package frama-c
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Platform dedicated to the analysis of source code written in C
Install
dune-project
Dependency
Authors
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MMichele Alberti
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TThibaud Antignac
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GGergö Barany
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PPatrick Baudin
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NNicolas Bellec
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TThibaut Benjamin
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AAllan Blanchard
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LLionel Blatter
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FFrançois Bobot
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RRichard Bonichon
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VVincent Botbol
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QQuentin Bouillaguet
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DDavid Bühler
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ZZakaria Chihani
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SSylvain Chiron
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LLoïc Correnson
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JJulien Crétin
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PPascal Cuoq
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ZZaynah Dargaye
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BBasile Desloges
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JJean-Christophe Filliâtre
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PPhilippe Herrmann
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JJordan Ischard
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MMaxime Jacquemin
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BBenjamin Jorge
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FFlorent Kirchner
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AAlexander Kogtenkov
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RRemi Lazarini
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TTristan Le Gall
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KKilyan Le Gallic
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JJean-Christophe Léchenet
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MMatthieu Lemerre
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DDara Ly
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DDavid Maison
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CClaude Marché
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AAndré Maroneze
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TThibault Martin
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FFonenantsoa Maurica
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MMelody Méaulle
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BBenjamin Monate
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NNicky Mouha
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YYannick Moy
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PPierre Nigron
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AAnne Pacalet
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VValentin Perrelle
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GGuillaume Petiot
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DDario Pinto
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VVirgile Prevosto
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AArmand Puccetti
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FFélix Ridoux
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VVirgile Robles
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JJan Rochel
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MMuriel Roger
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CCécile Ruet-Cros
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JJulien Signoles
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FFabien Siron
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NNicolas Stouls
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HHugo Thievenaz
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KKostyantyn Vorobyov
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BBoris Yakobowski
Maintainers
Sources
frama-c-33.0-Arsenic.tar.gz
sha256=9c1cbffd28bb33c17a668107e39c96e4ae7378a3d8249f69b47afc7ee964e9b8
doc/src/frama-c-wp.core/VCS.ml.html
Source file VCS.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(**************************************************************************) (* *) (* SPDX-License-Identifier LGPL-2.1 *) (* Copyright (C) *) (* CEA (Commissariat à l'énergie atomique et aux énergies alternatives) *) (* *) (**************************************************************************) (* -------------------------------------------------------------------------- *) (* --- Config --- *) (* -------------------------------------------------------------------------- *) type config = { valid : bool ; timeout : float option ; stepout : int option ; memlimit : int option ; } let current () = let t = Wp_parameters.Timeout.get () in let s = Wp_parameters.Steps.get () in let m = Wp_parameters.Memlimit.get () in { valid = false ; timeout = if t > 0 then Some (float t) else None ; stepout = if s > 0 then Some s else None ; memlimit = if m > 0 then Some m else None ; } let default = { valid = false ; timeout = None ; stepout = None ; memlimit = None } let get_timeout ?kf ~smoke = function | { timeout = None } -> if smoke then float @@ Wp_parameters.SmokeTimeout.get () else let t = match Option.map Wp_parameters.FctTimeout.find kf with | None | exception Not_found -> Wp_parameters.Timeout.get () | Some timeout -> timeout in float t | { timeout = Some t } -> t let get_stepout = function | { stepout = None } -> Wp_parameters.Steps.get () | { stepout = Some t } -> t let get_memlimit = function | { memlimit = None } -> Wp_parameters.Memlimit.get () | { memlimit = Some t } -> t (* -------------------------------------------------------------------------- *) (* --- Results --- *) (* -------------------------------------------------------------------------- *) type verdict = | NoResult | Unknown | Timeout | Stepout | Computing of (unit -> unit) (* kill function *) | Valid | Invalid (* model *) | Failed type model = Why3Provers.model Probe.Map.t type result = { verdict : verdict ; cached : bool ; solver_time : float ; prover_time : float ; prover_steps : int ; prover_errpos : Lexing.position option ; prover_errmsg : string ; prover_model : model ; } let is_result = function | Valid | Invalid | Unknown | Timeout | Stepout | Failed -> true | NoResult | Computing _ -> false let is_verdict r = is_result r.verdict let is_valid = function { verdict = Valid } -> true | _ -> false let is_trivial r = is_valid r && r.prover_time = 0.0 let is_not_valid r = is_verdict r && not (is_valid r) let is_computing = function { verdict=Computing _ } -> true | _ -> false let has_model r = not @@ Probe.Map.is_empty r.prover_model let is_cacheable r = match r.verdict with | Valid -> r.prover_time <> 0.0 | Invalid | Unknown | Timeout | Stepout -> not (has_model r) | Failed | NoResult | Computing _ -> false let is_none = function { verdict=NoResult } -> true | _ -> false let is_proved ~smoke = function | NoResult | Computing _ | Failed -> false | Valid -> not smoke | Unknown | Timeout | Stepout | Invalid -> smoke let configure r = let valid = (r.verdict = Valid) in let timeout = let t = r.prover_time in if t > 0.0 then let timeout = float @@ max 0 @@ Wp_parameters.Timeout.get() in let margin = float @@ max 0 @@ Wp_parameters.TimeExtra.get () in Some(timeout +. margin) else None in let stepout = if r.prover_steps > 0 && r.prover_time <= 0.0 then let stepout = max 0 @@ Wp_parameters.Steps.get () in let margin = 1000 in Some(max stepout margin) else None in let memlimit = let m = Wp_parameters.Memlimit.get () in if m > 0 then Some m else None in { valid ; timeout ; stepout ; memlimit ; } let time_fits t = t = 0.0 || let timeout = float @@ Wp_parameters.Timeout.get () in timeout = 0.0 || let margin = float_of_string @@ Wp_parameters.TimeMargin.get () in t +. margin <= timeout let step_fits n = n = 0 || let stepout = Wp_parameters.Steps.get () in stepout = 0 || n < stepout let autofit r = time_fits r.prover_time && step_fits r.prover_steps let result ?(model=Probe.Map.empty) ?(cached=false) ?(solver=0.0) ?(time=0.0) ?(steps=0) verdict = { verdict ; cached = cached ; solver_time = solver ; prover_time = time ; prover_steps = steps ; prover_errpos = None ; prover_errmsg = "" ; prover_model = model; } let no_result = result NoResult let valid = result Valid let unknown = result Unknown let timeout t = result ~time:t Timeout let stepout n = result ~steps:n Stepout let computing kill = result (Computing kill) let failed ?pos msg = { verdict = Failed ; cached = false ; solver_time = 0.0 ; prover_time = 0.0 ; prover_steps = 0 ; prover_errpos = pos ; prover_errmsg = msg ; prover_model = Probe.Map.empty ; } let cached r = if is_verdict r then { r with cached=true } else r let kfailed ?pos msg = Format.kasprintf (failed ?pos) msg let pp_perf_forced fmt r = begin let t = r.solver_time in if t > Rformat.epsilon then Format.fprintf fmt " (Qed:%a)" Rformat.pp_time t ; let t = r.prover_time in if t > Rformat.epsilon then Format.fprintf fmt " (%a)" Rformat.pp_time t ; let s = r.prover_steps in if s > 0 then Format.fprintf fmt " (%d)" s ; if r.cached then Format.fprintf fmt " (cached)" ; end let pp_perf_shell fmt r = if not (Wp_parameters.has_dkey Prover.dkey_shell) then pp_perf_forced fmt r let name_of_verdict ?(computing=false) = function | NoResult -> "none" | Computing _ -> if computing then "computing" else "none" | Valid -> "valid" | Invalid -> "invalid" | Failed -> "failed" | Unknown -> "unknown" | Stepout -> "stepout" | Timeout -> "timeout" let pp_hasmodel fmt (r : result) = if not @@ Probe.Map.is_empty r.prover_model then Format.fprintf fmt " (Model)" let pp_result fmt r = match r.verdict with | NoResult -> Format.pp_print_string fmt "No Result" | Computing _ -> Format.pp_print_string fmt "Computing" | Failed -> Format.fprintf fmt "Failed@ %s" r.prover_errmsg | Valid -> Format.fprintf fmt "Valid%a" pp_perf_shell r | Invalid -> Format.fprintf fmt "Invalid%a" pp_hasmodel r | Unknown -> Format.fprintf fmt "Unknown%a%a" pp_hasmodel r pp_perf_shell r | Stepout -> Format.fprintf fmt "Step limit%a" pp_perf_shell r | Timeout -> Format.fprintf fmt "Timeout%a" pp_perf_shell r let is_qualified prover result = match prover with | Prover.Qed | CFG | Tactical -> true | Why3 _ -> result.cached || result.prover_time <= Rformat.epsilon let pp_cache_miss fmt st updating prover result = if not updating && not (is_qualified prover result) && Wp_parameters.has_dkey Prover.dkey_shell then Format.fprintf fmt "%s%a (missing cache)" st pp_perf_forced result else if is_valid result then Format.pp_print_string fmt "Valid" else Format.fprintf fmt "Unsuccess%a" pp_hasmodel result let pp_result_qualif ?(updating=true) prover result fmt = if Wp_parameters.has_dkey Prover.dkey_shell then match result.verdict with | NoResult -> Format.pp_print_string fmt "No Result" | Computing _ -> Format.pp_print_string fmt "Computing" | Failed -> Format.fprintf fmt "Failed@ %s" result.prover_errmsg | Valid -> pp_cache_miss fmt "Valid" updating prover result | Invalid -> pp_cache_miss fmt "Invalid" updating prover result | Unknown -> pp_cache_miss fmt "Unsuccess" updating prover result | Timeout -> pp_cache_miss fmt "Timeout" updating prover result | Stepout -> pp_cache_miss fmt "Stepout" updating prover result else pp_result fmt result let pp_model fmt model = Probe.Map.iter (fun probe model -> Format.fprintf fmt "@[<hov 2>Model %a = %a@]@\n" Probe.pretty probe Why3Provers.pp_model model ) model let vrank = function | NoResult -> 1 | Failed -> 2 | Unknown -> 3 | Timeout -> 4 | Stepout -> 5 | Valid -> 6 | Invalid -> 7 | Computing _ -> 8 let conjunction a b = if a == b then a else match a,b with | Computing p , Computing q -> Computing (fun () -> p () ; q ()) | Computing _ , _ -> a | _ , Computing _ -> b | Valid,Valid -> Valid | Valid,r | r,Valid -> r | _ -> if vrank b > vrank a then b else a let msize m = Probe.Map.fold (fun _ _ n -> succ n) m 0 let compare p q = match is_valid p , is_valid q with | true , false -> (-1) | false , true -> (+1) | _ -> let s = msize q.prover_model - msize p.prover_model in if s <> 0 then s else let r = vrank q.verdict - vrank p.verdict in if r <> 0 then r else let s = Stdlib.compare p.prover_steps q.prover_steps in if s <> 0 then s else let t = Stdlib.compare p.prover_time q.prover_time in if t <> 0 then t else Stdlib.compare p.solver_time q.solver_time let bestp pr1 pr2 = if compare (snd pr1) (snd pr2) <= 0 then pr1 else pr2 let best = List.fold_left bestp (Prover.Qed,no_result)
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