通过神经网络学习双耳声音定位

F. Palmieri, M. Datum, A. Shah, A. Moiseff
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引用次数: 10

摘要

神经网络系统使用双耳时间/强度线索来确定声源的方位/高度。该系统旨在近似模拟猫头鹰的声音定位行为。该网络以监督学习模式进行训练。利用神经网络估计的位置与理想光学传感器的实际位置之间的误差自适应地确定突触连接。使用的学习范例是多重扩展卡尔曼算法,它允许不需要参数调整的训练
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Learning binaural sound localization through a neural network
A neural network system is implemented that uses binaural time/intensity cues for determining azimuth/elevation of a sound source. The system is designed to approximately mimic the sound localization behavior of the owl. The network is trained in a supervised learning mode. The errors between the estimated position (from the neural net) and the actual position (from an ideal optical sensor) are used to determine adaptively the synaptic connections. The learning paradigm used is the multiple extended Kalman algorithm, which allows training with no parameter adjustments.<>
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