1995 INTERNATIONAL CONFERENCE ON ACOUSTICS, SPEECH, AND SIGNAL PROCESSING - CONFERENCE PROCEEDINGS, VOLS 1-5(1995)
PHILIPS GMBH
被引用2370|浏览118
摘要
In stochastic language modeling, backing-off is a widely used method to cope with the sparse data problem. In case of unseen events this method backs off to a less specific distribution. In this paper we propose to use distributions which are especially optimized for the task of backing-off. Two different theoretical derivations lead to distributions which are quite different from the probability distributions that are usually used for backing-off. Experiments show an improvement of about 10% in terms of perplexity and 5% in terms of word error rate.
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关键词
grammars,natural languages,probability,speech processing,speech recognition,statistical analysis,stochastic processes,backing-off,distributions,experiments,perplexity,sparse data problem,stochastic language modeling,word error rate