DocumentCode :
3037455
Title :
Modeling the colored background noise of power line communication channel based on artificial neural network
Author :
Ma, Yong-tao ; Liu, Kai-hua ; Zhang, Zhi-jun ; Yu, Jie-Xiao ; Gong, Xiao-Lin
Author_Institution :
Sch. of Electron. Inf. Eng., Tianjin Univ., Tianjin, China
fYear :
2010
fDate :
14-15 May 2010
Firstpage :
1
Lastpage :
4
Abstract :
Power-line network is not specifically designed for high frequency signal transmission. Some tests and documents verify that power-line channel takes on many adverse characteristics that are not conducive to high frequency signal transmission, and noise characteristics are important parameters to describe the nature of power-line communication channel interference. The paper studied noise classification of the power-line communication channel, and specially analyzed the colored background noise characteristic and its mathematical model. Based on artificial neural network, optimization model is studied for the colored background noise of power-line communication channel. The paper educed the neural network algorithm used for modeling colored background noise. Through simulation, amplitude-frequency response curve is derived for neural network filter. And also time domain waveform and power spectrum density of colored noise are achieved from the neural model. The results indicate that artificial neural network modeling method is effective for modeling the colored background noise of power-line communication channel. It is helpful to construct the basis for simulation actual power-line channel.
Keywords :
carrier transmission on power lines; cochannel interference; filtering theory; neural nets; optimisation; telecommunication channels; telecommunication computing; time-domain analysis; waveform analysis; amplitude-frequency response curve; artificial neural network; colored background noise characteristic; high frequency signal transmission; neural network algorithm; neural network filter; noise characteristics; noise classification; optimization model; power line communication channel; power spectrum density; power-line communication channel interference; power-line network; time domain waveform; Artificial neural networks; Background noise; Colored noise; Communication channels; Frequency; Interference; Mathematical model; Power line communications; Signal design; Testing; artificial neural network; channel modeling; colored background noise; power-line communication;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Wireless and Optical Communications Conference (WOCC), 2010 19th Annual
Conference_Location :
Shanghai
Print_ISBN :
978-1-4244-7597-1
Type :
conf
DOI :
10.1109/WOCC.2010.5510658
Filename :
5510658
Link To Document :
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