feat(library/blast/forward): start 'pattern' module
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4 changed files with 260 additions and 1 deletions
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add_library(forward OBJECT init_module.cpp forward_extension.cpp qcf.cpp)
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add_library(forward OBJECT init_module.cpp forward_extension.cpp qcf.cpp pattern.cpp)
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@ -5,15 +5,18 @@ Author: Daniel Selsam
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*/
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*/
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#include "library/blast/forward/init_module.h"
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#include "library/blast/forward/init_module.h"
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#include "library/blast/forward/forward_extension.h"
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#include "library/blast/forward/forward_extension.h"
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#include "library/blast/forward/pattern.h"
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namespace lean {
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namespace lean {
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namespace blast {
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namespace blast {
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void initialize_forward_module() {
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void initialize_forward_module() {
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initialize_forward_extension();
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initialize_forward_extension();
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initialize_pattern();
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}
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}
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void finalize_forward_module() {
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void finalize_forward_module() {
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finalize_pattern();
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finalize_forward_extension();
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finalize_forward_extension();
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}
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}
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}}
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}}
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228
src/library/blast/forward/pattern.cpp
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228
src/library/blast/forward/pattern.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 <string>
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#include "kernel/find_fn.h"
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#include "kernel/instantiate.h"
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#include "library/tmp_type_context.h"
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#include "library/fun_info_manager.h"
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#include "library/annotation.h"
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#include "library/scoped_ext.h"
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#include "library/idx_metavar.h"
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#include "library/blast/forward/pattern.h"
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namespace lean {
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static name * g_pattern = nullptr;
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expr mk_pattern(expr const & e) { return mk_annotation(*g_pattern, e); }
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bool is_pattern(expr const & e) { return is_annotation(e, *g_pattern); }
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expr const & get_pattern_arg(expr const & e) { lean_assert(is_pattern(e)); return get_annotation_arg(e); }
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bool has_patterns(expr const & e) {
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return static_cast<bool>(find(e, [](expr const & e, unsigned) { return is_pattern(e); }));
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}
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static name * g_no_pattern_name = nullptr;
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static std::string * g_key = nullptr;
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struct no_pattern_config {
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typedef name_set state;
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typedef name entry;
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static void add_entry(environment const &, io_state const &, state & s, entry const & e) {
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s.insert(e);
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}
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static name const & get_class_name() {
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return *g_no_pattern_name;
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}
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static std::string const & get_serialization_key() {
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return *g_key;
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}
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static void write_entry(serializer & s, entry const & e) {
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s << e;
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}
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static entry read_entry(deserializer & d) {
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entry e;
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d >> e;
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return e;
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}
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static optional<unsigned> get_fingerprint(entry const & e) {
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return some(e.hash());
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}
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};
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template class scoped_ext<no_pattern_config>;
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typedef scoped_ext<no_pattern_config> no_pattern_ext;
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bool is_no_pattern(environment const & env, name const & n) {
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return no_pattern_ext::get_state(env).contains(n);
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}
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environment add_no_pattern(environment const & env, name const & n, bool persistent) {
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return no_pattern_ext::add_entry(env, get_dummy_ios(), n, persistent);
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}
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/** pattern_le */
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struct pattern_le_fn {
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tmp_type_context & m_ctx;
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bool is_le_app(expr const & e1, expr const & e2) {
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if (is_app(e1) && is_app(e2)) {
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buffer<expr> args1, args2;
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expr const & f1 = get_app_args(e1, args1);
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expr const & f2 = get_app_args(e2, args2);
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if (!is_le(f1, f2) && args1.size() != args2.size())
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return false;
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for (unsigned i = 0; i > args1.size(); i++)
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if (!is_le(args1[i], args2[i]))
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return false;
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return true;
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} else {
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return false;
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}
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}
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bool is_le(expr const & e1, expr const & e2) {
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if (is_idx_metavar(e1)) {
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return m_ctx.is_def_eq(e1, e2);
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} else if (is_idx_metavar(e2)) {
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return false;
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} else if (is_le_app(e1, e2)) {
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return true;
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} else if (!has_expr_metavar(e1) && !has_expr_metavar(e2)) {
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return m_ctx.is_def_eq(e1, e2);
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} else {
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return false;
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}
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}
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pattern_le_fn(tmp_type_context & ctx):m_ctx(ctx) {}
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bool operator()(expr const & e1, expr const & e2) {
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m_ctx.push();
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bool r = is_le(e1, e2);
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m_ctx.pop();
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return r;
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}
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};
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typedef rb_tree<unsigned, unsigned_cmp> idx_metavar_set;
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struct pattern_info {
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idx_metavar_set m_idx_mvar_set;
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unsigned m_num_mvars;
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unsigned m_size;
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pattern_info():m_num_mvars(0), m_size(0) {}
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pattern_info(idx_metavar_set const & s, unsigned sz):
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m_idx_mvar_set(s), m_num_mvars(s.size()), m_size(sz) {}
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};
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struct mk_pattern_info_fn {
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tmp_type_context & m_ctx;
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fun_info_manager & m_finfo;
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idx_metavar_set m_set;
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unsigned m_size;
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void visit(expr const & e, bool inc_size) {
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if (inc_size)
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m_size++;
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switch (e.kind()) {
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case expr_kind::Var:
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lean_unreachable();
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case expr_kind::Sort: case expr_kind::Constant:
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case expr_kind::Local:
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return;
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case expr_kind::Meta:
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if (is_idx_metavar(e))
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m_set.insert(to_meta_idx(e));
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return;
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case expr_kind::Macro:
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for (unsigned i = 0; i < macro_num_args(e); i++)
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visit(macro_arg(e, i), inc_size);
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return;
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case expr_kind::Pi: case expr_kind::Lambda: {
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visit(binding_domain(e), inc_size);
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expr local = m_ctx.mk_tmp_local(binding_domain(e));
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visit(instantiate(binding_body(e), local), inc_size);
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return;
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}
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case expr_kind::App: {
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buffer<expr> args;
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expr const & fn = get_app_args(e, args);
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visit(fn, inc_size);
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if (inc_size) {
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fun_info info = m_finfo.get(fn, args.size());
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list<param_info> const * it = &info.get_params_info();
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for (unsigned i = 0; i < args.size(); i++) {
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// inst-implicit arguments and subsingletons do not contribute
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// to the pattern-size
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param_info const & pinfo = head(*it);
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visit(args[i], !pinfo.is_inst_implicit() && !pinfo.is_subsingleton());
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it = &(tail(*it));
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}
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} else {
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for (unsigned i = 0; i < args.size(); i++)
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visit(args[i], false);
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}
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}}
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}
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mk_pattern_info_fn(tmp_type_context & ctx, fun_info_manager & fm):
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m_ctx(ctx), m_finfo(fm), m_size(0) {}
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pattern_info operator()(expr const & e) {
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visit(e, true);
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return pattern_info(m_set, m_size);
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}
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};
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pattern_info mk_pattern_info(tmp_type_context & ctx, fun_info_manager & fm, expr const & e) {
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return mk_pattern_info_fn(ctx, fm)(e);
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}
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typedef rb_map<expr, pattern_info, expr_quick_cmp> pattern_info_map;
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/** \brief Compare candidates patterns based on the following heuristic
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p1 << p2 (i.e., p1 is "better" than p2) if
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- p1 has more free meta-variables than p2
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- p1 and p2 has the same number of metavariable, and free variables,
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and p1's pattern size is smaller than p2. */
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struct pattern_size_lt {
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pattern_info_map const & m_info;
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bool operator()(expr const & e1, expr const & e2) const {
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auto info1 = m_info.find(e1);
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auto info2 = m_info.find(e2);
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lean_assert(info1 && info2);
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if (info1->m_num_mvars != info2->m_num_mvars)
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return info1->m_num_mvars < info2->m_num_mvars;
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else
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return info1->m_size < info2->m_size;
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}
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};
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struct collect_pattern_candidates_fn {
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// TODO(Leo):
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};
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void initialize_pattern() {
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g_no_pattern_name = new name("no_pattern");
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g_key = new std::string("no_pattern");
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no_pattern_ext::initialize();
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g_pattern = new name("pattern");
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register_annotation(*g_pattern);
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}
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void finalize_pattern() {
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no_pattern_ext::finalize();
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delete g_no_pattern_name;
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delete g_key;
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delete g_pattern;
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}
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}
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28
src/library/blast/forward/pattern.h
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28
src/library/blast/forward/pattern.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 "kernel/environment.h"
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namespace lean {
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/** \brief Annotate \c e as a pattern */
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expr mk_pattern(expr const & e);
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/** \brief Return true iff \c e is an annotated pattern */
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bool is_pattern(expr const & e);
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/** \brief Return the actual pattern */
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expr const & get_pattern_arg(expr const & e);
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/** \brief Return true iff \c e contains patterns */
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bool has_patterns(expr const & e);
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/** \brief Hint for the pattern inference procedure.
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It should not consider/infer patterns containing the constant \c n. */
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environment add_no_pattern(environment const & env, name const & n, bool persistent);
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/** \brief Return true if constant \c n is marked as [no_pattern] in the given environment. */
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bool is_no_pattern(environment const & env, name const & n);
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void initialize_pattern();
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void finalize_pattern();
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}
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