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A novel coding scheme for QAM using variational Bayesian inference

机译:基于变分贝叶斯推理的QAM编码新方案

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Variational Bayesian inference is one of the most powerful tools that can be used in estimation of random variations. Traditionally, in digital modulation, random noise is modeled as an additive white Gaussian noise (AWGN). In this paper, a novel coding scheme is introduced by which the effect of AWGN is decreased and the bit error rate (BER) versus the signal to noise ratio (SNR) curves are enhanced for quadrature amplitude modulation (QAM) schemes such as 16, 64 and 256 QAM. This satisfies the growing need of high data rates with minimum receiving error. The proposed scheme depends on using the variational Bayesian expectation maximization (VBEM) algorithm and mapping of weights. It is performed on the symbol level not on the bit level. The paper shows comparisons between the proposed VBEM coding algorithm and the Viterbi algorithm. The proposed algorithm has better BER performance as well as extra coding gain when compared to the Viterbi algorithm with same code rates.
机译:变异贝叶斯推断是可用于估计随机变异的最强大的工具之一。传统上,在数字调制中,随机噪声被建模为加性高斯白噪声(AWGN)。本文介绍了一种新颖的编码方案,该方案可降低AWGN的影响,并针对诸如16的正交幅度调制(QAM)方案增强误码率(BER)与信噪比(SNR)曲线的关系64和256 QAM。这满足了对具有最小接收误差的高数据速率的不断增长的需求。所提出的方案取决于使用变分贝叶斯期望最大化(VBEM)算法和权重映射。它是在符号级别而不是位级别上执行的。本文显示了提出的VBEM编码算法和Viterbi算法之间的比较。与具有相同编码率的维特比算法相比,所提出的算法具有更好的BER性能以及额外的编码增益。

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