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Flexible Low Power Probability Density Estimation Unit For Speech Recognition

机译:灵活的低功率概率密度估计单元,用于语音识别

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This paper describes the hardware architecture for a flexible probability density estimation unit to be used in a large vocabulary speech recognition system, and targeted for mobile platforms. The speech recognition system is based on hidden Markov models and consists of two computationally intensive parts - the probability density estimation using Gaussian distributions, and the Viterbi decoding. The power hungry nature of these computations prevents porting the application successfully to mobile devices. We have designed a flexible probability estimation unit that is both power efficient and meets real time requirements while being flexible enough to handle emerging speech recognition techniques. The flexible nature of the design allows it to utilize emerging power and computation reduction techniques (at the algorithm level) to achieve up to an 80% power reduction as compared to conventional designs
机译:本文介绍了用于大型词汇语音识别系统的,针对移动平台的,灵活的概率密度估计单元的硬件架构。语音识别系统基于隐马尔可夫模型,由两个计算量大的部分组成-使用高斯分布的概率密度估计和维特比解码。这些计算的耗电特性阻止了将应用程序成功移植到移动设备。我们设计了一种灵活的概率估计单元,该单元既高效,又能满足实时要求,同时又足够灵活以处理新兴的语音识别技术。设计的灵活性使它能够利用新兴的功耗和计算减少技术(在算法级别),与传统设计相比,最多可减少80%的功耗

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