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Decision Fusion for Isolated Malay Digit Recognition Using Dynamic Time Warping (DTW) and Hidden Markov Model (HMM)

机译:使用动态时间翘曲(DTW)和隐马尔可夫模型(HMM)的隔离马来数字识别的决策融合

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This paper is focused on Malay speech recognition with the intention to introduce a decision fusion technique for isolated Malay digit recognition using Dynamic Time Warping (DTW) and Hidden Markov Model (HMM). This study proposes an algorithm for decision fusion of the recognition models. The endpoint detection, framing, normalization, Mel Frequency Cepstral Coefficient (MFCC) and vector quantization techniques are used to process speech samples to accomplish the recognition. Decision fusion technique is then used to combine the results of DTW and HMM. The algorithm is tested on speech samples that is a part of a Malay corpus.
机译:本文专注于马来语音识别,打算使用动态时间翘曲(DTW)和隐马尔可夫模型(HMM)来引入用于隔离马来的数字识别的决策融合技术。本研究提出了一种识别模型决策融合的算法。端点检测,框架,归一化,MEL频率谱系数(MFCC)和矢量量化技术用于处理语音样本以实现识别。然后使用决策融合技术来结合DTW和HMM的结果。该算法在作为马来语料库的一部分的语音样本上进行测试。

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