%d" location.loc_start.pos_cnum location.loc_end.pos_cnum) (* The shape of a Wasm-text module's conditionals: the mirror, over the source text, of the Wax typer's [Typing.plan_shape] over the Wax tree the Wasm→Wax conversion emits — the same nodes at the same spans (each emitted node keeps its source location), the field-level ones in order with their nested ones, the bodies (initializers at rank 0, function bodies at rank 1) holding the statement-level ones in stream order, a folded instruction's operands before its head, as they unfold. Also what the WAT validator explores. *) let text_shape fields = let rec instrs l = List.concat_map instr l and instr (i : _ Ast.Text.instr) = match i.desc with | If_annotation { cond; then_body; else_body } -> [ Cond { key = i.info; cond; then_ = instrs then_body.desc; else_ = Option.map (fun (b : (_ list, _) Ast.annotated) -> instrs b.desc) else_body; }; ] | Block { block; _ } | Loop { block; _ } | TryTable { block; _ } -> instrs block.desc | If { if_block; else_block; _ } -> instrs if_block.desc @ instrs else_block.desc | Try { block; catches; catch_all; _ } -> instrs block.desc @ List.concat_map (fun (_, (b : (_ list, _) Ast.annotated)) -> instrs b.desc) catches @ Option.fold ~none:[] ~some:(fun (b : (_ list, _) Ast.annotated) -> instrs b.desc) catch_all | Folded (h, operands) -> instrs operands @ instr h | _ -> [] in let body rank l = match instrs l with [] -> [] | items -> [ Body { rank; items } ] in let rec fields_ l = List.concat_map (fun (f : (_ Ast.Text.modulefield, _) Ast.annotated) -> match f.desc with | Module_if_annotation { cond; then_fields; else_fields } -> [ Cond { key = f.info; cond; then_ = fields_ then_fields.desc; else_ = Option.map (fun (e : (_ list, _) Ast.annotated) -> fields_ e.desc) else_fields; }; ] | Func { instrs = l; _ } -> body 1 l | Global { init; _ } -> body 0 init | Data { mode = Active (_, off); _ } -> body 0 off | Elem { init; mode; _ } -> body 0 (List.concat init @ match mode with | Active (_, off) -> off | Passive | Declare -> []) | Table { init = Init_expr e; _ } -> body 0 e | Table { init = Init_segment exprs; _ } -> body 0 (List.concat exprs) | _ -> []) l in fields_ fields (* Every branch of the shape with its key and the conditional's span, outermost first. *) let rec located_branches items = List.concat_map (function | Cond { key; then_; else_; _ } -> ((key, true) :: located_branches then_) @ Option.fold ~none:[] ~some:(fun e -> (key, false) :: located_branches e) else_ | Body { items; _ } -> located_branches items) items let dead_branches t = List.filter (fun (location, side) -> let k = key_of location in (not (Hashtbl.mem t.owners (k, side))) (* Only the outermost dead branch of a nest: a conditional inside a dead branch is never decided, so it has no owning run of its own. *) && Hashtbl.mem t.node_owner k) (located_branches t.items)
sectionYPositions = computeSectionYPositions($el), 10)"
x-init="setTimeout(() => sectionYPositions = computeSectionYPositions($el), 10)"
>