Detection for channels with transition noise

Transition noise is known to be a major cause of errors for high density magnetic recording. This noise is signal dependent and can be modeled as multiplicative noise in a linear channel model. The maximum-likelihood method was not considered for detection of signals in such noise in the past. In th...

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Veröffentlicht in:IEEE transactions on magnetics 1998-05, Vol.34 (3), p.750-753
Hauptverfasser: Chen, M., Trachtenberg, E.A.
Format: Artikel
Sprache:eng
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Zusammenfassung:Transition noise is known to be a major cause of errors for high density magnetic recording. This noise is signal dependent and can be modeled as multiplicative noise in a linear channel model. The maximum-likelihood method was not considered for detection of signals in such noise in the past. In this study, a detector model for an asymptotic maximum-likelihood (AML) detection is developed for systems with such noise. Based on a linear partial response channel model, a recursive procedure is obtained as a tree search algorithm, leading to the maximum likelihood detection asymptotically, as the tree-search depth is increased. Performance estimation will be discussed in a separate paper.
ISSN:0018-9464
1941-0069
DOI:10.1109/20.668081