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A Novel Uncertainty Decoding Rule With Applications to Transmission Error Robust Speech Recognition

机译:一种新的不确定性解码规则及其在传输错误鲁棒语音识别中的应用

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In this paper, we derive an uncertainty decoding rule for automatic speech recognition (ASR), which accounts for both corrupted observations and inter-frame correlation. The conditional independence assumption, prevalent in hidden Markov model-based ASR, is relaxed to obtain a clean speech posterior that is conditioned on the complete observed feature vector sequence. This is a more informative posterior than one conditioned only on the current observation. The novel decoding is used to obtain a transmission-error robust remote ASR system, where the speech capturing unit is connected to the decoder via an error-prone communication network. We show how the clean speech posterior can be computed for communication links being characterized by either bit errors or packet loss. Recognition results are presented for both distributed and network speech recognition, where in the latter case common voice-over-IP codecs are employed.
机译:在本文中,我们导出了用于自动语音识别(ASR)的不确定性解码规则,该规则考虑了损坏的观测值和帧间相关性。放宽在基于隐马尔可夫模型的ASR中普遍使用的条件独立性假设,以获取干净的语音后验,该后验以完整的观察到的特征向量序列为条件。这比仅以当前观察为条件的后验更为丰富。新颖的解码用于获得传输错误鲁棒的远程ASR系统,其中语音捕获单元通过容易出错的通信网络连接到解码器。我们展示了如何针对以位错误或数据包丢失为特征的通信链路计算干净的语音后验。给出了分布式语音识别和网络语音识别的识别结果,在后者的情况下,将使用通用的IP语音编解码器。

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