DocumentCode :
1682664
Title :
Analysis and Algorithm for Non-Pilot-Aided Channel Length Estimation in Wireless Communications
Author :
Wang, Xianbin ; Wu, Hsiao-Chun ; Chang, Shih Yu ; Wu, Yiyan ; Chouinard, Jean-Yves
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Western Ontario, London, ON
fYear :
2008
Firstpage :
1
Lastpage :
5
Abstract :
Channel estimation and equalization techniques are crucial for the ubiquitous wireless communication systems. Conventional receivers for most wireless standards preset the channel length to the maximal expected duration of the channel impulse response for the adopted channel estimation and equalization algorithms. The excessive channel length often significantly increases the implementational complexity of the wireless receivers and leads to the redundant information which would induce the additional estimation errors. Moreover, such a scheme does not allow the dynamic memory allocation for variable channel lengths. This could further increase the power consumption and reduce the battery life of a mobile device. The knowledge of the actual channel length would, in principle, help the system designers decrease the complexity of the channel estimators using maximum likelihood (ML) and minimum-mean-square-error (MMSE) algorithms. In this paper, we address this important channel length estimation problem and propose a novel algorithm to estimate the channel length without the need of pilots or training sequence. In addition, we provide the analysis on the effectiveness of the proposed non-pilot-aided channel length estimator through Monte Carlo simulations.
Keywords :
Monte Carlo methods; channel estimation; maximum likelihood estimation; mean square error methods; wireless channels; Monte Carlo simulations; channel equalization; channel impulse response; maximum likelihood algorithm; minimum-mean-square-error algorithm; non-pilot-aided channel length estimation; ubiquitous wireless communication systems; Algorithm design and analysis; Blind equalizers; Channel estimation; Estimation error; Higher order statistics; MIMO; Maximum likelihood estimation; Transceivers; Ubiquitous computing; Wireless communication;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Global Telecommunications Conference, 2008. IEEE GLOBECOM 2008. IEEE
Conference_Location :
New Orleans, LO
ISSN :
1930-529X
Print_ISBN :
978-1-4244-2324-8
Type :
conf
DOI :
10.1109/GLOCOM.2008.ECP.681
Filename :
4698456
Link To Document :
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