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人类声音定位的神经系统识别模型

Neural system identification model of human sound localization.

作者信息

Jin C, Schenkel M, Carlile S

机构信息

Department of Physiology, and Computer and Engineering Laboratory, The University of Sydney, New South Wales, Australia.

出版信息

J Acoust Soc Am. 2000 Sep;108(3 Pt 1):1215-35. doi: 10.1121/1.1288411.

Abstract

This paper examines the role of biological constraints in the human auditory localization process. A psychophysical and neural system modeling approach was undertaken in which performance comparisons between competing models and a human subject explore the relevant biologically plausible "realism constraints." The directional acoustical cues, upon which sound localization is based, were derived from the human subject's head-related transfer functions (HRTFs). Sound stimuli were generated by convolving bandpass noise with the HRTFs and were presented to both the subject and the model. The input stimuli to the model were processed using the Auditory Image Model of cochlear processing. The cochlear data were then analyzed by a time-delay neural network which integrated temporal and spectral information to determine the spatial location of the sound source. The combined cochlear model and neural network provided a system model of the sound localization process. Aspects of humanlike localization performance were qualitatively achieved for broadband and bandpass stimuli when the model architecture incorporated frequency division (i.e., the progressive integration of information across the different frequency channels) and was trained using variable bandwidth and center-frequency sounds. Results indicate that both issues are relevant to human sound localization performance.

摘要

本文研究了生物限制因素在人类听觉定位过程中的作用。采用了一种心理物理学和神经系统建模方法,通过比较竞争模型与人类受试者的表现,探索相关的具有生物学合理性的“现实限制”。声音定位所基于的方向性声学线索源自人类受试者的头部相关传递函数(HRTF)。通过将带通噪声与HRTF进行卷积生成声音刺激,并将其呈现给受试者和模型。模型的输入刺激使用耳蜗处理的听觉图像模型进行处理。然后,通过一个整合时间和频谱信息以确定声源空间位置的时延神经网络对耳蜗数据进行分析。耳蜗模型和神经网络相结合提供了声音定位过程的系统模型。当模型架构纳入频率划分(即跨不同频率通道逐步整合信息)并使用可变带宽和中心频率声音进行训练时,对于宽带和带通刺激在定性上实现了类人定位性能。结果表明,这两个问题都与人类声音定位性能相关。

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