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Gallager B LDPC Decoder with Transient and Permanent Errors

机译:具有瞬时和永久错误的Gallager B LDPC解码器

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This paper studies the performance of a noisy Gallager B decoder for regular LDPC codes. We assume that the noisy decoder is subject to both transient processor errors and permanent memory errors. We permit different error rates at different functional components. In addition, for the sake of generality, we allow asymmetry in the permanent error rates of component outputs, and thus we model error propagation in the decoder via a suitable asymmetric channel. We then develop a density evolution-type analysis on this asymmetric channel. The recursive expression for the bit error probability is derived as a function of the code parameters (node degrees), codeword weight, transmission error rate, and the error rates of the permanent and the transient errors. Based on this analysis, we then derive the residual error of the Gallager B decoder for the regime where the transmission error rate and the processing error rates are small. In this regime, we further observe that the residual error rate can be well approximated by a suitable combination of the transient error rate and the permanent error rate at variable nodes, provided that the check node degree is large enough. Based on this insight, we then propose and analyze a scheme for detecting permanent errors and correcting detected residual errors. The scheme exploits the parity check equations of the code and reuses the existing hardware to locate permanent errors in memory blocks. Performance analysis and simulation results show that, with high probability, the detection scheme discovers correct locations of permanent memory errors, while, with low probability, it mislabels the functional memory as being defective. The proposed error detection-and-correction scheme can be implemented in-circuit and is useful in combating failures arising from aging.
机译:本文研究了常规LDPC码的带噪Gallager B解码器的性能。我们假设嘈杂的解码器同时受到瞬态处理器错误和永久存储器错误的影响。我们在不同的功能组件上允许不同的错误率。另外,为了通用起见,我们允许分量输出的永久错误率不对称,因此我们通过合适的不对称通道对解码器中的错误传播进行建模。然后,我们在此不对称通道上进行密度演化类型分析。比特错误概率的递归表达式是根据代码参数(节点度),代码字权重,传输错误率以及永久性和瞬态错误的错误率得出的。基于此分析,然后针对传输错误率和处理错误率较小的状态,我们推导出Gallager B解码器的残留错误。在这种情况下,我们进一步观察到,如果校验节点的程度足够大,则可以通过在可变节点处使用瞬态错误率和永久错误率的适当组合很好地估计残余错误率。基于此见解,我们然后提出并分析一种用于检测永久性错误并纠正检测到的残留错误的方案。该方案利用了代码的奇偶校验等式,并重用了现有的硬件以在存储块中定位永久错误。性能分析和仿真结果表明,该检测方案很有可能发现永久性存储器错误的正确位置,而以低概率发现该功能性存储器是有缺陷的标签。所提出的错误检测和纠正方案可以在电路中实现,并且对于抵抗由老化引起的故障很有用。

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