首页> 外文期刊>Universitatea din Craiova. Analele. Seria: Matematica, Informatica >Amazigh speech recognition using triphone modeling and clustering tree decision
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Amazigh speech recognition using triphone modeling and clustering tree decision

机译:Amazigh语音识别使用Trighone建模和聚类树决策

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The main objective of this paper is to develop an Amazigh automatic speech recognition system using a speech corpus composed on $187$ distinct Amazigh words. The speech corpus was recorded by $50$ ($25$ male and $25$ female) Amazigh-Tarifyt native speakers. The system was evaluated on a speaker-independent approach using Hidden Markov Models(HMMs). The tests were carried out basing essentially on the Gaussian mixture distributions(GMMs), tied states (senons), triphone modeling and clustering tree decision. The recognition rate increases significantly and reached $92,2%$ which is a high and satisfactory recognition rate comparing to the systems developed for this language especially in relative to the size of the corpus used on our system.
机译:本文的主要目标是开发一个使用187美元的语音语料库开发Amazigh自动语音识别系统。语音语料库以50美元(25美元,25美元,25美元,女性)Amazigh-Tarifyt母语。使用隐马尔可夫模型(HMMS)对系统独立的方法进行评估。测试是基本上基本上基于高斯混合分配(GMMS),绑定状态(森斯),三磡建模和聚类树决定。识别率显着增加,达到92,2±0.5美元,这是一种高且令人满意的识别率,与该语言开发的系统相比,特别是在我们系统上使用的语料库的大小。

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