Publication | Closed Access
Learning deterministic regular grammars from stochastic samples in polynomial time
124
Citations
18
References
1999
Year
Structured PredictionSyntactic ParsingEngineeringMachine LearningStochastic AnalysisWeighted AutomatonStochastic Regular LanguagesNatural Language ProcessingSyntaxComputational LinguisticsDeterministic Regular GrammarsGrammarLanguage StudiesGrammatical FormalismComputer ScienceGrammar InductionTreebanksAutomaton OperationLinguisticsSample SetMinimal Stochastic Automaton
In this paper, the identification of stochastic regular languages is addressed. For this purpose, we propose a class of algorithms which allow for the identification of the structure of the minimal stochastic automaton generating the language. It is shown that the time needed grows only linearly with the size of the sample set and a measure of the complexity of the task is provided. Experimentally, our implementation proves very fast for application purposes.
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