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首页> 外文期刊>IEEE Transactions on Communications >SNR-Invariant Importance Sampling for Hard-Decision Decoding Performance of Linear Block Codes
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SNR-Invariant Importance Sampling for Hard-Decision Decoding Performance of Linear Block Codes

机译:线性分组码硬判决解码性能的SNR不变重要性采样

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摘要

We present an importance sampling (IS) technique for evaluating the word-error rate (WER) and bit-error rate (BER) performance of binary linear block codes under hard-decision decoding. This IS technique takes advantage of the invariance of the decoding outcome to the transition probability of the binary symmetric channel given a received error pattern, and is equivalent to the method of stratification for variance reduction. A thorough analysis of the accuracy of the proposed signal-to-noise-ratio-invariant IS (IIS) estimator based on computing its relative bias and standard deviation is provided. Under certain conditions, which may be achieved fairly easily for certain code and decoder combinations, we demonstrate that it is possible to use the proposed IIS technique to accurately evaluate the WER and BER to arbitrarily low values. Further, in all cases, the probability estimates obtained via IIS always serve as a lower bound on the true probability values
机译:我们提出了一种重要采样(IS)技术,用于评估硬决策解码下的二进制线性块码的误码率(WER)和误码率(BER)性能。该IS技术利用给定接收误差模式的解码结果对二进制对称信道的转移概率的不变性,并且等效于用于减少方差的分层方法。在计算其相对偏差和标准偏差的基础上,对提出的信噪比不变IS(IIS)估计器的准确性进行了全面分析。在某些条件下(对于某些代码和解码器组合而言,这很容易实现),我们证明了有可能使用建议的IIS技术将WER和BER准确评估为任意低的值。此外,在所有情况下,通过IIS获得的概率估计值始终是真实概率值的下限

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