Performance of Raptor Codes on the BIAWGN Channel in the Presence of SNR Mismatch

Hussein Fadhel, Amrit Kharel, Lei Cao
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引用次数: 1

Abstract

Accurate estimation of the channel signal to noise ratio (SNR) is essential for belief propagation (BP) decoding to operate optimally. Incorrect estimation of the channel SNR is known as SNR mismatch and can lead to serious degradation in BP decoding performance especially when a code is operating near its decoding threshold. We analyze the asymptotic performance of Raptor codes under SNR mismatch on the binary input additive white Gaussian noise (BIAWGN) channel using discretized density evolution (DDE). We provide the decoding thresholds of Raptor codes for a wide range of SNR mismatch values. Our results show that overestimation of channel SNR is slightly more detrimental than underestimation for lower levels of SNR mismatch, while, underestimation becomes more detrimental as the mismatch increases. Finally, we use DDE-based optimization to design SNR mismatch tolerant output degree distributions.
信噪比不匹配条件下猛禽码在BIAWGN信道上的性能研究
信道信噪比(SNR)的准确估计是信念传播(BP)译码实现最佳运行的关键。信道信噪比的不正确估计被称为信噪比失配,它会导致BP解码性能的严重下降,特别是当码在其解码阈值附近运行时。利用离散密度演化(DDE)分析了在二值输入加性高斯白噪声(BIAWGN)信道上信噪比不匹配的Raptor码的渐近性能。我们为广泛的信噪比失配值提供了Raptor代码的解码阈值。研究结果表明,当信噪比失配水平较低时,信道信噪比高估的危害略大于信道信噪比低估的危害,而当信噪比失配水平增加时,信道信噪比低估的危害更大。最后,我们使用基于dde的优化来设计信噪比容错输出度分布。
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