DocumentCode :
2014245
Title :
Self-adaptive maximum-likelihood sequence estimation
Author :
Paris, Bernd Peter
Author_Institution :
Dept. of Electr. & Comput. Eng., George Mason Univ., Fairfax, VA, USA
fYear :
1993
fDate :
29 Nov-2 Dec 1993
Firstpage :
92
Abstract :
The problem of estimating the most likely state sequence of a discrete-time finite-state Markov process with unknown parameters observed in independent noise arises in many important problems in digital communications, including self-adaptive equalization and adaptive multi-user detection. A maximum likelihood criterion over both the input sequence and the parameters is introduced for estimating the state sequence without using an embedded training sequence. Asymptotically, this estimator is close to the maximum-likelihood sequence estimator with completely known parameters. To facilitate the search for the most likely state sequence, we introduce computationally simple algorithms which are guaranteed to converge. Performance of the self-adaptive maximum-likelihood sequence estimator for the blind equalization problem is illustrated through numerical examples
Keywords :
Markov processes; equalisers; estimation theory; iterative methods; maximum likelihood estimation; signal detection; signal processing; adaptive multi-user detection; algorithms; blind equalization; digital communications; discrete-time finite-state Markov process; input sequence; maximum-likelihood sequence estimation; self-adaptive equalization; self-adaptive sequence estimation; state sequence; Adaptive equalizers; Blind equalizers; Digital communication; Intersymbol interference; Markov processes; Maximum likelihood detection; Maximum likelihood estimation; Multiuser detection; Signal processing; State estimation;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Global Telecommunications Conference, 1993, including a Communications Theory Mini-Conference. Technical Program Conference Record, IEEE in Houston. GLOBECOM '93., IEEE
Conference_Location :
Houston, TX
Print_ISBN :
0-7803-0917-0
Type :
conf
DOI :
10.1109/GLOCOM.1993.318435
Filename :
318435
Link To Document :
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