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Speech recognition on DSP: issues on computational efficiency and performance analysis

机译:DSP上的语音识别:有关计算效率和性能分析的问题

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This paper provides a thorough description of the implementation of automatic speech recognition (ASR) algorithms on a fixed-point digital signal processor (DSP). It is intended to serve as a useful self-contained reference for DSP engineers to follow when developing similar applications. The work is based on a detailed analysis of hidden Markov model (HMM) based ASR algorithms. The computationally critical steps are clearly identified, and for each of them, different ways of optimization for real-time computation are suggested and evaluated. The trade-off among computational efficiency, memory requirements and recognition performance is illustrated quantitatively via three example systems, one for the recognition of isolated Chinese words and the other two for the recognition of English and Chinese digit strings, respectively. The paper also discusses about other techniques that can be implemented to further improve the recognition performance in real-world applications.
机译:本文全面介绍了自动语音识别(ASR)算法在定点数字信号处理器(DSP)上的实现。它旨在为DSP工程师在开发类似应用程序时提供有用的独立参考。这项工作基于对基于隐马尔可夫模型(HMM)的ASR算法的详细分析。清楚地确定了计算上的关键步骤,并针对每个步骤建议并评估了用于实时计算的优化方法。通过三个示例系统定量说明了计算效率,内存需求和识别性能之间的权衡,一个系统分别用于识别孤立的中文单词,另外两个分别用于识别英文和中文数字字符串。本文还讨论了可以实施以进一步提高实际应用中的识别性能的其他技术。

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