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Blind equalization of IIR channels using hidden Markov models and extended least squares
1995 (English)In: IEEE Transactions on Signal Processing, ISSN 1053-587X, E-ISSN 1941-0476, Vol. 43, no 12, 2994-3006 p.Article in journal (Refereed) Published
Abstract [en]

In this paper, we present a blind equalization algorithm for noisy IIR channels when the channel input is a finite state Markov chain. The algorithm yields estimates of the IIR channel coefficients, channel noise variance, transition probabilities, and state of the Markov chain. Unlike the optimal maximum likelihood estimator which is computationally infeasible since the computing cost increases exponentially with data length, our algorithm is computationally inexpensive. Our algorithm is based on combining a recursive hidden Markov model (HMM) estimator with a relaxed SPR (strictly positive real) extended least squares (ELS) scheme. In simulation studies we show that the algorithm yields satisfactory estimates even in low SNR. We also compare the performance of our scheme with a truncated FIR scheme and the constant modulus algorithm (CMA) which is currently a popular algorithm in blind equalization.

Place, publisher, year, edition, pages
1995. Vol. 43, no 12, 2994-3006 p.
National Category
Signal Processing
Research subject
Signal Processing
Identifiers
URN: urn:nbn:se:ltu:diva-4565DOI: 10.1109/78.476443Local ID: 287c36d0-a018-11db-8975-000ea68e967bOAI: oai:DiVA.org:ltu-4565DiVA: diva2:977439
Note
Uppr├Ąttat; 1995; 20070109 (ysko)Available from: 2016-09-29 Created: 2016-09-29 Last updated: 2017-11-24Bibliographically approved

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Leblanc, James

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