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Mandarin Chinese Tone Identification in Cochlear Implants: Predictions from Acoustic Models

机译:人工耳蜗中普通话语气识别:声学模型的预测。

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摘要

It has been established that current cochlear implants do not supply adequate spectral information for perception of tonal languages. Comprehension of a tonal language, such as Mandarin Chinese, requires recognition of lexical tones. New strategies of cochlear stimulation such as variable stimulation rate and current steering may provide the means of delivering more spectral information and thus may provide the auditory fine structure required for tone recognition. Several cochlear implant signal processing strategies are examined in this study, the continuous interleaved sampling (CIS) algorithm, the frequency amplitude modulation encoding (FAME) algorithm, and the multiple carrier frequency algorithm (MCFA). These strategies provide different types and amounts of spectral information. Pattern recognition techniques can be applied to data from Mandarin Chinese tone recognition tasks using acoustic models as a means of testing the abilities of these algorithms to transmit the changes in fundamental frequency indicative of the four lexical tones. The ability of processed Mandarin Chinese tones to be correctly classified may predict trends in the effectiveness of different signal processing algorithms in cochlear implants. The proposed techniques can predict trends in performance of the signal processing techniques in quiet conditions but fail to do so in noise.
机译:已经确定,当前的人工耳蜗不能提供足够的频谱信息来感知音调语言。理解诸如汉语普通话之类的声调语言需要识别词汇声调。耳蜗刺激的新策略,例如可变的刺激速率和电流控制,可以提供传递更多频谱信息的方式,从而可以提供音调识别所需的听觉精细结构。在这项研究中,研究了几种耳蜗植入信号处理策略,连续交错采样(CIS)算法,频率幅度调制编码(FAME)算法和多载波频率算法(MCFA)。这些策略提供了不同类型和数量的光谱信息。模式识别技术可以应用到使用声学模型的普通话音调识别任务的数据中,作为测试这些算法传递指示四个词汇音调的基频变化的能力的一种手段。正确分类已处理普通话音调的能力可能会预测人工耳蜗中不同信号处理算法有效性的趋势。所提出的技术可以预测在安静条件下信号处理技术的性能趋势,但是在噪声下则无法预测。

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