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Effects of discriminative training on the RACAD corpus of the French language spoken in the Canadian province of New-Brunswick

机译:歧视性训练对加拿大新不伦瑞克省的法语RACAD语料库的影响

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This paper presents a recognition engine especially tailored to the French language spoken in the Canadian pro-vince of New-Brunswick. It studies a global monophone model that handles the linguistic variability found in the province. The study also explores the impact of speaker locality on recognition rate when using the global model. Three models are implemented for each linguistic poles; North-East, North-West, and South-East. The results show respectively 83.58% and 72.66% phone and word recognition rate for Mel frequency Cepstral coefficients, energy, delta and acceleration parameters acoustic models trained discriminatively with maximum mutual information and minimum phone error criterions respectively. Finally, we observe that the general acoustic models are sufficiently generalized to perform uniformly across the three linguistic poles with an average of 82.8% phone recognition rate across the three different acoustic models.
机译:本文介绍了一种识别引擎,该引擎专门针对加拿大新不伦瑞克省的法语进行了量身定制。它研究了处理该省发现的语言变异性的全球单音模型。该研究还探讨了使用全局模型时说话人所在地对识别率的影响。每个语言极点都实现了三个模型。东北,西北和东南。结果表明,分别判别训练的梅尔频率倒谱系数,能量,增量和加速度参数声学模型的电话和单词识别率分别为83.58%和72.66%,分别以最大的互信息量和最小的电话错误准则进行区分。最后,我们观察到一般的声学模型已被充分概括,可以在三个语言极点上均匀地执行,在三个不同的声学模型上的平均电话识别率达到82.8%。

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