Language modeling for voice search: A machine translation approach

ICASSP(2008)

引用 19|浏览92
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摘要
This paper presents a novel approach to language modeling for voice search based on the idea and method of statistical machine translation. We propose an n-gram based translation model that can be used for listing-to-query translation. We then leverage the query forms translated from listings to improve language modeling. The translation model is trained in an unsupervised manner using a set of transcribed voice search queries. Experiments show that the translation approach yielded drastic perplexity reductions compared with a baseline language model where no translation is applied.
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关键词
language modeling,directory assistance,statistical analysis,statistical machine translation,n-gram based translation model,language translation,index terms— language modeling,voice search,listing-to-query translation,machine translation,language model,indexing terms
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