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一种基于神经网络和证据理论的信息融合算法
引用本文:张池平,张英俊,苏小红,马培军.一种基于神经网络和证据理论的信息融合算法[J].计算机工程与应用,2006,42(1):174-176,179.
作者姓名:张池平  张英俊  苏小红  马培军
作者单位:1. 哈尔滨工业大学数学系,哈尔滨,150001
2. 哈尔滨工业大学计算机学院,哈尔滨,150001
摘    要:针对目前多传感器系统中常用的信息融合方法,识别率较低、网络稳定性不好、不能很好地处理不确定性等问题,提出一种基于神经网络和DS方法的信息融合算法。该方法兼顾神经网络和DS推理二者的优势,有效地解决了目前信息融合方法对大噪声不确定性传感器测量信息的误识别问题。仿真实验结果验证了该算法在提高目标识别率和抗噪能力方面的有效性。

关 键 词:神经网络  DS证据理论  信息融合  多传感器
文章编号:1002-8331-(2006)01-0174-03

An Algorithm of Data Fusion Based on Neural Networks with DS Evidential Theory
Zhang Chiping,Zhang Yingjun,Su Xiaohong,Ma Peijun.An Algorithm of Data Fusion Based on Neural Networks with DS Evidential Theory[J].Computer Engineering and Applications,2006,42(1):174-176,179.
Authors:Zhang Chiping  Zhang Yingjun  Su Xiaohong  Ma Peijun
Affiliation:1. Department of Mathematics,Harbin Institute of Technology,Harbin 150001; 2. School of Computer Sciences,Harbin Institute of Technology,Harbin 150001
Abstract:A new algorithm of data fusion based on neural networks with DS evidential theory is presented to these questions of low accurate identification,bad stabilization and solution of uncertainty in some ways of multi-sensor system at present.This method has the advantage of both neural and DS evidential theory and solves the problem that the general ways of data fusion can not identify the multi-sensor's uncertainty information of great noise at present.The simulation shows that the way can effectively the rate of the targets' identification and great antinoise capacity.
Keywords:neural networks  DS evidential theory  data fusion  multi-sensor
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