DocumentCode
766112
Title
Joint design of optimum partial response target and equalizer for recording channels with jitter noise
Author
Yang, Hongming ; Mathew, George
Author_Institution
Dept. of Electr. & Comput. Eng., Nat. Univ. of Singapore, Singapore
Volume
42
Issue
1
fYear
2006
Firstpage
70
Lastpage
77
Abstract
We address joint design of optimum generalized partial response (GPR) target and equalizer for perpendicular recording channels with jitter noise. We develop a new cost function which accounts for the data-dependent nature of jitter noise based on the minimum mean square error (MMSE) criterion. Using the step-response-based channel model, we derive expressions for the statistics required to compute the optimum equalizer and target in the presence of jitter noise. We also derive a bit-response-based model for the jitter noise channel. We present an approach for doing simulations as well as analytical computations for the jitter noise channel without resorting to the widely used Taylor series approximations. Our computational and simulation results show that, while the targets designed without accounting for the jitter lead to error-floor effect in the bit-error-rate performance, the targets designed by our approach give significant performance improvement under high jitter conditions, with no sign of error-floor effect for the range of signal-to-noise ratios considered.
Keywords
circuit noise; equalisers; jitter; least mean squares methods; perpendicular magnetic recording; Taylor series approximations; analytical computations; bit-error-rate performance; error-floor effect; high jitter conditions; jitter noise; minimum mean square error criterion; optimum equalizer computation; optimum partial response target; partial response target design; perpendicular magnetic recording; recording channel equalizer; signal-to-noise ratios; step-response-based channel model; transition jitter; Analytical models; Computational modeling; Cost function; Equalizers; Ground penetrating radar; Jitter; Mean square error methods; Perpendicular magnetic recording; Signal design; Statistics; Media noise; partial response target design; perpendicular magnetic recording; transition jitter;
fLanguage
English
Journal_Title
Magnetics, IEEE Transactions on
Publisher
ieee
ISSN
0018-9464
Type
jour
DOI
10.1109/TMAG.2005.860308
Filename
1561503
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