DocumentCode :
994942
Title :
Design Curves and Information-Theoretic Limits for Perpendicular Recording Systems
Author :
Wu, Zheng ; Siegel, Paul H. ; Bertram, H. Neal ; Wolf, Jack K.
Author_Institution :
Center for Magnetic Recording Res., California Univ., San Diego, La Jolla, CA
Volume :
43
Issue :
2
fYear :
2007
Firstpage :
721
Lastpage :
726
Abstract :
To optimize a high-density magnetic recording system, one needs to know the tradeoffs between various components of the system including the read/write transducers, the magnetic medium, and the read channel. In this paper, we consider a channel model characterized by three parameters: the replay pulse width T50, the transition jitter noise standard deviation sigmaJ, and the signal-to-electronic-noise ratio SNRWG. We utilize information-theoretic tools to determine the acceptable region for the channel parameters T50 and sigmaJ when optimal detection and linear coding techniques are used. This paper is an extension of a similar analysis for a system that utilized a minimum mean-squared error (MMSE) equalizer, a Viterbi detector, and a Reed-Solomon (RS) code. Our main conclusion is that there is a considerable potential gain to be achieved by using improved detection and coding schemes as compared with the present system
Keywords :
Reed-Solomon codes; Viterbi detection; least mean squares methods; linear codes; magnetic recording noise; perpendicular magnetic recording; MMSE; Reed-Solomon code; Viterbi detector; channel model characteristic; high-density magnetic recording system; information-theoretic limits; linear coding techniques; magnetic medium; minimum mean-squared error equalizer; perpendicular recording systems; read channel; read-write transducers; signal-to-electronic-noise ratio; transition jitter noise; Detectors; Equalizers; Jitter; Magnetic noise; Magnetic recording; Perpendicular magnetic recording; Signal to noise ratio; Space vector pulse width modulation; Transducers; Viterbi algorithm; Information theory; jitter noise; parameter optimization; perpendicular magnetic recording;
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/TMAG.2006.888369
Filename :
4069086
Link To Document :
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