DocumentCode :
1778949
Title :
Adaptive Autoregressive Prediction Method for Deep-Space Channel Using Kalman Filter
Author :
Guo-Qing Niu ; Yi Yan ; Yong-Cheng Li ; Xiu-Juan Yao ; Chunmei Wang ; Xiang Gao
Author_Institution :
State Key Lab. of Complex Electromagn. Environ. Effects on Electr. & Inf. Syst., Luoyang, China
fYear :
2014
fDate :
18-20 Sept. 2014
Firstpage :
533
Lastpage :
538
Abstract :
Aiming at improving the signal strength fluctuation phenomena in the deep-space channel affected by solar scintillation during superior conjunction period, a Kalman based adaptive Autoregressive (AR) prediction method for deep-space channel is proposed to predict the channel fading envelope. First, a Rician fading deep-space channel model is established, then the computational methods to channel parameters are dramatically simplified, which are solar scintillation index and Doppler bandwidth respectively, and finally Kalman recursion equations and linear interpolation are applied to modify the prediction results from AR algorithm, realizing the long-term adaptive prediction of the deep-space channel envelope at Ka-band and X-band. Simulation results show that: Compared to the traditional AR algorithm, the proposed method possesses better adaptive characteristics and stronger resistance to multipath fading capability, in the case of weak solar scintillation, the proposed method requires lower order, shorter training data window length, in the case of strong solar scintillation, the mean square error (MSE) of the prediction results can also be reduced by approximately one order.
Keywords :
Kalman filters; Rician channels; autoregressive processes; interpolation; mean square error methods; space communication links; AR algorithm; Doppler bandwidth; Ka-band; Kalman based adaptive autoregressive prediction method; Kalman filter; Kalman recursion equations; MSE; Rician fading deep-space channel model; X-band; adaptive autoregressive prediction method; channel fading envelope; linear interpolation; mean square error; multipath fading capability; signal strength fluctuation phenomena; solar scintillation; solar scintillation index; superior conjunction period; Bandwidth; Channel estimation; Fading; Kalman filters; Prediction algorithms; Predictive models; AR model; Kalman filter; deep-space channel; solar scintillation;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Instrumentation and Measurement, Computer, Communication and Control (IMCCC), 2014 Fourth International Conference on
Conference_Location :
Harbin
Print_ISBN :
978-1-4799-6574-8
Type :
conf
DOI :
10.1109/IMCCC.2014.115
Filename :
6995085
Link To Document :
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