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Linear-time encoding and decoding of low-density parity-check codes

机译:低密度奇偶校验码的线性时间编码和解码

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摘要

Low-density parity-check (LDPC) codes had a renaissance when they were rediscovered in the 1990’s. Since then LDPC codes have been an important part of the field of error-correcting codes, and have been shown to be able to approach the Shannon capacity, the limit at which we can reliably transmit information over noisy channels. Following this, many modern communications standards have adopted LDPC codes. Error-correction is equally important in protecting data from corruption on a hard-drive as it is in deep-space communications. It is most commonly used for example for reliable wireless transmission of data to mobile devices. For practical purposes, both encoding and decoding need to be of low complexity to achieve high throughput and low power consumption.This thesis provides a literature review of the current state-of-the-art in encoding and decoding of LDPC codes. Message- passing decoders are still capable of achieving the best error-correcting performance, while more recently considered bit-flipping decoders are providing a low-complexity alternative, albeit with some loss in error-correcting performance. An implementation of a low-complexity stochastic bit-flipping decoder is also presented. It is implemented for Graphics Processing Units (GPUs) in a parallel fashion, providing a peak throughput of 1.2 Gb/s, which is significantly higher than previous decoder implementations on GPUs. The error-correcting performance of a range of decoders has also been tested, showing that the stochastic bit-flipping decoder provides relatively good error-correcting performance with low complexity. Finally, a brief comparison of encoding complexities for two code ensembles is also presented.
机译:低密度奇偶校验(LDPC)代码在1990年代重新发现时开始复兴。从那时起,LDPC码一直是纠错码领域的重要组成部分,并且已被证明能够达到Shannon容量,这是我们可以在嘈杂的信道上可靠地传输信息的极限。在此之后,许多现代通信标准都采用了LDPC码。纠错在保护数据免受硬盘驱动器损坏方面同样重要,就像在深空通信中一样。例如,它最常用于将数据可靠地无线传输到移动设备。出于实用目的,编码和解码都必须具有低复杂度,以实现高吞吐量和低功耗。本文提供了有关LDPC码编码和解码的最新技术的文献综述。消息传递解码器仍然能够实现最佳的纠错性能,而最近被认为是位翻转的解码器提供了一种低复杂度的替代方案,尽管在纠错性能上有所损失。还提出了一种低复杂度随机比特翻转解码器的实现。它以并行方式为图形处理单元(GPU)实施,可提供1.2 Gb / s的峰值吞吐量,这明显高于GPU上以前的解码器实现。还测试了一系列解码器的纠错性能,这表明随机位翻转解码器可提供相对良好的纠错性能,且复杂度较低。最后,还给出了两个代码集合的编码复杂度的简要比较。

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    Simberg Mikael;

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  • 年度 2015
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  • 原文格式 PDF
  • 正文语种 en
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