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首页> 外文期刊>Communications, IEEE Transactions on >Error Rate Estimation of Low-Density Parity-Check Codes Decoded by Quantized Soft-Decision Iterative Algorithms
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Error Rate Estimation of Low-Density Parity-Check Codes Decoded by Quantized Soft-Decision Iterative Algorithms

机译:量化软判决迭代算法解码的低密度奇偶校验码的误码率估计

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摘要

This paper describes a combinatorial approach to estimate the error rate performance of low-density parity-check (LDPC) codes decoded by (quantized) soft-decision iterative decoding algorithms. The method is based on efficient enumeration of input vectors with small distances to a reference vector whose elements are selected to be the most reliable values from the input alphabet. Several techniques, including modified cycle enumeration, and the efficient derivation of problematic inputs for finer quantizers from those of coarser ones are employed to reduce the complexity of the enumeration. The error rate estimate is derived by testing the input vectors of small distances followed by estimating the contribution of larger distance vectors. We demonstrate by a number of examples that the proposed method provides accurate estimates of error rate with computational complexity much lower than that of Monte Carlo simulations, especially at the error floor region.
机译:本文介绍了一种组合方法,用于估计由(量化)软判决迭代解码算法解码的低密度奇偶校验(LDPC)码的误码率性能。该方法基于与参考矢量的距离很小的输入矢量的有效枚举,该参考矢量的元素被选择为输入字母中最可靠的值。采用了多种技术,包括修改后的循环枚举,以及从较粗的量化器中有效推导较细化器的问题输入,以降低枚举的复杂性。通过测试较小距离的输入向量,然后估计较大距离向量的贡献,可以得出错误率估计。我们通过许多示例证明,所提出的方法提供了准确的误码率估计值,其计算复杂度远低于蒙特卡罗模拟,尤其是在错误本底区域。

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