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An improved Log-MAP algorithm based on polynomial regression function for LTE Turbo decoding

机译:一种改进的LTE Turbo解码多项式回归函数的改进日志映射算法

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This paper proposes an improved Logarithmic Maximum A Posteriori (Log-MAP) algorithm for Turbo decoding in the Third Generation Partnership Project Long Term Evolution (3GPP LTE). In the proposed algorithm, we exploit the understanding of polynomial regression function to approximately compute the logarithm term (also called correction function) in the Jacobian logarithmic function. The goal is to replace the correction function with another function with the approximated performance and the reduced computational complexity. Simulation results show that the performance of the proposed algorithm is closest to the Log-MAP algorithm for Turbo decoding under Additive White Gaussian Noise (AWGN) channel and can offer about maximum 0.4dB performance gain than the Max-Log-MAP algorithm and higher than other Log-MAP-based algorithms. The proposed algorithm has much simpler computational complexity in comparison with the Log-MAP algorithm and slightly increased compared to the Max-Log-MAP algorithm.
机译:本文提出了一种改进的对数最大的后验(log-map)算法在第三代合作伙伴计划长期演进中(3GPP LTE)中的Turbo解码。在所提出的算法中,我们利用了对多项式回归函数的理解,大致计算雅孚对数函数中的对数项(也称为校正函数)。目标是用近似性能和减少的计算复杂度替换校正功能。仿真结果表明,建议算法的性能最接近加成白色高斯噪声(AWGN)通道下的涡轮解码的日志映射算法,可以提供比MAX-Log-Map算法更高的最大0.4dB性能增益和高于基于Log-Map的算法。与Log-Map算法相比,所提出的算法具有更简单的计算复杂性,与MAX-Log-Map算法相比略微增加。

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