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Robust Parsing of Spoken Dialogue Using Contextual Knowledge and Recognition Probabilities

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arxiv cmp-lg/9505017 v1 pith:SRAT5HFI submitted 1995-05-08 cmp-lg cs.CL

Robust Parsing of Spoken Dialogue Using Contextual Knowledge and Recognition Probabilities

classification cmp-lg cs.CL
keywords recognitionresultsworddialoguegraphparsingpredictionsrobust
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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In this paper we describe the linguistic processor of a spoken dialogue system. The parser receives a word graph from the recognition module as its input. Its task is to find the best path through the graph. If no complete solution can be found, a robust mechanism for selecting multiple partial results is applied. We show how the information content rate of the results can be improved if the selection is based on an integrated quality score combining word recognition scores and context-dependent semantic predictions. Results of parsing word graphs with and without predictions are reported.

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