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Wireless Channel Identification Algorithm Based on Feature Extraction and BP Neural Network
Ist Teil von
JIPS(Journal of Information Processing Systems), 2017, 13(1), 43, pp.141-151
Ort / Verlag
한국정보처리학회
Erscheinungsjahr
2017
Quelle
EZB Free E-Journals
Beschreibungen/Notizen
Effective identification of wireless channel in different scenarios or regions can solve the problems of multipath interference in process of wireless communication. In this paper, different characteristics of wireless channel are extracted based on the arrival time and received signal strength, such as the number of multipath, time delay and delay spread, to establish the feature vector set of wireless channel which is used to train backpropagation (BP) neural network to identify different wireless channels. Experimental results show that the proposed algorithm can accurately identify different wireless channels, and the accuracy can reach 97.59%. KCI Citation Count: 1