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Toward an Automatic Fongbe Speech Recognition System: Hierarchical Mixtures of Algorithms for Phoneme Recognition

机译:朝向自动FONGBE语音识别系统:音素识别的分层混合算法

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In this paper, we have demonstrated the efficacy of an automatic continuous speech recognition system by mixing fuzzy and neuronal approaches and an acoustic analysis of the sounds of an under-resourced language. The system we propose integrates the modules such as extraction module, segmentation and phoneme recognition modules and whose the core is based on the phoneme detection in continuous speech. This work offers a complete recipe of algorithms to perform hierarchically the following tasks: speech segmentation - phoneme classification - phoneme recognition. The segmentation task provides as output phoneme segment which are subsequently classified according to their nature (consonant or vowel voiced or unvoiced etc.). The segmentation and classification axe based exclusively on a fuzzy approach while the phoneme recognition task exploits the acoustic features such as the for-mants for vowels and the pitch and intensity for consonants. Experiments were per- formed on Fongbe language (an African tonal language spoken especially in Benin, Togo and Nigeria) and results of phoneme error rate are reported.
机译:在本文中,我们通过混合模糊和神经元方法和资源欠资料声音的声学分析来证明了自动连续语音识别系统的功效。系统我们提出集成了提取模块,分段和音素识别模块等模块,并且其核心基于连续语音中的音素检测。这项工作提供了一个完整的算法,以进行分层执行以下任务:语音分段 - 音素分类 - 音素识别。分割任务提供为输出音素段,随后根据其性质(辅音或元音或无声等)进行分类。基于模糊方法的分割和分类轴,同时音素识别任务利用诸如元音的门槛等声学特征以及辅音的音高和强度。对Fongbe语言(特别是在贝宁,多哥和尼日利亚中所说的非洲色调语言)进行实验,并报告了音素错误率的结果。

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