* spot/mc/unionfind.cc, spot/twacube/cube.cc, spot/twacube/twacube.cc, spot/twacube_algos/convert.cc, tests/core/bricks.cc, tests/core/cube.cc, tests/core/twacube.cc: here.
171 lines
5.3 KiB
C++
171 lines
5.3 KiB
C++
// -*- coding: utf-8 -*-
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// Copyright (C) 2015, 2016, 2018 Laboratoire de Recherche et Développement
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// de l'Epita.
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//
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// This file is part of Spot, a model checking library.
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//
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// Spot is free software; you can redistribute it and/or modify it
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// under the terms of the GNU General Public License as published by
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// the Free Software Foundation; either version 3 of the License, or
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// (at your option) any later version.
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//
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// Spot is distributed in the hope that it will be useful, but WITHOUT
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// ANY WARRANTY; without even the implied warranty of MERCHANTABILITY
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// or FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public
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// License for more details.
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//
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// You should have received a copy of the GNU General Public License
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// along with this program. If not, see <http://www.gnu.org/licenses/>.
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#include "config.h"
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#include <bddx.h>
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#include <iostream>
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#include <spot/twacube/cube.hh>
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#include <spot/misc/hash.hh>
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#include <spot/twacube/cube.hh>
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#include <spot/twacube_algos/convert.hh>
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#include <spot/twa/bdddict.hh>
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#include <spot/tl/environment.hh>
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#include <spot/tl/defaultenv.hh>
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#include <unordered_map>
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static bool test_translation(bdd& input, spot::cubeset& cubeset,
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std::unordered_map<int, int>& binder,
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std::unordered_map<int, int>& reverse_binder,
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std::vector<std::string>& aps)
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{
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// The BDD used to detect if the convertion works
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bdd res = bddfalse;
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bdd initial = input;
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std::cout << "bdd : " << input << '\n';
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while (initial != bddfalse)
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{
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bdd one = bdd_satone(initial);
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initial -= one;
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auto cube = spot::satone_to_cube(one, cubeset, binder);
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res |= spot::cube_to_bdd(cube, cubeset, reverse_binder);
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std::cout << "cube : " << cubeset.dump(cube, aps) << '\n';
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delete[] cube;
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}
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// Translating BDD to cubes and cubes to BDD should provide same BDD.
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return input == res;
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}
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static void test_bdd_to_cube()
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{
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auto d = spot::make_bdd_dict();
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spot::environment& e = spot::default_environment::instance();
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// Some of these variables are not desired into the final cube
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auto ap_0 = e.require("0");
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int idx_0 = d->register_proposition(ap_0, d);
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auto ap_a = e.require("a");
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int idx_a = d->register_proposition(ap_a, d);
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auto ap_b = e.require("b");
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int idx_b = d->register_proposition(ap_b, d);
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auto ap_1 = e.require("1");
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int idx_1 = d->register_proposition(ap_1, d);
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auto ap_c = e.require("c");
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int idx_c = d->register_proposition(ap_c, d);
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auto ap_d = e.require("d");
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int idx_d = d->register_proposition(ap_d, d);
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auto ap_e = e.require("e");
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int idx_e = d->register_proposition(ap_e, d);
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// Prepare cube
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std::vector<std::string> aps = {"a", "b", "c", "d", "e"};
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spot::cubeset cubeset(aps.size());
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// Map Bdd indexes to cube indexes
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std::unordered_map<int, int> binder = {
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{idx_a, 0},
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{idx_b, 1},
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{idx_c, 2},
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{idx_d, 3},
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{idx_e, 4}
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};
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// Map cube indexes to Bdd indexes
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std::unordered_map<int, int> reverse_binder = {
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{0, idx_a},
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{1, idx_b},
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{2, idx_c},
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{3, idx_d},
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{4, idx_e}
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};
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// The BDD to convert
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bdd x;
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bool result;
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// Test bddtrue
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x = bddtrue;
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result = test_translation(x, cubeset, binder, reverse_binder, aps);
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assert(result);
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// Test bddfalse
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x = bddfalse;
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result = test_translation(x, cubeset, binder, reverse_binder, aps);
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assert(result);
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// Test bdddeterministic bdd
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x = bdd_ithvar(idx_a) & !bdd_ithvar(idx_b) & bdd_ithvar(idx_c) &
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!bdd_ithvar(idx_d) & bdd_ithvar(idx_e);
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result = test_translation(x, cubeset, binder, reverse_binder, aps);
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assert(result);
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// // Test some free var bdd
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x = (bdd_ithvar(idx_a) | bdd_ithvar(idx_b)) & bdd_ithvar(idx_d);
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result = test_translation(x, cubeset, binder, reverse_binder, aps);
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assert(result);
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// Free all variables
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d->unregister_variable(idx_e, d);
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d->unregister_variable(idx_d, d);
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d->unregister_variable(idx_c, d);
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d->unregister_variable(idx_1, d);
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d->unregister_variable(idx_b, d);
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d->unregister_variable(idx_a, d);
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d->unregister_variable(idx_0, d);
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}
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int main()
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{
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std::vector<std::string> aps = {"a", "b", "c", "d", "e"};
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spot::cubeset cs(aps.size());
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spot::cube mc = cs.alloc();
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cs.set_true_var(mc, 0);
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cs.set_false_var(mc, 3);
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std::cout << "size : " << cs.size() << '\n';
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std::cout << "cube : " << cs.dump(mc, aps) << '\n';
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std::cout << "valid : " << cs.is_valid(mc) << '\n';
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std::cout << "intersect(c,c) : " << cs.intersect(mc, mc) << '\n';
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spot::cube mc1 = cs.alloc();
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cs.set_false_var(mc1, 0);
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cs.set_true_var(mc1, 1);
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std::cout << "size : " << cs.size() << '\n';
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std::cout << "cube : " << cs.dump(mc1, aps) << '\n';
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std::cout << "valid : " << cs.is_valid(mc1) << '\n';
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std::cout << "intersect(c1,c1) : " << cs.intersect(mc1, mc1) << '\n';
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std::cout << "intersect(c,c1) : " << cs.intersect(mc, mc1) << '\n';
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std::cout << "intersect(c1,c) : " << cs.intersect(mc1, mc) << '\n';
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spot::cube mc2 = cs.alloc();
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cs.set_true_var(mc2, 1);
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cs.set_true_var(mc2, 3);
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std::cout << "size : " << cs.size() << '\n';
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std::cout << "cube : " << cs.dump(mc2, aps) << '\n';
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std::cout << "valid : " << cs.is_valid(mc2) << '\n';
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std::cout << "intersect(c2,c1) : " << cs.intersect(mc1, mc2) << '\n';
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std::cout << "intersect(c2,c) : " << cs.intersect(mc, mc2) << '\n';
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cs.release(mc2);
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cs.release(mc1);
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cs.release(mc);
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test_bdd_to_cube();
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}
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