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Neural basis and computational strategies for auditory processing.

机译:听觉处理的神经基础和计算策略。

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Our senses are our window to the world, and hearing is the window through which we perceive the world of sound. While seemingly effortless, the process of hearing involves complex transformations by which the auditory system consolidates acoustic information from the environment into perceptual and cognitive experiences. Studies of auditory processing try to elucidate the mechanisms underlying the function of the auditory system, and infer computational strategies that are valuable both clinically and intellectually, hence contributing to our understanding of the function of the brain.; In this thesis, we adopt both an experimental and computational approach in tackling various aspects of auditory processing. We first investigate the neural basis underlying the function of the auditory cortex, and explore the dynamics and computational mechanisms of cortical processing. Our findings offer physiological evidence for a role of primary cortical neurons in the integration of sound features at different time constants, and possibly in the formation of auditory objects.; Based on physiological principles of sound processing; we explore computational implementations in tackling specific perceptual questions. We exploit our knowledge of the neural mechanisms of cortical auditory processing to formulate models addressing the problems of speech intelligibility and auditory scene analysis. The intelligibility model focuses on a computational approach for evaluating loss of intelligibility, inspired from mammalian physiology and human perception. It is based on a multi-resolution filterbank implementation of cortical response patterns, which extends into a robust metric for assessing loss of intelligibility in communication channels and speech recordings.; This same cortical representation is extended further to develop a computational scheme for auditory scene analysis. The model maps perceptual principles of auditory grouping and stream formation into a computational system that combines aspects of bottom-up, primitive sound processing with an internal representation of the world. It is based on a framework of unsupervised adaptive learning with Kalman estimation. The model is extremely valuable in exploring various aspects of sound organization in the brain, allowing us to gain interesting insight into the neural basis of auditory scene analysis, as well as practical implementations for sound separation in "cocktail-party" situations.
机译:我们的感官是通往世界的窗口,而听觉是我们感知声音世界的窗口。尽管听上去很轻松,但是听觉过程涉及到复杂的转换,通过这些转换,听觉系统将来自环境的声音信息整合为感知和认知体验。听觉加工的研究试图阐明听觉系统功能的基础机制,并推断出在临床和智力上都有价值的计算策略,从而有助于我们对大脑功能的理解。在本文中,我们采用了实验和计算方法来处理听觉处理的各个方面。我们首先研究听觉皮层功能的神经基础,并探讨皮层加工的动力学和计算机制。我们的发现为初级皮层神经元在不同时间常数整合声音特征以及可能在听觉物体形成中的作用提供了生理学证据。基于声音处理的生理原理;我们探索解决特定感知问题的计算实现。我们利用我们对皮层听觉处理的神经机制的知识来制定模型,以解决语音清晰度和听觉场景分析的问题。可懂度模型的重点是受哺乳动物生理学和人类感知启发的评估可懂度丧失的计算方法。它基于皮质响应模式的多分辨率滤波器组实现,该实现扩展为用于评估通信通道和语音记录中的清晰度损失的可靠指标。进一步扩展了相同的皮质表示,以开发用于听觉场景分析的计算方案。该模型将听觉分组和流形成的感知原理映射到一个计算系统中,该系统将自下而上,原始声音处理的各个方面与世界的内部表示相结合。它基于带有卡尔曼估计的无监督自适应学习框架。该模型在探索大脑中声音组织的各个方面非常有价值,使我们能够获得对听觉场景分析的神经基础的有趣见解,以及“鸡尾酒会”情况下声音分离的实际实现。

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