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首页> 外文期刊>Journal of Computer and Communications >Improved Polar Decoder Utilizing Neural Network in Fast Simplified Successive-Cancellation Decoding
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Improved Polar Decoder Utilizing Neural Network in Fast Simplified Successive-Cancellation Decoding

机译:在快速简化的连续取消解码中利用神经网络改进的极性解码器

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Polar codes using successive-cancellation decoding always suffer from high latency for its serial nature. Fast simplified successive-cancellation decoding algorithm improves the situation in theoretically but not performs well as expected in practical for the workload of nodes identification and the existence of many short blocks. Meanwhile, Neural network (NN) based decoders have appeared as potential candidates to replace conventional decoders for polar codes. But the exponentially increasing training complexity with information bits is unacceptable which means it is only suitable for short codes. In this paper, we present an improvement that increases decoding efficiency without degrading the error-correction performance. The long polar codes are divided into several sub-blocks, some of which can be decoded adopting fast maximum likelihood decoding method and the remained parts are replaced by several short codes NN decoders. The result shows that time steps the proposed algorithm need only equal to 79.8% of fast simplified successive-cancellation decoders require. Moreover, it has up to 21.2 times faster than successive-cancellation decoding algorithm. More importantly, the proposed algorithm decreases the hardness when applying in some degree.
机译:使用连续取消解码的极性代码总是遭受其串行性质的高延迟。快速简化的连续取消解码算法在理论上提高了这种情况,但在实际的节点识别工作量和许多短块的存在时,实际情况下的情况不会良好地执行。同时,基于神经网络(NN)的解码器出现为潜在的候选者,以替换用于极性代码的传统解码器。但是,具有信息位的指数增加的训练复杂性是不可接受的,这意味着它仅适用于短代码。在本文中,我们提出了一种提高解码效率而不会降低纠错性能。长度的极性代码被分成多个子块,其中一些可以解码采用快速最大似然解码方法,并且剩余的部分由几个短代码NN解码器代替。结果表明,所提出的算法仅等于79.8%的快速简化的连续取消解码器所需的79.8%。此外,它比连续取消解码算法快21.2倍。更重要的是,在某种程度上施加时,所提出的算法降低了硬度。

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