387 lines
14 KiB
Python
387 lines
14 KiB
Python
"""
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SMT-based Model Checking Module for RS with Concentrations and Context Automaton
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"""
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from z3 import *
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from time import time
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from sys import stdout
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from itertools import chain
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import resource
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# def simplify(x):
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# return x
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class SmtCheckerRSC(object):
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def __init__(self, rsca):
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rsca.sanity_check()
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if not rsca.is_with_concentrations():
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raise RuntimeError("RS and CA with concentrations expected")
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self.rs = rsca.rs
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self.ca = rsca.ca
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self.v = []
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self.v_ctx = []
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self.ca_state = []
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self.next_level_to_encode = 0
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self.solver = Solver()
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self.verification_time = None
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def prepare_all_variables(self):
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"""Encodes all the variables"""
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self.prepare_state_variables()
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self.prepare_context_variables()
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self.next_level_to_encode += 1
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def prepare_context_variables(self):
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"""Encodes all the context variables"""
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level = self.next_level_to_encode
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variables = []
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for entity in self.rs.background_set:
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variables.append(Int("C"+str(level)+"_"+entity))
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self.v_ctx.append(variables)
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def prepare_state_variables(self):
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"""Encodes all the state variables"""
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level = self.next_level_to_encode
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variables = []
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for entity in self.rs.background_set:
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variables.append(Int("L"+str(level)+"_"+entity))
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self.v.append(variables)
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self.ca_state.append(Int("CA"+str(level)+"_state"))
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def enc_init_state(self, level):
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"""Encodes the initial state at the given level"""
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rs_init_state_enc = True
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for v in self.v[level]:
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rs_init_state_enc = simplify(And(rs_init_state_enc, v == 0)) # the initial concentration levels are zeroed
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ca_init_state_enc = self.ca_state[level] == self.ca.get_init_state_id()
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init_state_enc = simplify(And(rs_init_state_enc, ca_init_state_enc))
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return init_state_enc
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def enc_produced_concentration(self, level, prod_entity):
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"""Encodes the produced concentrations for the given level and entity"""
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rcts_for_prod_entity = []
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if prod_entity in self.rs.get_reactions_by_product():
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rcts_for_prod_entity = self.rs.get_reactions_by_product()[prod_entity]
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meta_reactions = []
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if prod_entity in self.rs.meta_reactions:
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meta_reactions = self.rs.meta_reactions[prod_entity]
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if rcts_for_prod_entity == [] and meta_reactions == []:
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return simplify(self.v[level+1][prod_entity] == 0) # this should never happen
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enc_enabledness = False
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# ----------- ordinary reactions --------------------------------------------
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enc_rct_prod = False
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for reactants,inhibitors,products in rcts_for_prod_entity:
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enc_reactants = True
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enc_inhibitors = True
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# enc_products -- below
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for reactant,concentration in reactants:
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enc_reactants = simplify(And(enc_reactants,
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Or(self.v[level][reactant] >= concentration, self.v_ctx[level][reactant] >= concentration)))
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for inhibitor,concentration in inhibitors:
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enc_inhibitors = simplify(And(enc_inhibitors,
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And(self.v[level][inhibitor] < concentration, self.v_ctx[level][inhibitor] < concentration)))
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enc_products = self.v[level+1][products[0][0]] == products[0][1]
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enc_enabledness = simplify(Or(enc_enabledness, And(enc_reactants, enc_inhibitors)))
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enc_rct_prod = simplify(Or(enc_rct_prod, And(enc_reactants, enc_inhibitors, enc_products)))
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# -------- meta reactions ---------------------------------------------------
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for r_type,reactants,inhibitors in meta_reactions:
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enc_reactants = True
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enc_inhibitors = True
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for reactant,concentration in reactants:
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enc_reactants = simplify(And(enc_reactants,
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Or(self.v[level][reactant] >= concentration, self.v_ctx[level][reactant] >= concentration)))
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for inhibitor,concentration in inhibitors:
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enc_inhibitors = simplify(And(enc_inhibitors,
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And(self.v[level][inhibitor] < concentration, self.v_ctx[level][inhibitor] < concentration)))
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if r_type == "inc":
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enc_products = self.v[level+1][prod_entity] == self.v[level][prod_entity]+1
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elif r_type == "dec":
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enc_products = self.v[level+1][prod_entity] == self.v[level][prod_entity]-1
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else:
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raise RuntimeError("Unknown meta-reaction type: " + repr(r_type))
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enc_enabledness = simplify(Or(enc_enabledness, And(enc_reactants, enc_inhibitors)))
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enc_rct_prod = simplify(Or(enc_rct_prod, And(enc_reactants, enc_inhibitors, enc_products)))
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# -----------------------------------------------------------------------------
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enc_when_to_produce_zero_conc = simplify(And(Not(enc_enabledness), self.v[level+1][prod_entity] == 0))
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enc_rct_prod = Or(enc_rct_prod, enc_when_to_produce_zero_conc)
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return enc_rct_prod
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# def enc_entity_production(self, level, prod_entity):
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# """Encodes the production of a given entity from a given level at level+1"""
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#
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# enc_enab_cond = self.enc_enabledness(level, prod_entity)
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#
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# enc_ent_prod = Or(And(enc_enab_cond, self.v[level+1][prod_entity]),
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# And(Not(enc_enab_cond), Not(self.v[level+1][prod_entity])))
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#
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# return simplify(enc_ent_prod)
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def enc_transition_relation(self, level):
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return simplify(And(self.enc_rs_trans(level), self.enc_automaton_trans(level)))
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def enc_rs_trans(self, level):
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"""Encodes the transition relation"""
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unused_entities = set(range(len(self.rs.background_set)))
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enc_trans = True
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reactions = self.rs.get_reactions_by_product()
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meta_reactions = self.rs.meta_reactions
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for prod_entity in chain(reactions, meta_reactions):
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unused_entities.discard(prod_entity)
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enc_trans = simplify(And(enc_trans, self.enc_produced_concentration(level, prod_entity)))
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for prod_entity in unused_entities:
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enc_trans = simplify(And(enc_trans, self.v[level+1][prod_entity] == 0))
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return enc_trans
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def enc_automaton_trans(self, level):
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"""Encodes the transition relation for the context automaton"""
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enc_trans = False
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for src,ctx,dst in self.ca.transitions:
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src_enc = self.ca_state[level] == src
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dst_enc = self.ca_state[level+1] == dst
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all_ent = set(range(len(self.rs.background_set)))
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incl_ctx = set([e for e,c in ctx])
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excl_ctx = all_ent - incl_ctx
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ctx_enc = True
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for e,c in ctx:
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ctx_enc = simplify(And(ctx_enc, self.v_ctx[level][e] == c))
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for e in excl_ctx:
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ctx_enc = simplify(And(ctx_enc, self.v_ctx[level][e] == 0))
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cur_trans = simplify(And(src_enc, ctx_enc, dst_enc))
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enc_trans = simplify(Or(enc_trans, cur_trans))
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return enc_trans
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def enc_exact_state(self, level, state):
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"""Encodes the state at the given level with the exact concentration values"""
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raise RuntimeError("Should not be used with RSC")
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# enc = True
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# used_entities_ids = self.rs.get_state_ids(state)
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#
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# for ent,conc in state:
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# e_id = self.rs.get_entity_id(ent)
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# enc = And(enc, self.v[level][e_id] == conc)
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#
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# not_in_state = set(range(len(self.rs.background_set)))
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# not_in_state = not_in_state.difference(set(used_entities_ids))
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#
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# for entity in not_in_state:
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# enc = And(enc, self.v[level][entity] == 0)
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#
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# return simplify(enc)
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def enc_min_state(self, level, state):
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"""Encodes the state at the given level with the minimal required concentration levels"""
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enc = True
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for ent,conc in state:
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e_id = self.rs.get_entity_id(ent)
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enc = And(enc, self.v[level][e_id] >= conc)
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# state_ids = self.rs.get_state_ids(state)
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#
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# for entity in state_ids:
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# enc = And(enc, self.v[level][entity])
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return simplify(enc)
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def decode_witness(self, max_level, print_model=False):
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m = self.solver.model()
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if print_model:
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print(m)
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for level in range(max_level+1):
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print("\n[Level=" + repr(level) + "]")
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print(" State: {", end=""),
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for var_id in range(len(self.v[level])):
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var_rep = repr(m[self.v[level][var_id]])
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if not var_rep.isdigit():
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raise RuntimeError("unexpected: representation is not a positive integer")
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if int(var_rep) > 0:
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print(" " + self.rs.get_entity_name(var_id) + "=" + var_rep, end="")
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# print(" " + repr(m[self.v[level][var_id]]), end="")
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print(" }")
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if level != max_level:
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print(" Context set: ", end="")
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print("{", end="")
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for var_id in range(len(self.v[level])):
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var_rep = repr(m[self.v_ctx[level][var_id]])
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if not var_rep.isdigit():
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raise RuntimeError("unexpected: representation is not a positive integer")
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if int(var_rep) > 0:
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print(" " + self.rs.get_entity_name(var_id) + "=" + var_rep, end="")
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print(" }")
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def check_reachability(self, state, print_witness=True,
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print_time=True, print_mem=True, max_level=100):
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"""Main testing function"""
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if print_time:
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# start = time()
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start = resource.getrusage(resource.RUSAGE_SELF).ru_utime
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self.prepare_all_variables()
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self.solver.add(self.enc_init_state(0))
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current_level = 0
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self.prepare_all_variables()
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while True:
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self.prepare_all_variables()
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print("-----[ Working at level=" + str(current_level) + " ]-----")
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stdout.flush()
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# reachability test:
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print("[i] Adding the reachability test...")
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self.solver.push()
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self.solver.add(self.enc_min_state(current_level,state))
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result = self.solver.check()
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if result == sat:
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print("\n[+] SAT at level=" + str(current_level))
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if print_witness:
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self.decode_witness(current_level)
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break
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else:
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self.solver.pop()
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print("[i] Unrolling the transition relation")
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self.solver.add(self.enc_transition_relation(current_level))
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print("-----[ level=" + str(current_level) + " done ]")
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current_level += 1
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if current_level > max_level:
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print("Stopping at level=" + str(max_level))
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break
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if print_time:
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# stop = time()
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stop = resource.getrusage(resource.RUSAGE_SELF).ru_utime
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self.verification_time = stop-start
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print()
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print("[i] Time: " + repr(self.verification_time))
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if print_mem:
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print("[i] Memory: " + repr(resource.getrusage(resource.RUSAGE_SELF).ru_maxrss/(1024*1024)) + " MB")
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def get_verification_time(self):
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return self.verification_time
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def show_encoding(self, state, print_witness=True,
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print_time=False, print_mem=False, max_level=100):
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"""Encoding debug function"""
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self.prepare_all_variables()
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init_s = self.enc_init_state(0)
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print(init_s)
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self.solver.add(init_s)
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current_level = 0
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self.prepare_all_variables()
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while True:
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self.prepare_all_variables()
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print("-----[ Working at level=" + str(current_level) + " ]-----")
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stdout.flush()
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# reachability test:
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print("[i] Adding the reachability test...")
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self.solver.push()
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s = self.enc_min_state(current_level,state)
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print(s)
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self.solver.add(s)
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result = self.solver.check()
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if result == sat:
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print("\n[+] SAT at level=" + str(current_level))
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if print_witness:
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self.decode_witness(current_level)
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break
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else:
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self.solver.pop()
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print("[i] Unrolling the transition relation")
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t = self.enc_transition_relation(current_level)
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print(t)
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self.solver.add(t)
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print("-----[ level=" + str(current_level) + " done ]")
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current_level += 1
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x=input("Next level? ")
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x=x.lower()
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if not (x == "y" or x == "yes"):
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break
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if current_level > max_level:
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print("Stopping at level=" + str(max_level))
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break
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