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A biologically motivated neural network for phase extraction from complex sounds

机译:从复杂声音中提取相位的生物动力神经网络

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摘要

We demonstrate that natural acoustic signals like speech or music contain synchronous phase information across multiple frequency bands and show how to extract this information using a spiking neural network. This network model is motivated by common neurophysiological findings in the auditory brainstem and midbrain of several species. A computer simulation of the model was tested by applying spoken vowels and organ pipe tones. As expected, spikes occurred synchronously in the activated frequency bands. This phase information may be used for sound separation with one microphone or sound localization with two microphones. [References: 21]
机译:我们证明了诸如语音或音乐之类的自然声学信号包含跨多个频带的同步相位信息,并展示了如何使用尖峰神经网络来提取此信息。该网络模型是由几种物种的听觉脑干和中脑的常见神经生理学发现所激发的。通过使用语音元音和风琴管音调测试了该模型的计算机模拟。如预期的那样,在激活的频带中同步出现尖峰。此相位信息可用于一个麦克风的声音分离或两个麦克风的声音定位。 [参考:21]

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