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Segregating Complex Sound Sources through Temporal Coherence

机译:通过时间相干性分离复杂的声源

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摘要

A new approach for the segregation of monaural sound mixtures is presented based on the principle of temporal coherence and using auditory cortical representations. Temporal coherence is the notion that perceived sources emit coherently modulated features that evoke highly-coincident neural response patterns. By clustering the feature channels with coincident responses and reconstructing their input, one may segregate the underlying source from the simultaneously interfering signals that are uncorrelated with it. The proposed algorithm requires no prior information or training on the sources. It can, however, gracefully incorporate cognitive functions and influences such as memories of a target source or attention to a specific set of its attributes so as to segregate it from its background. Aside from its unusual structure and computational innovations, the proposed model provides testable hypotheses of the physiological mechanisms of this ubiquitous and remarkable perceptual ability, and of its psychophysical manifestations in navigating complex sensory environments.
机译:基于时间连贯性原理并使用听觉皮层表示,提出了一种用于分离单声道声音混合物的新方法。时间一致性是指感知到的源发出相干调制的特征,这些特征会引起高度一致的神经反应模式。通过将特征信道与一致的响应进行聚类并重构其输入,可以将基础源与与此不相关的同时干扰信号隔离开。所提出的算法不需要源上的任何先验信息或培训。但是,它可以优雅地结合认知功能和影响,例如目标源的记忆或对目标属性的特定集合的关注,以将其与背景分离。除了其不寻常的结构和计算创新外,该模型还提供了可验证的假设,证明了这种无处不在的卓越感知能力的生理机制,以及在复杂的感官环境中的心理生理表现。

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