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Sparse Codes for Speech Predict Spectrotemporal Receptive Fields in the Inferior Colliculus

机译:语音的稀疏代码预测下眼囊的光谱时域接受场

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摘要

We have developed a sparse mathematical representation of speech that minimizes the number of active model neurons needed to represent typical speech sounds. The model learns several well-known acoustic features of speech such as harmonic stacks, formants, onsets and terminations, but we also find more exotic structures in the spectrogram representation of sound such as localized checkerboard patterns and frequency-modulated excitatory subregions flanked by suppressive sidebands. Moreover, several of these novel features resemble neuronal receptive fields reported in the Inferior Colliculus (IC), as well as auditory thalamus and cortex, and our model neurons exhibit the same tradeoff in spectrotemporal resolution as has been observed in IC. To our knowledge, this is the first demonstration that receptive fields of neurons in the ascending mammalian auditory pathway beyond the auditory nerve can be predicted based on coding principles and the statistical properties of recorded sounds.
机译:我们已经开发出一种稀疏的语音数学表示法,可以最大程度地减少代表典型语音所需的活动模型神经元的数量。该模型学习了几种众所周知的语音声学特征,例如谐波叠加,共振峰,起音和终止,但我们还在声音的频谱图表示中发现了更多奇特的结构,例如局部棋盘格图案和频率抑制的兴奋性子区域,两侧是抑制性边带。 。此外,这些新颖的特征中的一些类似于在下腔囊(IC),听觉丘脑和皮层中报告的神经元接受区域,并且我们的模型神经元在光谱时分辨率上表现出与在IC中观察到的相同的权衡。据我们所知,这是第一个证明,可以根据编码原理和所记录声音的统计特性,预测超出听觉神经的上升哺乳动物听觉通路中神经元的感受野。

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