DocumentCode
1202780
Title
Interference Rejection for Parametric Channel Estimation in Reuse-1 Cellular OFDM Systems
Author
Raghavendra, M.R. ; Bhashyam, Srikrishna ; Giridhar, K.
Author_Institution
Motorola India Electron. Private Ltd., Bangalore, India
Volume
58
Issue
8
fYear
2009
Firstpage
4342
Lastpage
4352
Abstract
This paper proposes a joint channel-estimation method for the desired and interfering channels for cell edge users in reuse-1 orthogonal frequency-division multiplexing (OFDM) cellular systems. The following assumptions are made in proposing the algorithm: 1) the desired and interferer´s channel multipath delays do not overlap; 2) the same pilot sequence is sent from the desired and interfering base stations (BSs); and 3) reuse-3 preamble symbols, as in the preamble structure in IEEE 802.16d/e (Wimax) systems, are used to obtain initial channel estimates without interference. If we make these assumptions, then it is possible to estimate the desired and interfering channels, even with reuse-1 pilots. The proposed pilot-based channel estimation technique exploits the delay subspace structure to reduce the impact of cochannel interference (CCI) on channel estimation. Delay subspace refers to the set of basis vectors spanning the frequency response of the desired and interfering multipath channels. This enables us to jointly estimate and track the desired and interfering channels with a lower mean-squared error (MSE), when compared with the conventional modified least-squares (mLS) technique, which ignores the structure of interference. The significance of accurate channel estimates in symbol detection schemes is demonstrated for systems employing two or more receiver antennas. The proposed channel estimator significantly improves the performance of symbol-detection schemes based on either interference nulling combiner (INC) or minimum MSE diversity combiner (MMSE-DC), when compared with detection schemes using mLS-based channel estimates. Analytical expressions are derived for the MSE of the estimated multipath delays. Simulation results are also provided to show the improved performance for the proposed channel-estimation method compared with the mLS-based channel estimation method, when used in conjunction with INC and MMSE-DC detectors.
Keywords
OFDM modulation; WiMax; cellular radio; channel estimation; cochannel interference; interference suppression; mean square error methods; IEEE 802.16d/e system; Wimax systems; cochannel interference; delay subspace structure; interference nulling combiner; interference rejection; joint channel-estimation method; mean-squared error; minimum MSE diversity combiner; parametric channel estimation; pilot-based channel estimation; receiver antennas; reuse-1 cellular OFDM systems; reuse-1 pilots; reuse-3 preamble symbols; symbol detection schemes; Cellular orthogonal frequency-division multiplexing (OFDM); IEEE 802.16d/e; cochannel interference (CCI); estimation of signal parameters using rotational invariance method (ESPRIT); joint channel estimation; parametric channel estimation;
fLanguage
English
Journal_Title
Vehicular Technology, IEEE Transactions on
Publisher
ieee
ISSN
0018-9545
Type
jour
DOI
10.1109/TVT.2009.2018088
Filename
4804656
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