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Apart from new assumptions, clause level can always be computed from the histoy of the clause, so it is better to do it in Solver_types when creating clauses. Aditionally, it seems there was an error in the manual computing of clause level somewhere, this fixes the bug.
316 lines
8.4 KiB
OCaml
316 lines
8.4 KiB
OCaml
(**************************************************************************)
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(* *)
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(* Cubicle *)
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(* Combining model checking algorithms and SMT solvers *)
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(* *)
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(* Sylvain Conchon and Alain Mebsout *)
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(* Universite Paris-Sud 11 *)
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(* *)
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(* Copyright 2011. This file is distributed under the terms of the *)
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(* Apache Software License version 2.0 *)
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(* *)
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(**************************************************************************)
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open Printf
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module type S = Solver_types_intf.S
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(* Solver types for McSat Solving *)
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(* ************************************************************************ *)
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module McMake (E : Expr_intf.S)(Dummy : sig end) = struct
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(* Flag for Mcsat v.s Pure Sat *)
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let mcsat = true
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type term = E.Term.t
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type formula = E.Formula.t
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type proof = E.proof
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type lit = {
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lid : int;
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term : term;
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mutable l_level : int;
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mutable l_weight : float;
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mutable assigned : term option;
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}
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type var = {
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vid : int;
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pa : atom;
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na : atom;
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mutable seen : bool;
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mutable v_level : int;
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mutable v_weight : float;
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mutable reason : reason option;
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}
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and atom = {
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aid : int;
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var : var;
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neg : atom;
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lit : formula;
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mutable is_true : bool;
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mutable watched : clause Vec.t;
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}
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and clause = {
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name : string;
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tag : int option;
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atoms : atom Vec.t;
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learnt : bool;
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c_level : int;
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mutable cpremise : premise;
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mutable activity : float;
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mutable removed : bool;
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}
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and reason =
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| Decision
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| Bcp of clause
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| Semantic of int
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and premise =
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| Lemma of proof
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| History of clause list
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type elt = (lit, var) Either.t
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(* Dummy values *)
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let dummy_lit = E.dummy
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let rec dummy_var =
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{ vid = -101;
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pa = dummy_atom;
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na = dummy_atom;
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seen = false;
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v_level = -1;
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v_weight = -1.;
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reason = None;
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}
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and dummy_atom =
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{ var = dummy_var;
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lit = dummy_lit;
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watched = Obj.magic 0;
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(* should be [Vec.make_empty dummy_clause]
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but we have to break the cycle *)
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neg = dummy_atom;
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is_true = false;
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aid = -102 }
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let dummy_clause =
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{ name = "";
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tag = None;
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atoms = Vec.make_empty dummy_atom;
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activity = -1.;
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removed = false;
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c_level = -1;
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learnt = false;
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cpremise = History [] }
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let () =
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dummy_atom.watched <- Vec.make_empty dummy_clause
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(* Constructors *)
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module MF = Hashtbl.Make(E.Formula)
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module MT = Hashtbl.Make(E.Term)
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let f_map = MF.create 4096
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let t_map = MT.create 4096
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let vars = Vec.make 107 (Either.mk_right dummy_var)
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let nb_elt () = Vec.size vars
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let get_elt i = Vec.get vars i
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let iter_elt f = Vec.iter f vars
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let cpt_mk_var = ref 0
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let make_semantic_var t =
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try MT.find t_map t
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with Not_found ->
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let res = {
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lid = !cpt_mk_var;
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term = t;
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l_weight = 1.;
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l_level = -1;
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assigned = None;
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} in
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incr cpt_mk_var;
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MT.add t_map t res;
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Vec.push vars (Either.mk_left res);
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res
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let make_boolean_var =
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fun lit ->
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let lit, negated = E.norm lit in
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try MF.find f_map lit, negated
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with Not_found ->
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let cpt_fois_2 = !cpt_mk_var lsl 1 in
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let rec var =
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{ vid = !cpt_mk_var;
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pa = pa;
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na = na;
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seen = false;
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v_level = -1;
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v_weight = 0.;
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reason = None;
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}
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and pa =
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{ var = var;
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lit = lit;
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watched = Vec.make 10 dummy_clause;
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neg = na;
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is_true = false;
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aid = cpt_fois_2 (* aid = vid*2 *) }
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and na =
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{ var = var;
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lit = E.neg lit;
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watched = Vec.make 10 dummy_clause;
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neg = pa;
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is_true = false;
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aid = cpt_fois_2 + 1 (* aid = vid*2+1 *) } in
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MF.add f_map lit var;
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incr cpt_mk_var;
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Vec.push vars (Either.mk_right var);
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var, negated
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let add_term t = make_semantic_var t
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let add_atom lit =
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let var, negated = make_boolean_var lit in
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if negated then var.na else var.pa
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let make_clause ?tag ?lvl name ali sz_ali is_learnt premise =
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let atoms = Vec.from_list ali sz_ali dummy_atom in
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let level =
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match lvl, premise with
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| Some lvl, History [] -> lvl
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| Some _, _ -> assert false
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| None, History l -> List.fold_left (fun lvl c -> max lvl c.c_level) 0 l
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| None, Lemma _ -> 0
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in
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{ name = name;
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tag = tag;
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atoms = atoms;
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removed = false;
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learnt = is_learnt;
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c_level = level;
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activity = 0.;
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cpremise = premise}
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let empty_clause = make_clause "Empty" [] 0 false (History [])
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(* Decisions & propagations *)
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type t = (lit, atom) Either.t
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let of_lit = Either.mk_left
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let of_atom = Either.mk_right
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let destruct = Either.destruct
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(* Elements *)
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let elt_of_lit = Either.mk_left
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let elt_of_var = Either.mk_right
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let get_elt_id = function
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| Either.Left l -> l.lid | Either.Right v -> v.vid
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let get_elt_level = function
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| Either.Left l -> l.l_level | Either.Right v -> v.v_level
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let get_elt_weight = function
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| Either.Left l -> l.l_weight | Either.Right v -> v.v_weight
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let set_elt_level e lvl = match e with
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| Either.Left l -> l.l_level <- lvl | Either.Right v -> v.v_level <- lvl
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let set_elt_weight e w = match e with
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| Either.Left l -> l.l_weight <- w | Either.Right v -> v.v_weight <- w
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(* Name generation *)
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let fresh_lname =
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let cpt = ref 0 in
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fun () -> incr cpt; "L" ^ (string_of_int !cpt)
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let fresh_hname =
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let cpt = ref 0 in
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fun () -> incr cpt; "H" ^ (string_of_int !cpt)
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let fresh_tname =
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let cpt = ref 0 in
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fun () -> incr cpt; "T" ^ (string_of_int !cpt)
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let fresh_name =
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let cpt = ref 0 in
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fun () -> incr cpt; "C" ^ (string_of_int !cpt)
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(* Pretty printing for atoms and clauses *)
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let print_lit fmt v = E.Term.print fmt v.term
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let print_atom fmt a = E.Formula.print fmt a.lit
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let print_atoms fmt v =
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if Vec.size v = 0 then
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Format.fprintf fmt "∅"
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else begin
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print_atom fmt (Vec.get v 0);
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if (Vec.size v) > 1 then begin
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for i = 1 to (Vec.size v) - 1 do
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Format.fprintf fmt " ∨ %a" print_atom (Vec.get v i)
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done
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end
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end
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let print_clause fmt c =
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Format.fprintf fmt "%s : %a" c.name print_atoms c.atoms
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(* Complete debug printing *)
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let sign a = if a == a.var.pa then "" else "-"
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let level a =
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match a.var.v_level, a.var.reason with
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| n, _ when n < 0 -> sprintf "%%"
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| n, None -> sprintf "%d" n
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| n, Some Decision -> sprintf "@@%d" n
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| n, Some Bcp c -> sprintf "->%d/%s" n c.name
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| n, Some Semantic lvl -> sprintf "::%d/%d" n lvl
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let value a =
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if a.is_true then sprintf "[T%s]" (level a)
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else if a.neg.is_true then sprintf "[F%s]" (level a)
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else "[]"
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let pp_premise out = function
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| History v -> List.iter (fun {name=name} -> Format.fprintf out "%s,@," name) v
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| Lemma _ -> Format.fprintf out "th_lemma"
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let pp_assign out = function
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| None -> ()
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| Some t -> Format.fprintf out "[assignment: %a]" E.Term.print t
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let pp_lit out v =
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Format.fprintf out "%d [lit:%a]%a"
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(v.lid+1) E.Term.print v.term pp_assign v.assigned
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let pp_atom out a =
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Format.fprintf out "%s%d%s[lit:%a]"
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(sign a) (a.var.vid+1) (value a) E.Formula.print a.lit
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let pp_atoms_vec out vec =
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Vec.print ~sep:"; " pp_atom out vec
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let pp_clause out {name=name; atoms=arr; cpremise=cp; learnt=learnt} =
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Format.fprintf out "%s%s{ %a} cpremise={{%a}}"
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name (if learnt then "!" else ":") pp_atoms_vec arr pp_premise cp
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end
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(* Solver types for pure SAT Solving *)
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(* ************************************************************************ *)
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module SatMake (E : Formula_intf.S)(Dummy : sig end) = struct
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include McMake(struct
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include E
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module Term = E
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module Formula = E
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end)(struct end)
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let mcsat = false
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end
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