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Robust recognition of children's speech

机译:健壮地承认儿童的讲话

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摘要

Developmental changes in speech production introduce age-dependent spectral and temporal variability in the speech signal produced by children. Such variabilities pose challenges for robust automatic recognition of children's speech. Through an analysis of age-related acoustic characteristics of children's speech in the context of automatic speech recognition (ASR), effects such as frequency scaling of spectral envelope parameters are demonstrated. Recognition experiments using acoustic models trained from adult speech and tested against speech from children of various ages clearly show performance degradation with decreasing age. On average, the word error rates are two to five times worse for children speech than for adult speech. Various techniques for improving ASR performance on children's speech are reported. A speaker normalization algorithm that combines frequency warping and model transformation is shown to reduce acoustic variability and significantly improve ASR performance for children speakers (by 25-45% under various model training and testing conditions). The use of age-dependent acoustic models further reduces word error rate by 10%. The potential of using piece-wise linear and phoneme-dependent frequency warping algorithms for reducing the variability in the acoustic feature space of children is also investigated.
机译:语音产生的发展变化在儿童产生的语音信号中引入了与年龄有关的频谱和时间变化。这种可变性对于儿童语音的可靠自动识别提出了挑战。通过在自动语音识别(ASR)的背景下分析儿童语音中与年龄相关的声学特征,可以证明诸如频谱包络参数的频率缩放之类的效果。使用从成人语音训练并针对不同年龄儿童的语音进行测试的声学模型进行的识别实验清楚地表明,随着年龄的降低,性能会下降。平均而言,儿童语音的单词错误率比成人语音差2至5倍。据报道,用于改善儿童语音的ASR性能的各种技术。展示了一种将频率扭曲和模型变换相结合的扬声器归一化算法,可以减少声学变异性并显着提高儿童扬声器的ASR性能(在各种模型训练和测试条件下降低25%至45%)。使用与年龄相关的声学模型,可以进一步降低10%的单词错误率。还研究了使用分段线性和依赖音素的频率扭曲算法减少儿童声学特征空间中变异性的潜力。

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