DocumentCode :
1478012
Title :
Adaptation of an all-pass equalizer for decision feedback equalization
Author :
Wiedmann, Ralf ; Kennei, J.G. ; Kolodziej, Wojtek J.
Author_Institution :
Siemens AG, Munich, Germany
Volume :
35
Issue :
2
fYear :
1999
fDate :
3/1/1999 12:00:00 AM
Firstpage :
1083
Lastpage :
1090
Abstract :
Recording channels using decision feedback equalization require a minimum phase response and white noise at the detector to achieve maximum signal-to-noise ratio. A low order all-pass filter can equalize the feedforward path so that it approximately achieves a minimum phase response. In this paper, we describe an adaptive algorithm for iteratively determining the optimal transfer function of the all-pass filter. Adaptation is based on estimating the gradient of the mean-square error with respect to the poles of the filter. This estimate is then used to update the positions of the poles. One simplifying feature of this technique is that these gradients are determined by applying the output of the all-pass to low-order finite impulse response (FIR) filters. We do not require values from the internal states of the filter. The proposed adaptation algorithm is characterized for first- and second-order all-pass filters over a range of storage densities. The optimality of the resulting equalizer is evaluated as a function of the order of the FLR filters used in estimating the gradients
Keywords :
adaptive equalisers; adaptive filters; all-pass filters; decision feedback equalisers; feedforward; gradient methods; magnetic recording; mean square error methods; poles and zeros; transfer functions; adaptive algorithm; all-pass filter; decision feedback equalization; feedforward filter; gradient function; low-order FIR filter; magnetic recording channel; mean square error; phase response; poles; signal detector; signal-to-noise ratio; storage density; transfer function; white noise; Decision feedback equalizers; Detectors; Finite impulse response filter; IIR filters; Intersymbol interference; Magnetic recording; Magnetic separation; Maximum likelihood detection; Phase detection; Transfer functions;
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/20.748857
Filename :
748857
Link To Document :
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