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Speech Recognition Based on the Processing Solutions of Auditory Cortex

机译:基于听觉皮层处理解决方案的语音识别

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Speech recognition in the human brain depends on spectral analysis coupled with temporal integration of auditory information. In primates, these processes are mirrored as selective responsiveness of neurons to species-specific vocalizations. Here, we used computational modeling of cortical neural networks to investigate how they achieve selectivity to speech stimuli. Stimulus material comprised multiple pseudowords. We found that synaptic depression was crucial for the emergence of neurons sensitive to the temporal structure of the stimuli. Further, the subdivision of the network into several parallel processing streams was needed for stimulus selectivity to occur. In general, stimulus selectivity and temporal integration seems to be supported by networks with high values of small-world connectivity. The current results might serve as a preliminary pointer for developing speech recognition solutions based on the neuroanatomy and -physiology of auditory cortex.
机译:人脑中的语音识别取决于频谱分析以及听觉信息的时间整合。在灵长类动物中,这些过程反映为神经元对物种特异性发声的选择性响应。在这里,我们使用了皮质神经网络的计算模型来研究它们如何实现对语音刺激的选择性。刺激材料包括多个伪词。我们发现,突触抑制对于对刺激的时间结构敏感的神经元的出现至关重要。此外,需要将网络细分为几个并行处理流,以实现刺激选择性。一般而言,刺激性选择性和时间整合似乎受到具有小世界连接性高价值的网络的支持。目前的结果可能作为开发基于听觉皮层的神经解剖学和生理学的语音识别解决方案的初步指标。

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