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LDPC Coding for Magnetic Storage: Low Floor Decoding Algorithms, System Design and Performance Analysis

机译:磁存储的LDPC编码:低层解码算法,系统设计和性能分析

摘要

Low-density parity check (LDPC) codes have experienced tremendous popularity due to their capacity-achieving performance. In this dissertation, several different aspects of LDPC coding and its applications to magnetic storage are investigated. One of the most significant issues that impedes the use of LDPC codes in many systems is the error-rate floor phenomenon associated with their iterative decoders. By delineating the fundamental principles, we extend to partial response channels algorithms for predicting the error rate performance in the floor region for the binary-input AWGN channel. We develop three classes of decoding algorithms for mitigating the error floor by directly tackling the cause of the problem: trapping sets. In our experiments, these algorithms provide multiple orders of improvement over conventional decoders at the cost of various implementation complexity increases.Product codes are widely used in magnetic recording systems where errors are both isolated and bursty. A dual-mode decoding technique for Reed-Solomon-code-based product codes is proposed, where the second decoding mode involves maximum-likelihood erasure decoding of the binary images of the Reed-Solomon codewords. By exploring a tape storage application, we demonstrate that this dual-mode decoding system dramatically improves the performance of product codes. Moreover, the complexity added by the second decoding mode is manageable. We also show the performance of this technique on a product code which has an LDPC code in the columns.Run-length-limited (RLL) codes are ubiquitous in today's disk drives. Using RLL codes has enabled drive designers to pack data very efficiently onto the platter surface by ensuring stable symbol-timing recovery. We consider a concatenation system design with an LDPC code and an RLL code as components to simultaneously achieve desirable features such as: soft information availability to the LDPC decoder, the preservation of the LDPC code's structure, and the capability of correcting long erasure bursts.We analyze the performance of LDPC-coded magnetic recording channel in the presence of media noise. We employ advanced signal processing for the pattern-dependent-noise-predictive channel detectors, and demonstrate that a gain of over 1 dB or a linear density gain of about 8% relative to a comparable Reed-Solomon is attainable by using an LDPC code.
机译:低密度奇偶校验(LDPC)代码由于其可实现容量的性能而受到极大欢迎。本文研究了LDPC编码的几个不同方面及其在磁存储中的应用。阻碍在许多系统中使用LDPC码的最重要问题之一是与其迭代解码器相关的误码率最低限度现象。通过描述基本原理,我们扩展到部分响应通道算法,以预测二进制输入AWGN通道的下限区域中的误码率性能。我们通过直接解决问题的原因,开发了三类解码算法来降低错误率:捕获集。在我们的实验中,这些算法以各种实现复杂度的增加为代价,比传统解码器提供了多个级别的改进。产品代码广泛用于错误既被隔离又是突发性的磁记录系统中。提出了一种用于基于里德-所罗门码的乘积码的双模式解码技术,其中第二解码模式涉及对里德-所罗门码字的二进制图像的最大似然擦除解码。通过探索磁带存储应用,我们证明了这种双模式解码系统极大地提高了产品代码的性能。而且,由第二解码模式增加的复杂度是可管理的。我们还将在列有LDPC代码的产品代码上展示该技术的性能。游程长度限制(RLL)代码在当今的磁盘驱动器中无处不在。使用RLL代码,驱动器设计人员可以通过确保稳定的符号定时恢复,将数据非常有效地打包到磁盘表面上。我们考虑将LDPC码和RLL码作为组件的级联系统设计,以同时实现所需的功能,例如:LDPC解码器的软信息可用性,LDPC码的结构保留以及纠正长擦除突发的能力。分析在存在介质噪声的情况下LDPC编码磁记录通道的性能。我们对模式相关的噪声预测通道检测器采用了先进的信号处理技术,并证明了通过使用LDPC码,相对于可比的Reed-Solomon,可以获得超过1 dB的增益或大约8%的线性密度增益。

著录项

  • 作者

    Han Yang;

  • 作者单位
  • 年度 2008
  • 总页数
  • 原文格式 PDF
  • 正文语种 EN
  • 中图分类

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