Title :
Impact of medium noise correlation on various partial response channels
Author :
Zhu, Jian-Gang ; Ye, Xiao-Guang
Author_Institution :
Dept. of Electr. Eng., Minnesota Univ., Minneapolis, MN, USA
fDate :
11/1/1995 12:00:00 AM
Abstract :
This work investigates the impact of correlated medium noise at high recording densities to various advanced recording channels. Based on spin-stand measurements, noise spatial correlations of dibit transitions at small bit intervals is characterized as two statistically independent correlation modes: the coherent amplitude fluctuation of the dipulse and shift-in-unison of the entire dipulse waveform. In the density region where supralinear noise enhancement is relatively pronounced, the amplitude fluctuation mode dominates the noise spatial correlation. It is found that the correlated medium noise can degrade the performance of a (0, k) coded PR4-ML channel by 5-6 dB over white Gaussian noise. However, (1, k) coded EPR4 and EEPR4 channels are much more immune to the coherent amplitude fluctuation mode noise. It is concluded that in the supralinear noise region, (1, k) coded EPR4 and EEPR4 channels could have much improved performance over (0, k) coded PR4 channel in the medium noise dominated environment
Keywords :
digital magnetic recording; magnetic recording noise; partial response channels; signal detection; (1, k) coded channel; EEPR4 channel; EPR4 channel; PR4-ML channel; coherent amplitude fluctuation; detection channels; dibit transitions; dipulse waveform; high recording densities; medium noise correlation; noise spatial correlations; partial response channels; spin-stand measurements; supralinear noise enhancement; white Gaussian noise; Degradation; Design optimization; Gaussian noise; Information technology; Noise figure; Noise level; Noise measurement; Partial response channels; Transistors; Voltage fluctuations;
Journal_Title :
Magnetics, IEEE Transactions on