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Efficient auditory coding.

机译:高效的听觉编码。

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Efficient coding theory posits that sensory systems are under strong evolutionary and developmental pressures to utilize highly efficient codes (Barlow, 1961; Atick, 1992; Simoncelli and Olshausen, 2001; Laughlin and Sejnowski, 2003). Using information theory, the basis of modern telecommunications, we have found that mammalian hearing follows this efficient coding principle. Neurons in the inner ear and the "spikes" with which they communicate form an efficient code for natural sounds in the environment (Smith and Lewicki, 2004a, 2005a, 2006). This shows for the first time that the theoretical principle of efficient coding can account for the detailed form of the auditory code, a significant milestone in developing a theoretical understanding of sensory coding. Additionally, the results of applying the same technique to speech coding suggest that the acoustics of speech are optimally adapted to this mammalian auditory code (Smith and Lewicki, 2004b, 2005b). Beyond these scientific issues, we show that a "spike"-like code may also lead to improvements to applications such as digital audio compression and telecommunications.; In addition to our theoretical research, we sought to demonstrate efficient coding in human perception behaviorally. In a pair of experiments, we applied efficient coding theory to the problem of speech perception in individuals using cochlear implants (CI), for which there exist vast individual differences in spectral resolution and speech perception (Zeng et al., 2004b). We present a machine-learning method for CI filterbank design based on the efficient-coding hypothesis. Further, we describe a pair of experiments which evaluate this approach using noise-excited vocoder speech (Shannon et al., 1995). Participants' recognition of continuous speech and isolated syllables is significantly more accurate for speech filtered through the theoretically-motivated efficient-coding filterbank relative to the standard cochleotopic filterbank, particularly for speech transients. These findings offer insight in CI design and provide behavioral evidence for efficient coding in human perception.
机译:高效的编码理论认为,感觉系统在使用高效编码的强大进化和发展压力下(Barlow,1961; Atick,1992; Simoncelli和Olshausen,2001; Laughlin和Sejnowski,2003)。使用信息论作为现代电信的基础,我们发现哺乳动物的听力遵循这种有效的编码原理。内耳中的神经元和与之交流的“尖峰”形成了环境中自然声音的有效编码(Smith和Lewicki,2004a,2005a,2006)。这首次表明,有效编码的理论原理可以解释听觉编码的详细形式,这是发展对感官编码的理论理解的重要里程碑。此外,将相同技术应用于语音编码的结果表明,语音的声学特性已最佳地适应了这种哺乳动物的听觉编码(Smith和Lewicki,2004b,2005b)。除了这些科学问题之外,我们还表明类似“尖峰”的代码也可能会导致对数字音频压缩和电信等应用程序的改进。除了我们的理论研究之外,我们还试图证明人类行为感知中的有效编码。在一对实验中,我们将有效的编码理论应用于使用人工耳蜗(CI)的个人的语音感知问题,为此,他们在频谱分辨率和语音感知方面存在巨大的个体差异(Zeng等,2004b)。我们提出了一种基于有效编码假设的CI滤波器组设计的机器学习方法。此外,我们描述了一对使用噪声激励声码器语音对这种方法进行评估的实验(Shannon等,1995)。相对于标准的耳蜗主题滤波器组,参与者对连续语音和孤立音节的识别对于通过理论动机的有效编码滤波器组滤波的语音,尤其是对于语音瞬变而言,要更为准确。这些发现为CI设计提供了见识,并为人类感知中的有效编码提供了行为证据。

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