implement LR optimisation in Python3 + align naming + DFAState ctor bugs
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@ -71,7 +71,7 @@ class ParserInterpreter(Parser):
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for state in atn.states:
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if not isinstance(state, StarLoopEntryState):
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continue
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if state.precedenceRuleDecision:
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if state.isPrecedenceDecision:
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self.pushRecursionContextStates.add(state.stateNumber)
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# get atn simulator that knows how to do predictions
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self._interp = ParserATNSimulator(self, atn, self.decisionToDFA, self.sharedContextCache)
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@ -368,7 +368,7 @@ class ATNDeserializer (object):
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#
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# Analyze the {@link StarLoopEntryState} states in the specified ATN to set
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# the {@link StarLoopEntryState#precedenceRuleDecision} field to the
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# the {@link StarLoopEntryState#isPrecedenceDecision} field to the
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# correct value.
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#
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# @param atn The ATN.
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@ -387,7 +387,7 @@ class ATNDeserializer (object):
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if isinstance(maybeLoopEndState, LoopEndState):
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if maybeLoopEndState.epsilonOnlyTransitions and \
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isinstance(maybeLoopEndState.transitions[0].target, RuleStopState):
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state.precedenceRuleDecision = True
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state.isPrecedenceDecision = True
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def verifyATN(self, atn:ATN):
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if not self.deserializationOptions.verifyATN:
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@ -37,7 +37,7 @@ from antlr4.dfa.DFAState import DFAState
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class ATNSimulator(object):
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# Must distinguish between missing edge and edge we know leads nowhere#/
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ERROR = DFAState(ATNConfigSet())
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ERROR = DFAState(configs=ATNConfigSet())
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ERROR.stateNumber = 0x7FFFFFFF
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# The context cache maps all PredictionContext objects that are ==
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@ -261,7 +261,7 @@ class StarLoopEntryState(DecisionState):
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self.stateType = self.STAR_LOOP_ENTRY
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self.loopBackState = None
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# Indicates whether this state can benefit from a precedence DFA during SLL decision making.
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self.precedenceRuleDecision = None
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self.isPrecedenceDecision = None
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# Mark the end of a * or + loop.
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class LoopEndState(ATNState):
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@ -346,15 +346,6 @@ class ParserATNSimulator(ATNSimulator):
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" exec LA(1)==" + self.getLookaheadName(input) +
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", outerContext=" + outerContext.toString(self.parser.literalNames, None))
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# If this is not a precedence DFA, we check the ATN start state
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# to determine if this ATN start state is the decision for the
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# closure block that determines whether a precedence rule
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# should continue or complete.
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#
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if not dfa.precedenceDfa and isinstance(dfa.atnStartState, StarLoopEntryState):
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if dfa.atnStartState.precedenceRuleDecision:
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dfa.setPrecedenceDfa(True)
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fullCtx = False
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s0_closure = self.computeStartState(dfa.atnStartState, ParserRuleContext.EMPTY, fullCtx)
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@ -365,6 +356,7 @@ class ParserATNSimulator(ATNSimulator):
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# appropriate start state for the precedence level rather
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# than simply setting DFA.s0.
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#
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dfa.s0.configs = s0_closure # not used for prediction but useful to know start configs anyway
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s0_closure = self.applyPrecedenceFilter(s0_closure)
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s0 = self.addDFAState(dfa, DFAState(configs=s0_closure))
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dfa.setPrecedenceStartState(self.parser.getPrecedence(), s0)
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@ -1173,7 +1165,13 @@ class ParserATNSimulator(ATNSimulator):
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# make sure to not return here, because EOF transitions can act as
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# both epsilon transitions and non-epsilon transitions.
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first = True
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for t in p.transitions:
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if first:
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first = False
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if self.canDropLoopEntryEdgeInLeftRecursiveRule(config):
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continue
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continueCollecting = collectPredicates and not isinstance(t, ActionTransition)
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c = self.getEpsilonTarget(config, t, continueCollecting, depth == 0, fullCtx, treatEofAsEpsilon)
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if c is not None:
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@ -1210,6 +1208,161 @@ class ParserATNSimulator(ATNSimulator):
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self.closureCheckingStopState(c, configs, closureBusy, continueCollecting, fullCtx, newDepth, treatEofAsEpsilon)
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# Implements first-edge (loop entry) elimination as an optimization
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# during closure operations. See antlr/antlr4#1398.
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#
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# The optimization is to avoid adding the loop entry config when
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# the exit path can only lead back to the same
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# StarLoopEntryState after popping context at the rule end state
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# (traversing only epsilon edges, so we're still in closure, in
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# this same rule).
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#
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# We need to detect any state that can reach loop entry on
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# epsilon w/o exiting rule. We don't have to look at FOLLOW
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# links, just ensure that all stack tops for config refer to key
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# states in LR rule.
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#
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# To verify we are in the right situation we must first check
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# closure is at a StarLoopEntryState generated during LR removal.
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# Then we check that each stack top of context is a return state
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# from one of these cases:
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#
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# 1. 'not' expr, '(' type ')' expr. The return state points at loop entry state
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# 2. expr op expr. The return state is the block end of internal block of (...)*
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# 3. 'between' expr 'and' expr. The return state of 2nd expr reference.
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# That state points at block end of internal block of (...)*.
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# 4. expr '?' expr ':' expr. The return state points at block end,
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# which points at loop entry state.
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#
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# If any is true for each stack top, then closure does not add a
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# config to the current config set for edge[0], the loop entry branch.
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#
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# Conditions fail if any context for the current config is:
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#
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# a. empty (we'd fall out of expr to do a global FOLLOW which could
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# even be to some weird spot in expr) or,
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# b. lies outside of expr or,
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# c. lies within expr but at a state not the BlockEndState
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# generated during LR removal
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#
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# Do we need to evaluate predicates ever in closure for this case?
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#
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# No. Predicates, including precedence predicates, are only
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# evaluated when computing a DFA start state. I.e., only before
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# the lookahead (but not parser) consumes a token.
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#
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# There are no epsilon edges allowed in LR rule alt blocks or in
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# the "primary" part (ID here). If closure is in
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# StarLoopEntryState any lookahead operation will have consumed a
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# token as there are no epsilon-paths that lead to
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# StarLoopEntryState. We do not have to evaluate predicates
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# therefore if we are in the generated StarLoopEntryState of a LR
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# rule. Note that when making a prediction starting at that
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# decision point, decision d=2, compute-start-state performs
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# closure starting at edges[0], edges[1] emanating from
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# StarLoopEntryState. That means it is not performing closure on
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# StarLoopEntryState during compute-start-state.
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#
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# How do we know this always gives same prediction answer?
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#
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# Without predicates, loop entry and exit paths are ambiguous
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# upon remaining input +b (in, say, a+b). Either paths lead to
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# valid parses. Closure can lead to consuming + immediately or by
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# falling out of this call to expr back into expr and loop back
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# again to StarLoopEntryState to match +b. In this special case,
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# we choose the more efficient path, which is to take the bypass
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# path.
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#
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# The lookahead language has not changed because closure chooses
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# one path over the other. Both paths lead to consuming the same
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# remaining input during a lookahead operation. If the next token
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# is an operator, lookahead will enter the choice block with
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# operators. If it is not, lookahead will exit expr. Same as if
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# closure had chosen to enter the choice block immediately.
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#
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# Closure is examining one config (some loopentrystate, some alt,
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# context) which means it is considering exactly one alt. Closure
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# always copies the same alt to any derived configs.
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#
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# How do we know this optimization doesn't mess up precedence in
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# our parse trees?
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#
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# Looking through expr from left edge of stat only has to confirm
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# that an input, say, a+b+c; begins with any valid interpretation
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# of an expression. The precedence actually doesn't matter when
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# making a decision in stat seeing through expr. It is only when
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# parsing rule expr that we must use the precedence to get the
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# right interpretation and, hence, parse tree.
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#
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# @since 4.6
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#
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def canDropLoopEntryEdgeInLeftRecursiveRule(self, config):
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# return False
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p = config.state
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# First check to see if we are in StarLoopEntryState generated during
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# left-recursion elimination. For efficiency, also check if
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# the context has an empty stack case. If so, it would mean
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# global FOLLOW so we can't perform optimization
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# Are we the special loop entry/exit state? or SLL wildcard
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if p.stateType != ATNState.STAR_LOOP_ENTRY \
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or not p.isPrecedenceDecision \
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or config.context.isEmpty() \
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or config.context.hasEmptyPath():
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return False
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# Require all return states to return back to the same rule
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# that p is in.
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numCtxs = len(config.context)
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for i in range(0, numCtxs): # for each stack context
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returnState = self.atn.states[config.context.getReturnState(i)]
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if returnState.ruleIndex != p.ruleIndex:
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return False
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decisionStartState = p.transitions[0].target
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blockEndStateNum = decisionStartState.endState.stateNumber
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blockEndState = self.atn.states[blockEndStateNum]
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# Verify that the top of each stack context leads to loop entry/exit
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# state through epsilon edges and w/o leaving rule.
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for i in range(0, numCtxs): # for each stack context
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returnStateNumber = config.context.getReturnState(i)
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returnState = self.atn.states[returnStateNumber]
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# all states must have single outgoing epsilon edge
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if len(returnState.transitions) != 1 or not returnState.transitions[0].isEpsilon:
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return False
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# Look for prefix op case like 'not expr', (' type ')' expr
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returnStateTarget = returnState.transitions[0].target
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if returnState.stateType == ATNState.BLOCK_END and returnStateTarget is p:
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continue
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# Look for 'expr op expr' or case where expr's return state is block end
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# of (...)* internal block; the block end points to loop back
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# which points to p but we don't need to check that
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if returnState is blockEndState:
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continue
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# Look for ternary expr ? expr : expr. The return state points at block end,
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# which points at loop entry state
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if returnStateTarget is blockEndState:
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continue
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# Look for complex prefix 'between expr and expr' case where 2nd expr's
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# return state points at block end state of (...)* internal block
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if returnStateTarget.stateType == ATNState.BLOCK_END \
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and len(returnStateTarget.transitions) == 1 \
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and returnStateTarget.transitions[0].isEpsilon \
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and returnStateTarget.transitions[0].target is p:
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continue
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# anything else ain't conforming
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return False
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return True
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def getRuleName(self, index:int):
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if self.parser is not None and index>=0:
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return self.parser.ruleNames[index]
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@ -27,6 +27,7 @@
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# THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
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# (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
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# THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
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from antlr4.atn.ATNState import StarLoopEntryState
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from antlr4.atn.ATNConfigSet import ATNConfigSet
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from antlr4.atn.ATNState import DecisionState
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@ -49,6 +50,15 @@ class DFA(object):
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# {@link #setPrecedenceDfa}.
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self.precedenceDfa = False
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if isinstance(atnStartState, StarLoopEntryState):
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if atnStartState.isPrecedenceDecision:
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self.precedenceDfa = True
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precedenceState = DFAState(configs=ATNConfigSet())
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precedenceState.edges = []
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precedenceState.isAcceptState = False
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precedenceState.requiresFullContext = False
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self.s0 = precedenceState
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# Get the start state for a specific precedence value.
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#
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@ -112,7 +122,7 @@ class DFA(object):
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if self.precedenceDfa != precedenceDfa:
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self._states = dict()
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if precedenceDfa:
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precedenceState = DFAState(ATNConfigSet())
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precedenceState = DFAState(configs=ATNConfigSet())
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precedenceState.edges = []
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precedenceState.isAcceptState = False
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precedenceState.requiresFullContext = False
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