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Joint Nonlinear Channel Equalization and Soft LDPC Decoding With Gaussian Processes

机译:高斯过程联合非线性信道均衡和软LDPC解码

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摘要

In this paper, we introduce a new approach for nonlinear equalization based on Gaussian processes for classification (GPC). We propose to measure the performance of this equalizer after a low-density parity-check channel decoder has detected the received sequence. Typically, most channel equalizers concentrate on reducing the bit error rate, instead of providing accurate posterior probability estimates. We show that the accuracy of these estimates is essential for optimal performance of the channel decoder and that the error rate output by the equalizer might be irrelevant to understand the performance of the overall communication receiver. In this sense, GPC is a Bayesian nonlinear classification tool that provides accurate posterior probability estimates with short training sequences. In the experimental section, we compare the proposed GPC-based equalizer with state-of-the-art solutions to illustrate its improved performance.
机译:在本文中,我们介绍了一种基于高斯分类过程(GPC)的非线性均衡新方法。我们建议在低密度奇偶校验通道解码器检测到接收到的序列后测量此均衡器的性能。通常,大多数通道均衡器专注于降低误码率,而不是提供准确的后验概率估计。我们表明,这些估计的准确性对于信道解码器的最佳性能至关重要,并且均衡器输出的错误率可能与了解整个通信接收机的性能无关。从这个意义上讲,GPC是一种贝叶斯非线性分类工具,可通过较短的训练序列提供准确的后验概率估计。在实验部分,我们将建议的基于GPC的均衡器与最新解决方案进行比较,以说明其改进的性能。

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