基于隐马尔可夫模型的双嵌入进程二进制数字无线信道

Omar S. Salih, Chengxiang Wang, D. Laurenson
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引用次数: 15

摘要

生成模型有望减少直接模拟真实系统所带来的计算负荷和成本。它们对于错误控制方案和高层无线通信协议的设计和性能评估至关重要。因此,设计一个高效、准确的生成模型是非常必要的。此外,在数字无线信道中所遇到的误差具有相关性。这促使我们构建一个基于马尔可夫的生成模型,其中包含两个嵌入过程。第一个过程致力于将错误突发与无错误突发组合在一起,而第二个过程致力于在错误突发中使用最大间隙范数创建单个错误突发。本文利用这一前提来证明所得到的生成模型可以生成具有所需比特相关性的错误序列,并且能够在统计上匹配来自增强型通用分组无线电业务(EGPRS)传输系统的描述性模型,而不管其错误序列的配置如何。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Double embedded processes based hidden Markov models for binary digital wireless channels
Generative models hold the promise of reducing the computational load and cost caused by directly simulating a real system. They are vital to the design and performance evaluation of error control schemes and high layer wireless communication protocols. Therefore, designing an efficient and accurate generative model is highly desirable. Moreover, the errors encountered in digital wireless channels exhibit correlation among them. This stimulates us to construct a Markovian based generative model with two embedded processes. The first process is dedicated to assembling error bursts with error-free bursts, whereas the second one is devoted to creating individual error bursts employing the maximum gap norm within error bursts. This premise is utilized in this paper to show that the resulting generative model can generate error sequences with desired bit correlations and is capable of statistically matching a descriptive model, derived from an enhanced general packet radio service (EGPRS) transmission system, regardless of the configuration of its error sequences.
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