Performance Enhancement of SOVA Based Decoder in SCCC and PCCC Schemes

A. Hamad
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引用次数: 4

Abstract

This study proposes a simple scaling factor approach to improve the performance of parallel-concatenated convolutional code (PCCC) and serial concatenated convolutional code (SCCC) systems based on suboptimal soft-input soft-output (SISO) decoders. Fixed and adaptive scaling factors were estimated to mitigate both the optimistic nature of a posteriori information and the correlation between intrinsic and extrinsic information produced by soft-output Viterbi (SOVA) decoders. The scaling factors could be computed off-line to reduce processing time and implementation complexity. The simulation results show a significant improvement in terms of bit-error rate (BER) over additive white Gaussian noise and Rayleigh fading channel. The convergence properties of the suggested iterative scheme are assessed using the extrinsic information transfer (EXIT) chart analysis technique.
基于SOVA解码器在SCCC和PCCC方案中的性能提升
本研究提出了一种简单的比例因子方法来提高基于次优软输入软输出(SISO)解码器的并行级联卷积码(PCCC)和串行级联卷积码(SCCC)系统的性能。估计固定和自适应比例因子可以减轻后验信息的乐观性质以及软输出Viterbi (SOVA)解码器产生的内在和外在信息之间的相关性。比例因子可以离线计算,以减少处理时间和实现复杂性。仿真结果表明,在加性高斯白噪声和瑞利衰落信道下,系统的误码率显著提高。利用外部信息传递(EXIT)图分析技术对所提迭代方案的收敛性进行了评价。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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