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Real-world speech recognition with neural networks

机译:神经网络的真实语音识别

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Abstract: We describe a system based on neural networks that is designed to recognize speech transmitted through the telephone network. Context-dependent phonetic modeling is studied as a method of improving recognition accuracy, and a special training algorithm is introduced to make the training of these nets more manageable. Our system is designed for real-world applications, and we have therefore specialized our implementation for this goal; a pipelined DSP structure and a compact search algorithm are described as examples of this specialization. Preliminary results from a realistic test of the system (a field trial for the U.S. Census Bureau) are reported. !17
机译:摘要:我们描述了一种基于神经网络的系统,该系统旨在识别通过电话网络传输的语音。作为提高识别精度的一种方法,研究了上下文相关的语音建模,并引入了一种特殊的训练算法,以使这些网络的训练更易于管理。我们的系统是为实际应用而设计的,因此我们为此目的专门设计了实现方案。描述了流水线DSP结构和紧凑搜索算法作为该专业化的示例。报告了系统实际测试的初步结果(美国人口普查局的现场试验)。 !17

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