DocumentCode
2087508
Title
Inter-track interference cancelation in presence of frequency offset for shingled magnetic recording
Author
Kumar, Narendra ; Bellorado, Jason ; Marrow, Marcus ; Kai Keung Chan
Author_Institution
SK Hynix Memory Solutions Inc., San Jose, CA, USA
fYear
2013
fDate
9-13 June 2013
Firstpage
4342
Lastpage
4346
Abstract
The enormous growth of consumer electronic industry is driving the need for achieving ultra-high areal storage densities. Shingled magnetic recording (SMR) is a promising high density storage technique where shingles are created by overlapping tracks for increasing the track per inch (TPI) and achieving higher areal densities. High TPI values, however, introduce sidetrack interference in the equalized output of the center track sensed through the read head. The problem of removing interference from the center track signal can be formulated as estimating pulse shapes of sidetracks assuming sidetracks are decodable. In this paper, we first propose a solution using the correlation method for estimating the pulse shape and the phase-misalignment. The correlation method fails when there is a frequency offset present from sidetracks. Furthermore, we devise a solution based on the least mean square (LMS) algorithm which can provide time varying estimates of the sidetrack pulse shapes and remove the interference from the center track signal. Experimental and simulation results which corroborate the analysis of the proposed algorithm, demonstrate that the proposed algorithm outperforms other techniques and gives the minimum bit error rate (BER). The complexity of the proposed algorithm is low and it can be easily implemented on the hardware.
Keywords
electronics industry; error statistics; interference suppression; least mean squares methods; magnetic recording; BER; LMS algorithm; bit error rate; center track signal; consumer electronic industry; correlation method; frequency offset; high density storage technique; inter-track interference cancelation; least mean square; overlapping tracks; phase misalignment; pulse shape; shingled magnetic recording; sidetrack interference; sidetrack pulse shapes; track per inch; ultra-high areal storage densities; Bit error rate; Correlation; Estimation; Interference; Least squares approximations; Magnetic recording; Shape;
fLanguage
English
Publisher
ieee
Conference_Titel
Communications (ICC), 2013 IEEE International Conference on
Conference_Location
Budapest
ISSN
1550-3607
Type
conf
DOI
10.1109/ICC.2013.6655248
Filename
6655248
Link To Document