/* Test Polyhedron::fold_dimensions().
Copyright (C) 2001-2004 Roberto Bagnara <bagnara@cs.unipr.it>
This file is part of the Parma Polyhedra Library (PPL).
The PPL is free software; you can redistribute it and/or modify it
under the terms of the GNU General Public License as published by the
Free Software Foundation; either version 2 of the License, or (at your
option) any later version.
The PPL 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 General Public License
for more details.
You should have received a copy of the GNU General Public License
along with this program; if not, write to the Free Software
Foundation, Inc., 59 Temple Place - Suite 330, Boston, MA 02111-1307,
USA.
For the most up-to-date information see the Parma Polyhedra Library
site: http://www.cs.unipr.it/ppl/ . */
#include "ppl_test.hh"
using namespace std;
using namespace Parma_Polyhedra_Library;
#ifndef NOISY
#define NOISY 0
#endif
Variable A(0);
Variable B(1);
Variable C(2);
Variable D(3);
// Test with a universe polyhedron.
static void
test1() {
C_Polyhedron ph1(3);
#if NOISY
print_generators(ph1, "*** ph1 ***");
#endif
// This is the set of the variables that we want to fold.
Variables_Set to_fold;
to_fold.insert(A);
ph1.fold_dimensions(to_fold, B);
C_Polyhedron known_result(2);
bool ok = (ph1 == known_result);
#if NOISY
print_generators(ph1, "*** After folding {A} into B ***");
#endif
if (!ok)
exit(1);
}
// Test with an empty polyhedron.
static void
test2() {
C_Polyhedron ph1(3, C_Polyhedron::EMPTY);
#if NOISY
print_constraints(ph1, "*** ph1 ***");
#endif
// This is the set of the variables that we want to fold.
Variables_Set to_fold;
to_fold.insert(A);
ph1.fold_dimensions(to_fold, B);
C_Polyhedron known_result(2, C_Polyhedron::EMPTY);
bool ok = (ph1 == known_result);
#if NOISY
print_constraints(ph1, "*** After folding {A} into B ***");
#endif
if (!ok)
exit(1);
}
// Trivial fold.
static void
test3() {
C_Polyhedron ph1(3);
ph1.add_constraint(A >= 0);
ph1.add_constraint(A + B + C <= 2);
#if NOISY
print_constraints(ph1, "*** ph1 ***");
#endif
// This is the set of the variables that we want to fold.
Variables_Set to_fold;
ph1.fold_dimensions(to_fold, B);
C_Polyhedron known_result(3);
known_result.add_constraint(A >= 0);
known_result.add_constraint(A + B + C <= 2);
bool ok = (ph1 == known_result);
#if NOISY
print_constraints(ph1, "*** After folding {} into B ***");
#endif
if (!ok)
exit(1);
}
// Test as given in GopanDMDRS04 on page 519.
static void
test4() {
C_Polyhedron ph1(2);
ph1.add_constraint(A >= 1);
ph1.add_constraint(A <= 3);
ph1.add_constraint(B >= 7);
ph1.add_constraint(B <= 12);
#if NOISY
print_constraints(ph1, "*** ph1 ***");
#endif
// This is the set of the variables that we want to fold.
Variables_Set to_fold;
to_fold.insert(A);
ph1.fold_dimensions(to_fold, B);
C_Polyhedron known_result(1);
known_result.add_constraint(A >= 1);
known_result.add_constraint(A <= 12);
bool ok = (ph1 == known_result);
#if NOISY
print_constraints(ph1, "*** After folding {A} into B ***");
#endif
if (!ok)
exit(1);
}
// Test that takes the expected result of the expand operation
// example given in GopanDMDRS04 on page 519 and folds it to recover
// the unexpanded polyhedron.
static void
test5() {
C_Polyhedron ph1(3, C_Polyhedron::EMPTY);
ph1.add_generator(point(A + 2*B + 2*C));
ph1.add_generator(point(A + 2*B + 3*C));
ph1.add_generator(point(A + 2*B + 4*C));
ph1.add_generator(point(A + 3*B + 2*C));
ph1.add_generator(point(A + 3*B + 3*C));
ph1.add_generator(point(A + 3*B + 4*C));
ph1.add_generator(point(A + 4*B + 2*C));
ph1.add_generator(point(A + 4*B + 3*C));
ph1.add_generator(point(A + 4*B + 4*C));
#if NOISY
print_generators(ph1, "*** ph1 ***");
#endif
// This is the set of the variables that we want to fold.
Variables_Set to_fold;
to_fold.insert(C);
ph1.fold_dimensions(to_fold, B);
C_Polyhedron known_result(2, C_Polyhedron::EMPTY);
known_result.add_generator(point(A + 2*B));
known_result.add_generator(point(A + 3*B));
known_result.add_generator(point(A + 4*B));
bool ok = (ph1 == known_result);
#if NOISY
print_generators(ph1, "*** After folding {C} into B ***");
#endif
if (!ok)
exit(1);
}
// Test folding several dimensions into a higher dimension.
static void
test6() {
C_Polyhedron ph1(3);
ph1.add_constraint(A >= 1);
ph1.add_constraint(A <= 3);
ph1.add_constraint(B >= 7);
ph1.add_constraint(B <= 12);
ph1.add_constraint(C == 15);
#if NOISY
print_constraints(ph1, "*** ph1 ***");
#endif
// This is the set of the variables that we want to fold.
Variables_Set to_fold;
to_fold.insert(A);
to_fold.insert(B);
ph1.fold_dimensions(to_fold, C);
C_Polyhedron known_result(1);
known_result.add_constraint(A >= 1);
known_result.add_constraint(A <= 15);
bool ok = (ph1 == known_result);
#if NOISY
print_constraints(ph1, "*** After folding {A,B} into C ***");
#endif
if (!ok)
exit(1);
}
// Test fold_dimensions() when there are rays.
static void
test7() {
C_Polyhedron ph1(3, C_Polyhedron::EMPTY);
ph1.add_generator(point(A));
ph1.add_generator(ray(A + B));
ph1.add_generator(ray(A + 2*C));
#if NOISY
print_generators(ph1, "*** ph1 ***");
#endif
// This is the set of the variables that we want to fold.
Variables_Set to_fold;
to_fold.insert(C);
ph1.fold_dimensions(to_fold, B);
C_Polyhedron known_result(2, C_Polyhedron::EMPTY);
known_result.add_generator(point(A));
known_result.add_generator(ray(A));
known_result.add_generator(ray(A + B));
known_result.add_generator(ray(A + 2*B));
bool ok = (ph1 == known_result);
#if NOISY
print_generators(ph1, "*** After folding {C} into B ***");
#endif
if (!ok)
exit(1);
}
// Test folding dimensions into a lower dimension.
static void
test8() {
C_Polyhedron ph1(4);
ph1.add_constraint(A >= 0);
ph1.add_constraint(A + B <= 2);
ph1.add_constraint(C >= 0);
ph1.add_constraint(C + B <= 2);
ph1.add_constraint(D >= 0);
ph1.add_constraint(D + B <= 2);
#if NOISY
print_constraints(ph1, "*** ph1 ***");
#endif
// This is the set of the variables that we want to fold.
Variables_Set to_fold;
to_fold.insert(C);
to_fold.insert(D);
ph1.fold_dimensions(to_fold, A);
C_Polyhedron known_result(2);
known_result.add_constraint(A >= 0);
known_result.add_constraint(A + B <= 2);
bool ok = (ph1 == known_result);
#if NOISY
print_constraints(ph1, "*** After folding {C,D} into A ***");
#endif
if (!ok)
exit(1);
}
// Test folding dimensions into an intermediate dimension.
static void
test9() {
C_Polyhedron ph1(4);
ph1.add_constraint(A >= 0);
ph1.add_constraint(B >= 0);
ph1.add_constraint(A + B <= 2);
ph1.add_constraint(C >= 0);
ph1.add_constraint(C + B <= 2);
ph1.add_constraint(D >= 0);
ph1.add_constraint(D + B <= 2);
#if NOISY
print_constraints(ph1, "*** ph1 ***");
#endif
// This is the set of the variables that we want to fold.
Variables_Set to_fold;
to_fold.insert(B);
to_fold.insert(D);
ph1.fold_dimensions(to_fold, C);
C_Polyhedron known_result(2);
known_result.add_constraint(A >= 0);
known_result.add_constraint(A <= 2);
known_result.add_constraint(B >= 0);
known_result.add_constraint(B <= 2);
bool ok = (ph1 == known_result);
#if NOISY
print_constraints(ph1, "*** After folding {B,D} into C ***");
#endif
if (!ok)
exit(1);
}
int
main() TRY {
set_handlers();
test1();
test2();
test3();
test4();
test5();
test6();
test7();
test8();
test9();
return 0;
}
CATCH
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