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A Partial Ordering of General Finite-State Markov Channels Under LDPC Decoding

机译:LDPC解码下一般有限状态马尔可夫信道的偏序

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A partial ordering on general finite-state Markov channels is given, which orders the channels in terms of probability of symbol error under iterative estimation decoding of a low-density parity-check (LDPC) code. This result is intended to mitigate the complexity of characterizing the performance of general finite-state Markov channels, which is difficult due to the large parameter space of this class of channel. An analysis tool, originally developed for the Gilbert–Elliott channel, is extended and generalized to general finite-state Markov channels. In doing so, an operator is introduced for combining finite-state Markov channels to create channels with larger state alphabets, which are then subject to the partial ordering. As a result, the probability of symbol error performance of finite-state Markov channels with different numbers of states and wide ranges of parameters can be directly compared. Several examples illustrating the use of the techniques are provided, focusing on binary finite-state Markov channels and Gaussian finite-state Markov channels. Furthermore, this result is used to order Gilbert–Elliott channels with different marginal state probabilities, which was left as an open problem by previous work.
机译:给出了一般有限状态马尔可夫信道的部分排序,该信道在低密度奇偶校验(LDPC)码的迭代估计解码下,根据符号错误的概率对信道进行排序。此结果旨在减轻表征通用有限状态马尔可夫信道性能的复杂性,由于此类信道的参数空间较大,因此很难做到这一点。最初为Gilbert-Elliott通道开发的分析工具已扩展并推广到一般的有限状态Markov通道。为此,引入了一个运算符,用于组合有限状态的马尔可夫通道,以创建具有较大状态字母的通道,然后对它们进行部分排序。结果,可以直接比较状态数不同和参数范围广的有限状态马尔可夫信道的符号错误性能的概率。提供了几个示例说明这些技术的使用,重点放在二进制有限状态马尔可夫通道和高斯有限状态马尔可夫通道上。此外,该结果用于对具有不同边际状态概率的吉尔伯特-埃利奥特通道进行排序,而先前的工作则将其作为未解决的问题。

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