spot 2.16
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ltlf2dfa.hh
1// -*- coding: utf-8 -*-
2// Copyright (C) by the Spot authors, see the AUTHORS file for details.
3//
4// This file is part of Spot, a model checking library.
5//
6// Spot is free software; you can redistribute it and/or modify it
7// under the terms of the GNU General Public License as published by
8// the Free Software Foundation; either version 3 of the License, or
9// (at your option) any later version.
10//
11// Spot is distributed in the hope that it will be useful, but WITHOUT
12// ANY WARRANTY; without even the implied warranty of MERCHANTABILITY
13// or FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public
14// License for more details.
15//
16// You should have received a copy of the GNU General Public License
17// along with this program. If not, see <http://www.gnu.org/licenses/>.
18
19#pragma once
20
21#include <spot/twa/twagraph.hh>
22#include <spot/misc/bddlt.hh>
23#include <spot/misc/trival.hh>
24#include <spot/twaalgos/backprop.hh>
25
26namespace spot
27{
44
49 struct SPOT_API mtdfa_stats
50 {
55 unsigned states;
56
62 unsigned aps;
63
67 unsigned nodes;
68
74 unsigned terminals;
75
83
88 unsigned long long paths;
89
93 unsigned long long edges;
94 };
95
116 struct SPOT_API mtdfa: public std::enable_shared_from_this<mtdfa>
117 {
118 public:
123 mtdfa(const bdd_dict_ptr& dict) noexcept
124 : dict_(dict)
125 {
126 }
127
128 ~mtdfa()
129 {
130 dict_->unregister_all_my_variables(this);
131 }
132
133 std::vector<bdd> states;
134 std::vector<formula> names;
144 std::vector<formula> aps;
145
150 unsigned num_roots() const
151 {
152 return states.size();
153 }
154
160 unsigned num_states() const
161 {
162 return states.size() + bdd_has_true(states);
163 }
164
165 // This assumes that all states are reachable, so we just have to
166 // check if one terminal is accepting.
168 bool is_empty() const;
169
179 std::ostream& print_dot(std::ostream& os,
180 int index = -1,
181 bool labels = true) const;
182
200 twa_graph_ptr as_twa(bool state_based = false, bool labels = true) const;
201
215 mtdfa_stats get_stats(bool nodes, bool paths) const;
216
219 {
220 return dict_;
221 }
222
235 void set_controllable_variables(const std::vector<std::string>& vars,
236 bool ignore_non_registered_ap = false);
239
242 {
243 return controllable_variables_;
244 }
245
246 private:
247 bdd_dict_ptr dict_;
248 bdd controllable_variables_ = bddtrue;
249 };
250
253 typedef std::shared_ptr<mtdfa> mtdfa_ptr;
256 typedef std::shared_ptr<const mtdfa> const_mtdfa_ptr;
257
296 SPOT_API mtdfa_ptr
298 bool fuse_same_bdds = true,
299 bool simplify_terms = true,
300 bool detect_empty_univ = true,
301 bool preserve_quantifiers_in_names = false);
302
303
311
318 {
323 bool one_step_preprocess = true;
324
331 bool terminating_semantics = true;
332
334 bool fuse_same_bdds = true;
335
337 bool simplify_terms = true;
338
344 bool detect_empty_univ = true;
345 };
346
393 SPOT_API mtdfa_ptr
395 const std::vector<std::string>& outvars,
398 bool realizability = false,
399 ltlf_synthesis_options options = {});
400
432 SPOT_API mtdfa_ptr
434 bool minimize = true, bool order_for_aps = true,
435 bool want_names = true,
436 bool fuse_same_bdds = true,
437 bool simplify_terms = true);
438
457 SPOT_API mtdfa_ptr minimize_mtdfa(const mtdfa_ptr& dfa);
458
461 SPOT_API mtdfa_ptr product(const mtdfa_ptr& dfa1, const mtdfa_ptr& dfa2);
462
465 SPOT_API mtdfa_ptr product_or(const mtdfa_ptr& dfa1, const mtdfa_ptr& dfa2);
466
473 SPOT_API mtdfa_ptr product_xor(const mtdfa_ptr& dfa1, const mtdfa_ptr& dfa2);
474
481 SPOT_API mtdfa_ptr product_xnor(const mtdfa_ptr& dfa1, const mtdfa_ptr& dfa2);
482
488 SPOT_API mtdfa_ptr product_implies(const mtdfa_ptr& dfa1,
489 const mtdfa_ptr& dfa2);
490
493 SPOT_API mtdfa_ptr complement(const mtdfa_ptr& dfa);
494
497 SPOT_API mtdfa_ptr trim(const mtdfa_ptr& dfa);
498
509 SPOT_API mtdfa_ptr quantify_exists(const mtdfa_ptr& dfa, bdd vars,
510 bool trim = true);
512 const formula& ap, bool trim = true);
514 const std::vector<formula>& aps,
515 bool trim = true);
517
528 SPOT_API mtdfa_ptr quantify_forall(const mtdfa_ptr& dfa, bdd vars,
529 bool trim = true);
531 const formula& ap, bool trim = true);
533 const std::vector<formula>& aps,
534 bool trim = true);
536
540
541
548 class SPOT_API ltlf_translator
549 {
550 public:
553 bool simplify_terms = true);
554
556 mtdfa_ptr ltlf_to_mtdfa(formula f, bool fuse_same_bdds,
557 bool detect_empty_univ = true,
558 bool preserve_quantifiers_in_names = false);
559
562 bool detect_empty_univ = true,
563 const std::vector<std::string>* outvars
564 = nullptr,
565 bool do_backprop = false,
566 bool realizability = false,
567 bool one_step_preprocess = false,
568 bool bfs = true,
569 bool terminating_semantics = true,
570 bool preserve_quantifiers_in_names
571 = false);
572
576 std::pair<formula, bool> leaf_to_formula(int b, int term) const;
577
583 int formula_to_terminal(formula f, bool may_stop = false);
585 bdd formula_to_terminal_bdd(formula f, bool may_stop = false);
587 int formula_to_terminal_bdd_as_int(formula f, bool may_stop = false);
588
590 bdd combine_and(bdd left, bdd right);
592 bdd combine_or(bdd left, bdd right);
594 bdd combine_implies(bdd left, bdd right);
596 bdd combine_equiv(bdd left, bdd right);
598 bdd combine_xor(bdd left, bdd right);
600 bdd combine_not(bdd b);
601
602
612 int formula_propeq_to_terminal(formula f, bool may_stop = false);
613
614
616 bddExtCache* get_cache()
617 {
618 return &cache_;
619 }
620
622 private:
623 std::unordered_map<formula, int> formula_to_var_;
624 std::unordered_map<formula, bdd> propositional_equiv_bdd_;
625 std::unordered_map<bdd, formula, bdd_hash> propositional_equiv_;
626 std::unordered_map<formula, int> propeq_to_int_;
627
628 std::unordered_map<formula, bdd> formula_to_bdd_;
629 std::unordered_map<formula, int> formula_to_int_;
630 std::vector<formula> int_to_formula_;
631 bdd_dict_ptr dict_;
632 bddExtCache cache_;
633 bool simplify_terms_;
634 };
635
649 SPOT_API std::vector<bool>
651
664 SPOT_API std::vector<bool>
666
667 SPOT_API std::vector<trival>
670
680 SPOT_API mtdfa_ptr
682 const std::vector<bool>& winning_states);
683 SPOT_API mtdfa_ptr
685 const std::vector<trival>& winning_states);
687
688
705 SPOT_API backprop_graph
706 mtdfa_to_backprop(mtdfa_ptr dfa, bool early_stop = true,
707 bool preserve_names = false);
708
724 SPOT_API mtdfa_ptr
725 mtdfa_winning_strategy(mtdfa_ptr dfa, bool backprop_nodes);
726
741 SPOT_API twa_graph_ptr
742 mtdfa_strategy_to_mealy(mtdfa_ptr strategy, bool labels = true,
743 bool loop = false);
744}
Graph used for backward propagation of winning conditions in parity games.
Definition backprop.hh:34
Main class for temporal logic formula.
Definition formula.hh:847
"Semi-internal" class used to implement ltlf_to_mtdfa()
Definition ltlf2dfa.hh:549
bdd propeq_encode(formula f)
Encode a formula using propositional equivalences.
int formula_to_terminal(formula f, bool may_stop=false)
Convert a formula to a terminal index.
int formula_to_int(formula f)
Convert a formula to an integer key.
bddExtCache * get_cache()
Return a pointer to the internal BDD cache.
Definition ltlf2dfa.hh:616
bdd formula_to_terminal_bdd(formula f, bool may_stop=false)
Convert a formula to a terminal BDD.
ltlf_translator(const bdd_dict_ptr &dict, bool simplify_terms=true)
Construct the translator with the given BDD dictionary.
bdd combine_equiv(bdd left, bdd right)
Combine two BDDs with equivalence.
formula propeq_representative(formula f)
Get the representative for a propositional equiv.
int formula_propeq_to_terminal(formula f, bool may_stop=false)
Convert propositional equiv formula to terminal.
bdd combine_implies(bdd left, bdd right)
Combine two BDDs with implication.
int formula_propeq_to_terminal_bdd_as_int(formula f, bool may_stop)
Convert propositional equiv formula to terminal BDD int.
bdd combine_and(bdd left, bdd right)
Combine two BDDs with logical AND.
bdd ltlf_to_mtbdd(formula f)
Convert an LTLf formula to an MTBDD.
int formula_to_terminal_bdd_as_int(formula f, bool may_stop=false)
Convert a formula to a terminal BDD integer.
bdd combine_xor(bdd left, bdd right)
Combine two BDDs with exclusive OR.
std::pair< formula, bool > leaf_to_formula(int b, int term) const
Convert a leaf value to a formula.
mtdfa_ptr ltlf_to_mtdfa_synthesis(formula f, bool fuse_same_bdds, bool detect_empty_univ=true, const std::vector< std::string > *outvars=nullptr, bool do_backprop=false, bool realizability=false, bool one_step_preprocess=false, bool bfs=true, bool terminating_semantics=true, bool preserve_quantifiers_in_names=false)
Translate an LTLf formula to MTdfa for synthesis.
bdd combine_or(bdd left, bdd right)
Combine two BDDs with logical OR.
bdd combine_not(bdd b)
Negate a BDD.
formula terminal_to_formula(int t) const
Convert a terminal integer to a formula.
mtdfa_ptr ltlf_to_mtdfa(formula f, bool fuse_same_bdds, bool detect_empty_univ=true, bool preserve_quantifiers_in_names=false)
Translate an LTLf formula to a Multi-Terminal DFA.
int formula_propeq_to_int(formula f)
Convert propositional equiv formula to int.
A Transition-based ω-Automaton.
Definition twa.hh:648
mtdfa_ptr product_or(const mtdfa_ptr &dfa1, const mtdfa_ptr &dfa2)
Combine two MTDFAs to sum their languages.
mtdfa_ptr twadfa_to_mtdfa(const twa_graph_ptr &twa)
Convert a TWA (representing a DFA) into an MTDFA.
mtdfa_ptr product_xor(const mtdfa_ptr &dfa1, const mtdfa_ptr &dfa2)
Combine two MTDFAs to build the exclusive sum of their languages.
mtdfa_ptr ltlf_to_mtdfa_for_synthesis(formula f, const bdd_dict_ptr &dict, const std::vector< std::string > &outvars, ltlf_synthesis_backprop backprop=dfs_node_backprop, bool realizability=false, ltlf_synthesis_options options={})
Solve (or start solving) LTLf synthesis.
mtdfa_ptr product_xnor(const mtdfa_ptr &dfa1, const mtdfa_ptr &dfa2)
Combine two MTDFAs to keep words that are handled similarly in both operands.
mtdfa_ptr ltlf_to_mtdfa_compose(formula f, const bdd_dict_ptr &dict, bool minimize=true, bool order_for_aps=true, bool want_names=true, bool fuse_same_bdds=true, bool simplify_terms=true)
Convert an LTLf formula into a MTDFA, with a compositional approach.
std::shared_ptr< const mtdfa > const_mtdfa_ptr
Shared pointer to a const mtdfa.
Definition ltlf2dfa.hh:256
mtdfa_ptr ltlf_to_mtdfa(formula f, const bdd_dict_ptr &dict, bool fuse_same_bdds=true, bool simplify_terms=true, bool detect_empty_univ=true, bool preserve_quantifiers_in_names=false)
Convert an LTLf formula into an MTDFA.
twa_graph_ptr mtdfa_strategy_to_mealy(mtdfa_ptr strategy, bool labels=true, bool loop=false)
Convert an MTDFA representing a strategy to a TwA with the "synthesis-output" property.
std::vector< bool > mtdfa_winning_region(mtdfa_ptr dfa)
Compute the winning region of the MTDFA interpreted as a game.
mtdfa_ptr product(const mtdfa_ptr &dfa1, const mtdfa_ptr &dfa2)
Combine two MTDFAs to intersect their languages.
ltlf_synthesis_backprop
Backpropagation mode for LTLf synthesis.
Definition ltlf2dfa.hh:306
mtdfa_ptr trim(const mtdfa_ptr &dfa)
Trim an MTDFA.
mtdfa_ptr quantify_forall(const mtdfa_ptr &dfa, bdd vars, bool trim=true)
Universally quantify variables in an MTDFA.
mtdfa_ptr minimize_mtdfa(const mtdfa_ptr &dfa)
Minimize a MTDFA.
mtdfa_ptr mtdfa_winning_strategy(mtdfa_ptr dfa, bool backprop_nodes)
Compute a strategy for an MTDFA interpreted as a game.
std::shared_ptr< mtdfa > mtdfa_ptr
Shared pointer to a mtdfa.
Definition ltlf2dfa.hh:253
mtdfa_ptr mtdfa_restrict_as_game(mtdfa_ptr dfa)
Build a generalized strategy from a set of winning states.
backprop_graph mtdfa_to_backprop(mtdfa_ptr dfa, bool early_stop=true, bool preserve_names=false)
Build a backprop_graph from dfa.
mtdfa_ptr quantify_exists(const mtdfa_ptr &dfa, bdd vars, bool trim=true)
Existentially quantify variables in an MTDFA.
mtdfa_ptr product_implies(const mtdfa_ptr &dfa1, const mtdfa_ptr &dfa2)
Combine two MTDFAs to build an implication.
@ state_refine
no backpropagation, just local refinement
Definition ltlf2dfa.hh:307
@ dfs_node_backprop
on-the-fly, DFS
Definition ltlf2dfa.hh:309
@ bfs_node_backprop
on-the-fly, BFS
Definition ltlf2dfa.hh:308
@ ap
Atomic proposition.
twa_graph_ptr complement(const const_twa_graph_ptr &aut, const output_aborter *aborter=nullptr)
Complement a TωA.
std::shared_ptr< bdd_dict > bdd_dict_ptr
Shared pointer to a bdd_dict.
Definition bdddict.hh:304
std::shared_ptr< twa_graph > twa_graph_ptr
Shared pointer to a mutable twa_graph.
Definition fwd.hh:44
Definition automata.hh:26
std::vector< bool > mtdfa_winning_region_lazy(mtdfa_ptr dfa)
Compute the winning region of the MTDFA interpreted as a game. Lazy version.
std::vector< trival > mtdfa_winning_region_lazy3(mtdfa_ptr dfa)
Compute the winning region of the MTDFA interpreted as a game. Lazy version.
Fine-tuning options for LTLf synthesis.
Definition ltlf2dfa.hh:318
statistics about an mtdfa instance
Definition ltlf2dfa.hh:50
unsigned nodes
Number of internal nodes (or decision nodes)
Definition ltlf2dfa.hh:67
unsigned long long paths
Number of paths between a root and a leaf (terminal or constant)
Definition ltlf2dfa.hh:88
unsigned terminals
Number of terminal nodes.
Definition ltlf2dfa.hh:74
unsigned aps
number of atomic propositions
Definition ltlf2dfa.hh:62
bool has_false
Whether the true and false constants are used.
Definition ltlf2dfa.hh:81
bool has_true
Whether the true and false constants are used.
Definition ltlf2dfa.hh:80
unsigned states
number of roots
Definition ltlf2dfa.hh:55
unsigned long long edges
Number of pairs (root, leaf) for which a path exists.
Definition ltlf2dfa.hh:93
A DFA represented using shared multi-terminal BDDs.
Definition ltlf2dfa.hh:117
unsigned num_states() const
The number of states in the automaton.
Definition ltlf2dfa.hh:160
twa_graph_ptr as_twa(bool state_based=false, bool labels=true) const
Convert this automaton to a spot::twa_graph.
void set_controllable_variables(const std::vector< std::string > &vars, bool ignore_non_registered_ap=false)
Declare a list of controllable variables.
bdd_dict_ptr get_dict() const
Get the bdd_dict associated to this automaton.
Definition ltlf2dfa.hh:218
std::vector< formula > aps
The list of atomic propositions possibly used by the automaton.
Definition ltlf2dfa.hh:144
void set_controllable_variables(bdd vars)
Declare a list of controllable variables.
std::vector< formula > names
Definition ltlf2dfa.hh:134
mtdfa_stats get_stats(bool nodes, bool paths) const
Compute some statistics about the automaton.
bdd get_controllable_variables() const
Returns the conjunction of controllable variables.
Definition ltlf2dfa.hh:241
std::vector< bdd > states
BDD transitions for each root state.
Definition ltlf2dfa.hh:133
unsigned num_roots() const
The number of MTBDDs roots.
Definition ltlf2dfa.hh:150
bool is_empty() const
Check if the automaton recognizes the empty language.
std::ostream & print_dot(std::ostream &os, int index=-1, bool labels=true) const
Print the states array of MTBDD in graphviz format.
mtdfa(const bdd_dict_ptr &dict) noexcept
Create an empty mtdfa.
Definition ltlf2dfa.hh:123

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