Title :
Evaluation of Multiple Reader Location for TDMR R/W Channel
Author :
Nakamura, Yoshihiko ; Fujimoto, Naoki ; Okamoto, Yuji ; Osawa, Hideya ; Muraoka, Hiroaki
Author_Institution :
Grad. Sch. of Sci. & Eng., Ehime Univ., Matsuyama, Japan
Abstract :
The two-dimensional magnetic recording (TDMR) by shingled magnetic recording needs two-dimensional (TD) signal processing using the multiple read-back waveforms. In this paper, to allocate dual readers (reader 1 and 2) for the intended tracks, we evaluate the bit error rate (BER) performance of a low-density parity-check coding and iterative decoding system with a TD-finite impulse response equalizer under TDMR R/W channel specifications of 4 Tb/in2. Here, the TDMR R/W channel is modeled using a discretized granular medium and the writing process based on a slope model considering the media switching field angle given by the Stoner-Walfarth reversal mechanism. The result shows that to affect the good BER performance, the reader 1 should be placed slightly toward the next track from the center of the home track, and the reader 2 should be placed around the boundary between the home and following tracks.
Keywords :
equalisers; error statistics; granular materials; iterative decoding; magnetic recording; magnetic switching; parity check codes; signal processing; BER performance; Stoner-Walfarth reversal mechanism; TD signal processing; TD-finite impulse response equalizer; TDMR R-W channel specification; bit error rate performance; discretized granular medium; dual reader allocation; iterative decoding system; low-density parity-check coding; media switching field angle; multiple read-back waveform; multiple reader location evaluation; shingled magnetic recording; slope model; two-dimensional magnetic recording; two-dimensional signal processing; writing process; Bit error rate; Decoding; Iterative decoding; Magnetic heads; Magnetic recording; Switches; Shingled magnetic recording (SMR); Stoner???Walfarth (S-W) reversal mechanism; two-dimensional finite impulse response equalizer (TD-FIRE); two-dimensional magnetic recording (TDMR);
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2014.2318335