mirror of
https://github.com/Z3Prover/z3
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240 lines
6.7 KiB
C++
240 lines
6.7 KiB
C++
/*++
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Copyright (c) 2011 Microsoft Corporation
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Module Name:
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sat_clause.cpp
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Abstract:
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Clauses
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Author:
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Leonardo de Moura (leonardo) 2011-05-21.
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Revision History:
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--*/
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#include<memory.h>
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#include"sat_clause.h"
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#include"z3_exception.h"
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#include"trace.h"
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namespace sat {
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clause::clause(unsigned id, unsigned sz, literal const * lits, bool learned):
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m_id(id),
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m_size(sz),
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m_capacity(sz),
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m_removed(false),
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m_learned(learned),
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m_used(false),
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m_frozen(false),
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m_reinit_stack(false),
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m_inact_rounds(0) {
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memcpy(m_lits, lits, sizeof(literal) * sz);
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mark_strengthened();
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SASSERT(check_approx());
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}
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var_approx_set clause::approx(unsigned num, literal const * lits) {
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var_approx_set r;
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for (unsigned i = 0; i < num; i++)
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r.insert(lits[i].var());
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return r;
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}
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void clause::update_approx() {
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m_approx = approx(m_size, m_lits);
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}
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bool clause::check_approx() const {
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var_approx_set curr = m_approx;
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const_cast<clause*>(this)->update_approx();
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SASSERT(may_eq(curr, m_approx));
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return true;
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}
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bool clause::contains(literal l) const {
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for (unsigned i = 0; i < m_size; i++)
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if (m_lits[i] == l)
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return true;
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return false;
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}
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bool clause::contains(bool_var v) const {
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for (unsigned i = 0; i < m_size; i++)
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if (m_lits[i].var() == v)
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return true;
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return false;
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}
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void clause::elim(literal l) {
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unsigned i;
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for (i = 0; i < m_size; i++)
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if (m_lits[i] == l)
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break;
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SASSERT(i < m_size);
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i++;
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for (; i < m_size; i++)
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m_lits[i-1] = m_lits[i];
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m_size--;
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mark_strengthened();
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}
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bool clause::satisfied_by(model const & m) const {
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for (unsigned i = 0; i < m_size; i++) {
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literal l = m_lits[i];
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if (l.sign()) {
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if (m[l.var()] == l_false)
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return true;
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}
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else {
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if (m[l.var()] == l_true)
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return true;
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}
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}
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return false;
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}
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void tmp_clause::set(unsigned num_lits, literal const * lits, bool learned) {
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if (m_clause && m_clause->m_capacity < num_lits) {
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dealloc_svect(m_clause);
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m_clause = 0;
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}
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if (!m_clause) {
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void * mem = alloc_svect(char, clause::get_obj_size(num_lits));
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m_clause = new (mem) clause(UINT_MAX, num_lits, lits, learned);
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}
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else {
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SASSERT(m_clause->m_id == UINT_MAX);
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m_clause->m_size = num_lits;
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m_clause->m_learned = learned;
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memcpy(m_clause->m_lits, lits, sizeof(literal) * num_lits);
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}
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SASSERT(m_clause->m_size <= m_clause->m_capacity);
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for (unsigned i = 0; i < num_lits; i++) {
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SASSERT((*m_clause)[i] == lits[i]);
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}
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}
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clause_allocator::clause_allocator():
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m_allocator("clause-allocator") {
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#ifdef _AMD64_
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m_num_segments = 0;
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#endif
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}
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clause * clause_allocator::get_clause(clause_offset cls_off) const {
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#ifdef _AMD64_
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return reinterpret_cast<clause *>(m_segments[cls_off & c_aligment_mask] + (static_cast<size_t>(cls_off) & ~c_aligment_mask));
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#else
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return reinterpret_cast<clause *>(cls_off);
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#endif
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}
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#ifdef _AMD64_
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unsigned clause_allocator::get_segment(size_t ptr) {
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SASSERT((ptr & c_aligment_mask) == 0);
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ptr &= ~0xFFFFFFFFull; // Keep only high part
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unsigned i = 0;
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for (i = 0; i < m_num_segments; ++i)
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if (m_segments[i] == ptr)
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return i;
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i = m_num_segments;
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m_num_segments++;
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if (i > c_max_segments)
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throw default_exception("segment out of range");
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m_segments[i] = ptr;
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return i;
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}
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#endif
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clause_offset clause_allocator::get_offset(clause const * ptr) const {
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#ifdef _AMD64_
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return static_cast<unsigned>(reinterpret_cast<size_t>(ptr)) + const_cast<clause_allocator*>(this)->get_segment(reinterpret_cast<size_t>(ptr));
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#else
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return reinterpret_cast<size_t>(ptr);
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#endif
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}
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clause * clause_allocator::mk_clause(unsigned num_lits, literal const * lits, bool learned) {
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size_t size = clause::get_obj_size(num_lits);
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#ifdef _AMD64_
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size_t slot = size >> c_cls_alignment;
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if ((size & c_aligment_mask) != 0)
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slot++;
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size = slot << c_cls_alignment;
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#endif
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void * mem = m_allocator.allocate(size);
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clause * cls = new (mem) clause(m_id_gen.mk(), num_lits, lits, learned);
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TRACE("sat", tout << "alloc: " << cls->id() << " " << cls << " " << *cls << " " << (learned?"l":"a") << "\n";);
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SASSERT(!learned || cls->is_learned());
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return cls;
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}
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void clause_allocator::del_clause(clause * cls) {
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TRACE("sat", tout << "delete: " << cls->id() << " " << cls << " " << *cls << "\n";);
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m_id_gen.recycle(cls->id());
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size_t size = clause::get_obj_size(cls->m_capacity);
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#ifdef _AMD64_
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size_t slot = size >> c_cls_alignment;
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if ((size & c_aligment_mask) != 0)
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slot++;
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size = slot << c_cls_alignment;
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#endif
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cls->~clause();
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m_allocator.deallocate(size, cls);
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}
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std::ostream & operator<<(std::ostream & out, clause const & c) {
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out << "(";
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for (unsigned i = 0; i < c.size(); i++) {
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if (i > 0) out << " ";
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out << c[i];
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}
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out << ")";
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if (c.was_removed()) out << "x";
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if (c.strengthened()) out << "+";
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if (c.is_learned()) out << "*";
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return out;
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}
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std::ostream & operator<<(std::ostream & out, clause_vector const & cs) {
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clause_vector::const_iterator it = cs.begin();
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clause_vector::const_iterator end = cs.end();
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for (; it != end; ++it) {
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out << *(*it) << "\n";
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}
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return out;
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}
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bool clause_wrapper::contains(literal l) const {
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unsigned sz = size();
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for (unsigned i = 0; i < sz; i++)
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if (operator[](i) == l)
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return true;
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return false;
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}
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bool clause_wrapper::contains(bool_var v) const {
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unsigned sz = size();
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for (unsigned i = 0; i < sz; i++)
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if (operator[](i).var() == v)
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return true;
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return false;
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}
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std::ostream & operator<<(std::ostream & out, clause_wrapper const & c) {
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out << "(";
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for (unsigned i = 0; i < c.size(); i++) {
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if (i > 0) out << " ";
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out << c[i];
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}
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out << ")";
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return out;
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}
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};
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