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Spectro-temporal analysis of complex sounds in the human auditory system

机译:人类听觉系统中复杂声音的时间分析

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摘要

Most sounds encountered in our everyday life carry information in terms of temporal variations of their envelopes. These envelope variations, or amplitude modulations, shape the basic building blocks for speech, music, and other complex sounds. Often a mixture of such sounds occurs in natural acoustic scenes, with each of the sounds having its own characteristic pattern of amplitude modulations. Complex sounds, such as speech, share the same amplitude modulations across a wide range of frequencies. This "comodulation" is an important characteristic of these sounds since it can enhance their audibility when embedded in similar background interferers, a phenomenon referred to as comodulation masking release (CMR). Knowledge of the auditory processing of amplitude modulations provides therefore crucial information for a better understanding of how the auditory system analyses acoustic scenes. The purpose of the present thesis is to develop a computational auditory processing model that accounts for a large variety of experimental data on CMR, in order to obtain a more thorough understanding of the basic processing principles underlying the processing of across-frequency modulations. The second chapter introduces a processing stage, in which information from different peripheral frequency channels is combined. This so-called across-channel processing is assumed to take place at the output of a modulation filterbank, and is crucial in order to account for CMR conditions where the frequency spacing of comodulated components is relatively large. The third chapter investigates the role of nonlinear inner-ear (cochlear) processing on CMR. A compressive non-linearity is incorporated in the modeling framework suggested in the second chapter. This non-linearity is necessary to account for CMR in conditions which are sensitive to cochlear suppression. The fourth chapter examines the role of cognitive processing in different stimulus paradigms: CMR, binaural masking level differences and modulation detection interference are investigated in contexts of auditory grouping. It is shown that auditory grouping can influence the results in conditions where the processing in the auditory system is dominated by across-channel comparisons. Overall, this thesis provides insights into the specific mechanisms involved in the perception of comodulated sounds. The results are important as a basis for future models of complex modulation processing in the human auditory system.
机译:在我们的日常生活中,大多数声音都随包络线的时间变化传递信息。这些包络变化或幅度调制可形成语音,音乐和其他复杂声音的基本构建块。通常在自然的声学场景中会出现这种声音的混合,每种声音都有自己的振幅调制特征模式。诸如语音之类的复杂声音在很宽的频率范围内共享相同的振幅调制。这种“调制”是这些声音的重要特征,因为当嵌入类似的背景干扰物中时,它可以增强它们的可听性,这种现象称为共调制掩蔽释放(CMR)。因此,对振幅调制的听觉处理的知识为更好地了解听觉系统如何分析声学场景提供了关键信息。本发明的目的是开发一种计算听觉处理模型,该模型考虑了CMR上的大量实验数据,以便更全面地了解跨频调制处理的基本处理原理。第二章介绍了一个处理阶段,其中组合了来自不同外围频率信道的信息。假定这种所谓的跨通道处理发生在调制滤波器组的输出处,并且对于考虑共调制分量的频率间隔相对较大的CMR条件至关重要。第三章研究了非线性内耳(耳蜗)处理在CMR中的作用。第二章建议的建模框架中包含了压缩非线性。这种非线性对于在对耳蜗抑制敏感的条件下解决CMR是必要的。第四章探讨了认知加工在不同刺激范例中的作用:在听觉分组的背景下研究了CMR,双耳掩蔽水平差异和调制检测干扰。结果表明,在跨通道比较主导听觉系统处理的情况下,听觉分组会影响结果。总体而言,本论文提供了对共调制声音感知中涉及的特定机制的见解。结果对于将来在人类听觉系统中进行复杂调制处理的模型非常重要。

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