feat(library/tmp_type_context): add temporary type_context
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3 changed files with 241 additions and 1 deletions
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@ -16,4 +16,5 @@ add_library(library OBJECT deep_copy.cpp expr_lt.cpp io_state.cpp
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relation_manager.cpp export.cpp user_recursors.cpp idx_metavar.cpp
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composition_manager.cpp tc_multigraph.cpp noncomputable.cpp
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aux_recursors.cpp norm_num.cpp decl_stats.cpp meng_paulson.cpp
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norm_num.cpp class_instance_resolution.cpp type_context.cpp)
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norm_num.cpp class_instance_resolution.cpp type_context.cpp
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tmp_type_context.cpp)
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155
src/library/tmp_type_context.cpp
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155
src/library/tmp_type_context.cpp
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/*
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Copyright (c) 2015 Microsoft Corporation. All rights reserved.
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Released under Apache 2.0 license as described in the file LICENSE.
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Author: Leonardo de Moura
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*/
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#include "library/tmp_type_context.h"
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#include "library/idx_metavar.h"
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namespace lean {
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static name * g_prefix = nullptr;
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tmp_type_context::tmp_type_context(environment const & env, io_state const & ios, reducible_behavior b):
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type_context(env, ios) {
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switch (b) {
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case UnfoldReducible: m_opaque_pred = mk_not_reducible_pred(env); break;
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case UnfoldQuasireducible: m_opaque_pred = mk_not_quasireducible_pred(env); break;
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case UnfoldSemireducible: m_opaque_pred = mk_irreducible_pred(env); break;
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}
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m_next_local_idx = 0;
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}
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tmp_type_context::~tmp_type_context() {
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}
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void tmp_type_context::clear() {
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m_next_local_idx = 0;
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m_uassignment.clear();
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m_eassignment.clear();
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m_trail.clear();
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m_scopes.clear();
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}
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void tmp_type_context::set_next_uvar_idx(unsigned next_idx) {
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lean_assert(m_uassignment.empty());
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lean_assert(m_scopes.empty());
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m_uassignment.resize(next_idx);
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}
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void tmp_type_context::set_next_mvar_idx(unsigned next_idx) {
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lean_assert(m_eassignment.empty());
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lean_assert(m_scopes.empty());
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m_eassignment.resize(next_idx);
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}
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expr tmp_type_context::mk_tmp_local(expr const & type, binder_info const & bi) {
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unsigned idx = m_next_local_idx;
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m_next_local_idx++;
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name n(*g_prefix, idx);
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return lean::mk_local(n, n, type, bi);
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}
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bool tmp_type_context::is_tmp_local(expr const & e) const {
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if (!is_local(e))
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return false;
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name const & n = mlocal_name(e);
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return !n.is_atomic() && n.get_prefix() == *g_prefix;
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}
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bool tmp_type_context::is_uvar(level const & l) const {
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return is_idx_metauniv(l);
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}
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bool tmp_type_context::is_mvar(expr const & e) const {
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return is_idx_metavar(e);
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}
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optional<level> tmp_type_context::get_assignment(level const & u) const {
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unsigned idx = to_meta_idx(u);
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// if the following assetion is violated, we have two options:
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// 1- We should create the meta-variable using mk_uvar
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// 2- We create using mk_idx_metauniv, and notify this object using
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// set_next_uvar_idx
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lean_assert(idx < m_uassignment.size());
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return m_uassignment[idx];
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}
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optional<expr> tmp_type_context::get_assignment(expr const & m) const {
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unsigned idx = to_meta_idx(m);
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// if the following assetion is violated, we have two options:
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// 1- We should create the meta-variable using mk_mvar
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// 2- We create using mk_idx_metavar, and notify this object using
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// set_next_mvar_idx
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lean_assert(idx < m_eassignment.size());
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return m_eassignment[idx];
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}
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void tmp_type_context::update_assignment(level const & u, level const & v) {
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unsigned idx = to_meta_idx(u);
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lean_assert(idx < m_uassignment.size()); // see comments above
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lean_assert(!m_uassignment[idx]);
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m_uassignment[idx] = v;
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if (!m_scopes.empty())
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m_trail.emplace_back(trail_kind::Level, idx);
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}
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void tmp_type_context::update_assignment(expr const & m, expr const & v) {
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unsigned idx = to_meta_idx(m);
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lean_assert(idx < m_eassignment.size()); // see comments above
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// Remark: type class resolution may update an already assigned meta-variable with a
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// definitionally equal, but the new assignment is "nicer", i.e., it has not been
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// accidentally unfolded by the unifier.
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// We only add the entry to the trail if it was not assigned before.
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bool was_assigned = static_cast<bool>(m_eassignment[idx]);
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m_eassignment[idx] = v;
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if (!m_scopes.empty() && !was_assigned)
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m_trail.emplace_back(trail_kind::Expr, idx);
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}
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level tmp_type_context::mk_uvar() {
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unsigned idx = m_uassignment.size();
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m_uassignment.push_back(none_level());
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return mk_idx_metauniv(idx);
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}
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expr tmp_type_context::mk_mvar(expr const & type) {
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unsigned idx = m_eassignment.size();
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m_eassignment.push_back(none_expr());
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return mk_idx_metavar(idx, type);
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}
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void tmp_type_context::push() {
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m_scopes.push_back(scope());
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scope & s = m_scopes.back();
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s.m_old_next_local_idx = m_next_local_idx;
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s.m_uassignment_sz = m_uassignment.size();
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s.m_eassignment_sz = m_eassignment.size();
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s.m_trail_sz = m_trail.size();
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}
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void tmp_type_context::pop() {
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lean_assert(!m_scopes.empty());
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scope const & s = m_scopes.back();
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m_next_local_idx = s.m_old_next_local_idx;
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unsigned old_sz = s.m_trail_sz;
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unsigned i = m_trail.size();
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while (i > old_sz) {
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--i;
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pair<trail_kind, unsigned> const & p = m_trail.back();
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switch (p.first) {
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case trail_kind::Level: m_uassignment[p.second] = none_level(); break;
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case trail_kind::Expr: m_eassignment[p.second] = none_expr(); break;
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}
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m_trail.pop_back();
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}
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lean_assert(m_trail.size() == old_sz);
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m_uassignment.resize(s.m_uassignment_sz);
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m_eassignment.resize(s.m_eassignment_sz);
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}
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void tmp_type_context::commit() {
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lean_assert(!m_scopes.empty());
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m_scopes.pop_back();
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}
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}
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84
src/library/tmp_type_context.h
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84
src/library/tmp_type_context.h
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/*
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Copyright (c) 2015 Microsoft Corporation. All rights reserved.
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Released under Apache 2.0 license as described in the file LICENSE.
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Author: Leonardo de Moura
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*/
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#pragma once
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#include <vector>
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#include "library/type_context.h"
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#include "library/reducible.h"
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namespace lean {
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/** \brief Type context for solving matching and simple unification problems.
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It only supports meta-variables created with the module idx_metavar.h.
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Internally, it stores the meta-variable assignments in an array.
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So, it is assuming the metavariables have small indices.
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The assignment and backtracking stack can be reset using the clear method.
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\remark By default, this object assumes that non-reducible constants are opaque.
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We can change that by providing a different reducible_behavior value when
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creating the object.
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\remark The default implementations for infer_local(e) and
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infer_metavar(e) just return mlocal_type(e). They must be
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redefined if we want to use this class in modules that store the type
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of local constants and meta-variables in a different place.
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\remark The local context is set using the method set_context from type_context.
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*/
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class tmp_type_context : public type_context {
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unsigned m_next_local_idx;
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name_predicate m_opaque_pred;
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std::vector<optional<level>> m_uassignment;
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std::vector<optional<expr>> m_eassignment;
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enum class trail_kind { Level, Expr };
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std::vector<pair<trail_kind, unsigned>> m_trail; // undo stack
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struct scope {
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unsigned m_old_next_local_idx;
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unsigned m_uassignment_sz;
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unsigned m_eassignment_sz;
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unsigned m_trail_sz;
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};
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std::vector<scope> m_scopes;
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public:
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tmp_type_context(environment const & env, io_state const & ios, reducible_behavior b = UnfoldReducible);
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virtual ~tmp_type_context();
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/** \brief Reset the state: backtracking stack, indices and assignment. */
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void clear();
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/** \remark The following methods are useful when indexed meta-variables have been created outside
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of this module.
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\pre This method should only be invoked if not meta-variable has been created.
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Use the method clear() to ensure this condition holds */
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void set_next_uvar_idx(unsigned next_idx);
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/** \remark The following methods are useful when indexed meta-variables have been created outside
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of this module.
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\pre This method should only be invoked if not meta-variable has been created.
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Use the method clear() to ensure this condition holds */
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void set_next_mvar_idx(unsigned next_idx);
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virtual bool is_extra_opaque(name const & n) const { return m_opaque_pred(n); }
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virtual expr mk_tmp_local(expr const & type, binder_info const & bi = binder_info());
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virtual bool is_tmp_local(expr const & e) const;
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virtual bool is_uvar(level const & l) const;
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virtual bool is_mvar(expr const & e) const;
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virtual optional<level> get_assignment(level const & u) const;
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virtual optional<expr> get_assignment(expr const & m) const;
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virtual void update_assignment(level const & u, level const & v);
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virtual void update_assignment(expr const & m, expr const & v);
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virtual expr infer_local(expr const & e) const { return mlocal_type(e); }
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virtual expr infer_metavar(expr const & e) const { return mlocal_type(e); }
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virtual level mk_uvar();
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virtual expr mk_mvar(expr const &);
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virtual void push();
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virtual void pop();
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virtual void commit();
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};
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}
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