基于模糊峰值神经网络和演化策略的信息结构化空间中人的交通方式估计

Dalai Tang, János Botzheim, N. Kubota, Toru Yamaguchi
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引用次数: 10

摘要

本文分析了基于智能手机传感器的模糊峰值神经网络在信息结构化空间中对人的交通方式估计的性能。考虑了信息结构化的重要性。在我们之前的工作中,我们应用了尖峰神经网络来提取配备了传感器网络设备的房间中的人体位置。本文将模糊峰值神经网络应用于智能手机传感器下的户外人类活动提取。我们讨论了如何通过预处理来更新基值,以生成尖峰神经元的输入值。说明了基于测量数据时间序列的脉冲神经网络的学习方法。采用进化策略对模糊脉冲神经网络的参数进行优化。实验结果验证了该方法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Estimation of human transport modes by fuzzy spiking neural network and evolution strategy in informationally structured space
This paper analyzes the performance of human transport mode estimation by fuzzy spiking neural network in informationally structured space based on smart phone sensor. The importance of information structuralization is considered. In our previous work we applied spiking neural network to extract the human position in a room equipped with sensor network devices. In this paper fuzzy spiking neural network is applied to extract the human activity outdoors when equipped with smart phone sensor. We discuss how to update the base value by preprocessing for generating the input values to the spiking neurons. The learning method of the spiking neural network based on the time series of the measured data is explained as well. Evolution strategy is used for optimizing the parameters of the fuzzy spiking neural network. Several experimental results are presented for confirming the effectiveness of the proposed method.
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