Classification Fusion in Wireless Sensor Networks

被引:2
作者
LIU ChunTing HUO Hong FANG Tao LI DeRen SHEN Xiao Institute of Image Processing Pattern Recognition Shanghai Jiaotong University Shanghai State Key Laboratory of Information Engineering in Surveying Mapping and Remote Sensing Wuhan University Wuhan [200240 ,430079 ]
机构
关键词
Wireless sensor networks; classification fusion; wavelet decomposition; weighted k-nearest-neighbor; Dempster-Shafer theory;
D O I
10.16383/j.aas.2006.06.015
中图分类号
TN929.5 [移动通信]; TP212.9 [传感器的应用];
学科分类号
080402 ; 080904 ; 0810 ; 081001 ; 080202 ;
摘要
<正>In wireless sensor networks, target classification differs from that in centralized sensing systems because of the distributed detection, wireless communication and limited resources. We study the classification problem of moving vehicles in wireless sensor networks using acoustic signals emitted from vehicles. Three algorithms including wavelet decomposition, weighted k-nearest-neighbor and Dempster-Shafer theory are combined in this paper. Finally, we use real world experimental data to validate the classification methods. The result shows that wavelet based feature extraction method can extract stable features from acoustic signals. By fusion with Dempster's rule, the classification performance is improved.
引用
收藏
页码:947 / 955
页数:9
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