package frama-c
Platform dedicated to the analysis of source code written in C
Install
Dune Dependency
Authors
-
MMichele Alberti
-
TThibaud Antignac
-
GGergö Barany
-
PPatrick Baudin
-
NNicolas Bellec
-
TThibaut Benjamin
-
AAllan Blanchard
-
LLionel Blatter
-
FFrançois Bobot
-
RRichard Bonichon
-
VVincent Botbol
-
QQuentin Bouillaguet
-
DDavid Bühler
-
ZZakaria Chihani
-
LLoïc Correnson
-
JJulien Crétin
-
PPascal Cuoq
-
ZZaynah Dargaye
-
BBasile Desloges
-
JJean-Christophe Filliâtre
-
PPhilippe Herrmann
-
MMaxime Jacquemin
-
FFlorent Kirchner
-
AAlexander Kogtenkov
-
RRemi Lazarini
-
TTristan Le Gall
-
JJean-Christophe Léchenet
-
MMatthieu Lemerre
-
DDara Ly
-
DDavid Maison
-
CClaude Marché
-
AAndré Maroneze
-
TThibault Martin
-
FFonenantsoa Maurica
-
MMelody Méaulle
-
BBenjamin Monate
-
YYannick Moy
-
PPierre Nigron
-
AAnne Pacalet
-
VValentin Perrelle
-
GGuillaume Petiot
-
DDario Pinto
-
VVirgile Prevosto
-
AArmand Puccetti
-
FFélix Ridoux
-
VVirgile Robles
-
JJan Rochel
-
MMuriel Roger
-
JJulien Signoles
-
NNicolas Stouls
-
KKostyantyn Vorobyov
-
BBoris Yakobowski
Maintainers
Sources
frama-c-29.0-Copper.tar.gz
sha256=d2fbb3b8d0ff83945872e9e6fa258e934a706360e698dae3b4d5f971addf7493
doc/src/frama-c-wp.core/Plang.ml.html
Source file Plang.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
(**************************************************************************) (* *) (* This file is part of WP plug-in of Frama-C. *) (* *) (* Copyright (C) 2007-2024 *) (* CEA (Commissariat a l'energie atomique et aux energies *) (* alternatives) *) (* *) (* you can redistribute it and/or modify it under the terms of the GNU *) (* Lesser General Public License as published by the Free Software *) (* Foundation, version 2.1. *) (* *) (* It is distributed in the hope that it will be useful, *) (* but WITHOUT ANY WARRANTY; without even the implied warranty of *) (* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the *) (* GNU Lesser General Public License for more details. *) (* *) (* See the GNU Lesser General Public License version 2.1 *) (* for more details (enclosed in the file licenses/LGPLv2.1). *) (* *) (**************************************************************************) open Format open Qed.Logic open Qed.Engine open Lang open Lang.F (* -------------------------------------------------------------------------- *) (* --- Variables Marker --- *) (* -------------------------------------------------------------------------- *) type pool = { mutable vars : Vars.t ; mutable mark : Tset.t ; } let pool () = { vars = Vars.empty ; mark = Tset.empty } let alloc_domain p = p.vars let rec walk p f e = if not (Tset.mem e p.mark) && not (Vars.subset (F.vars e) p.vars) then begin p.mark <- Tset.add e p.mark ; match F.repr e with | Fvar x -> p.vars <- Vars.add x p.vars ; f x | _ -> F.lc_iter (walk p f) e end let alloc_e = walk let alloc_p pool f p = walk pool f (F.e_prop p) let alloc_xs pool f xs = let ys = Vars.diff xs pool.vars in if not (Vars.is_empty ys) then begin Vars.iter f ys ; pool.vars <- Vars.union xs pool.vars ; end (* -------------------------------------------------------------------------- *) (* --- Lang Pretty Printer --- *) (* -------------------------------------------------------------------------- *) module E = Qed.Export.Make(Lang.F.QED) module Env = E.Env type scope = Qed.Engine.scope type iformat = [ `Dec | `Hex | `Bin ] type rformat = [ `Ratio | `Float | `Double ] let sanitizer = Qed.Export.sanitize ~to_lowercase:false class engine = object(self) inherit E.engine as super inherit Lang.idprinting (* --- Types --- *) method t_int = "Z" method t_real = "R" method t_bool = "bool" method t_prop = "Prop" method t_atomic _ = true method pp_tvar fmt k = if 0 <= k && k < 26 then fprintf fmt "'%c" (char_of_int (int_of_char 'a' + k)) else fprintf fmt "'%d" (k-26) method pp_array fmt t = fprintf fmt "%a[]" self#pp_subtau t method pp_farray fmt t k = fprintf fmt "@[<hov 2>%a[%a]@]" self#pp_subtau t self#pp_tau k method pp_datatype a fmt ts = Qed.Plib.pp_call_var ~f:(self#datatype a) self#pp_tau fmt ts (* --- Booleans --- *) method e_true _ = "true" method e_false _ = "false" (* --- Integers --- *) val mutable iformat : iformat = `Dec method get_iformat = iformat method set_iformat (f : iformat) = iformat <- f method pp_int _ fmt z = try let n = Integer.to_int_exn z in if -256 <= n && n <= 256 then Format.pp_print_int fmt n else raise Z.Overflow with Z.Overflow -> match iformat with | `Dec -> Integer.pretty fmt z | `Hex -> Integer.pp_hex ~sep:"," fmt z | `Bin -> Integer.pp_bin ~sep:"," fmt z (* --- Reals --- *) val mutable rformat : rformat = `Ratio method get_rformat = rformat method set_rformat (f : rformat) = rformat <- f method pp_real fmt q = match Q.classify q with | Q.ZERO -> Format.pp_print_string fmt ".0" | Q.INF -> Format.pp_print_string fmt "(1/.0)" | Q.MINF -> Format.pp_print_string fmt "(-1/.0)" | Q.UNDEF -> Format.pp_print_string fmt "(.0/.0)" | Q.NZERO -> match rformat with | `Ratio -> let { Q.num = num ; Q.den = den } = q in if Z.equal den Z.one then Format.fprintf fmt "%s.0" (Z.to_string num) else Format.fprintf fmt "(%s.0/%s)" (Z.to_string num) (Z.to_string den) | `Float -> Format.fprintf fmt "%sf" (Cfloat.float_lit Ctypes.Float32 q) | `Double -> Format.fprintf fmt "%sd" (Cfloat.float_lit Ctypes.Float64 q) (* --- Atomicity --- *) method callstyle = CallVar method is_atomic e = match F.repr e with | Kint z -> Z.leq Z.zero z | Kreal _ -> true | Apply _ -> true | Aset _ | Aget _ | Fun _ -> true | _ -> F.is_simple e (* --- Operators --- *) method op_spaced = Qed.Export.is_identifier method op_scope _ = None method op_real_of_int = Op "(R)" method op_add _ = Assoc "+" method op_sub _ = Assoc "-" method op_mul _ = Assoc "*" method op_div _ = Op "/" method op_mod _ = Op "%" method op_minus _ = Op "-" method op_equal _ = Op "=" method op_noteq _ = Op "!=" method op_eq _ _ = Op "=" method op_neq _ _ = Op "!=" method op_lt _ _ = Op "<" method op_leq _ _ = Op "<=" method op_not _ = Op "!" method op_and = function Cprop -> Assoc "/\\" | Cterm -> Assoc "&" method op_or = function Cprop -> Assoc "\\/" | Cterm -> Assoc "|" method op_equiv = function Cprop -> Op "<->" | Cterm -> Op "=" method op_imply _ = Op "->" (* --- Ternary --- *) method pp_conditional fmt cond pthen pelse = begin fprintf fmt "@[<hov 0>if %a" self#pp_atom cond ; fprintf fmt "@ then %a" self#pp_atom pthen ; fprintf fmt "@ else %a" self#pp_atom pelse ; fprintf fmt "@]" ; end (* --- Arrays --- *) method pp_array_cst fmt (_ : F.tau) v = Format.fprintf fmt "@[<hov 2>[%a..]@]" self#pp_flow v method pp_array_get fmt a k = Format.fprintf fmt "@[<hov 2>%a@,[%a]@]" self#pp_atom a self#pp_flow k method pp_array_set fmt a k v = Format.fprintf fmt "@[<hov 2>%a@,[%a@ <- %a]@]" self#pp_atom a self#pp_atom k self#pp_flow v (* --- Records --- *) method pp_get_field fmt a fd = Format.fprintf fmt "%a.%s" self#pp_atom a (self#field fd) method pp_def_fields fmt fvs = let base,fvs = match F.record_with fvs with | None -> None,fvs | Some(r,fvs) -> Some r,fvs in begin fprintf fmt "@[<hov 2>{" ; let open Qed.Plib in iteri (fun i (f,v) -> ( match i , base with | (Isingle | Ifirst) , Some r -> fprintf fmt "@ %a with" self#pp_flow r | _ -> () ) ; ( match i with | Ifirst | Imiddle -> fprintf fmt "@ @[<hov 2>%s = %a ;@]" (self#field f) self#pp_flow v | Isingle | Ilast -> fprintf fmt "@ @[<hov 2>%s = %a@]" (self#field f) self#pp_flow v ) ) fvs ; fprintf fmt "@ }@]" ; end (* --- Lists --- *) method! pp_fun cmode fct ts = if fct == Vlist.f_concat then Vlist.pretty self ts else if fct == Vlist.f_elt then Vlist.elements self ts else if fct == Vlist.f_repeat then Vlist.pprepeat self ts else super#pp_fun cmode fct ts (* --- Higher Order --- *) method pp_apply (_:cmode) e fmt es = fprintf fmt "@[<hov 2>%a" self#pp_atom e ; List.iter (fprintf fmt "@ @@@@ %a" self#pp_atom) es ; fprintf fmt "@]" method pp_lambda fmt vs = fprintf fmt "@[<hov 2>fun" ; List.iter (fun (x,t) -> fprintf fmt "@ @[<hov 2>(%a: %a)@]" self#pp_var x self#pp_tau t ) vs ; fprintf fmt "@ ->@]" (* --- Binders --- *) method! shareable e = super#shareable e && Vlist.shareable e method pp_forall tau fmt = function | [] -> () | x::xs -> fprintf fmt "@[<hov 2>forall %a" self#pp_var x ; List.iter (fun x -> fprintf fmt ",@,%a" self#pp_var x) xs ; fprintf fmt "@ : %a.@]" self#pp_tau tau ; method pp_exists tau fmt = function | [] -> () | x::xs -> fprintf fmt "@[<hov 2>exists %a" self#pp_var x ; List.iter (fun x -> fprintf fmt ",@,%a" self#pp_var x) xs ; fprintf fmt "@ : %a.@]" self#pp_tau tau ; method pp_let fmt _ x e = fprintf fmt "@[<hov 4>let %s = %a in@]@ " x self#pp_flow e (* --- Predicates --- *) method pp_pred fmt p = self#pp_prop fmt (F.e_prop p) end
sectionYPositions = computeSectionYPositions($el), 10)"
x-init="setTimeout(() => sectionYPositions = computeSectionYPositions($el), 10)"
>