What To Expect From Expected Kneser-Ney Smoothing

19TH ANNUAL CONFERENCE OF THE INTERNATIONAL SPEECH COMMUNICATION ASSOCIATION (INTERSPEECH 2018), VOLS 1-6: SPEECH RESEARCH FOR EMERGING MARKETS IN MULTILINGUAL SOCIETIES(2018)

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摘要
Kneser-Ney smoothing on expected counts was proposed recently in [1]. In this paper we revisit this technique and suggest a number of optimizations and extensions. We then analyze its performance in several practical speech recognition scenarios that depend on fractional sample counts, such as training on uncertain data, language model adaptation and Word-Phrase Entity models. We show that the proposed approach to smoothing outperforms known alternatives by a significant margin.
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关键词
Language Modeling, Fractional Counts, Expected Kneser-Ney Smoothing
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