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SOVA Based Decoding of Double-Binary Turbo Convolutional Code

机译:基于SOVA的双二进制涡轮卷积码解码

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The channel encoder is incorporated in communication system to mitigate the effects of distortion, attenuation and fading as may be experienced by the transmitted signal. In this article we have discussed about Circular Recursive Systematic Convolutional (CRSC) based turbo codes and their bi-directional Soft Output Viterbi Algorithm (SOVA) decoding approach. The bi-directional SOVA [10] is considered in view of its better performance and implementation complexity trade-off. Necessary changes in basic message passing equations of bi-directional SOVA has been introduced, when the double binary CRSC codes are considered instead of the classical binary turbo codes. Double binary CRSC code provides significant error-correcting performance while not suffering from the well-known Bit Error Rate (BER) floor of classical binary turbo codes. Decoding of these circular codes requires a prologue decoder, prior to the actual trellis decoding, to estimate the initial state. A prologue-decoding algorithm for double-binary CRSC code has also been proposed. Prologue decoding plays a very important role in assessing the circulation state of the encoder for a CRSC codes [4]. Efficient determination of Circulation State through prologue decoding helps in achieving impressive error performance. Insight into the process of prologue decoding is also useful in reducing average power dissipation in digital implementation of such Turbo codecs. The design issues related to prologue decoding and their effects on error performance have also been discussed in this paper. It has been shown that, the performance of prologue decoder does not depend much on prologue length. Adequate simulation results have been included.
机译:通道编码器结合在通信系统中,以减轻变形,衰减和衰落的效果,因为所发送的信号可能经历。在本文中,我们讨论了关于循环递归系统卷积(CRSC)的涡轮码及其双向软输出维特比算法(SOVA)解码方法。考虑到其更好的性能和实现复杂性权衡来考虑双向SOVA [10]。当考虑双二进制CRSC代码而不是经典的二进制Turbo代码时,已经引入了双向SOVA的基本消息传递方程的必要变化。双二进制CRSC代码提供了显着的纠错性能,同时没有患古典二进制涡轮码的众所周知的误码率(BER)地板。在实际网格解码之前,这些循环代码的解码需要序列解码器来估计初始状态。还提出了一种用于双二进制CRSC代码的序列解码算法。序幕解码在评估CRSC代码的编码器的循环状态方面起着非常重要的作用[4]。通过序列解码有效地确定循环状态有助于实现令人印象深刻的误差性能。探讨序列解码过程的洞察也可用于降低这种涡轮编解码器的数字实施中的平均功耗。本文还讨论了与序列解码相关的设计问题及其对误差性能的影响。已经表明,序列解码器的性能不依赖于序列长度。已包括充分的仿真结果。

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