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Class-based delta-encoding for high-speed train data stream

机译:高速列车数据流的基于类的增量编码

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Railway transportation plays an important role in both economic and social development. The requirements of the railway traffic increase in recent decades. In order to meet the growing demand, a new generation control system of railway transportation emerges. It consists of collection, transmission, analysis and scheduling module. In such a context, an information transmission system is built to connect trains and scheduling center. However, the infrastructure of the railway system cannot provide enough bandwidth for such amount of data. As a result, the efficiency of data transmission cannot be ensured. In this paper, we focus on the compression algorithm that reduce the amount of transmitted data and improve the system performance. Based on the analysis of the common algorithms, an efficient compression algorithm, named delta-encoding, is proposed. It consists of two steps: preprocessing and compression. Delta-encoding utilizes a class-based difference model, which reduces the data redundancy, to realize a preprocessing algorithm. With the combination of preprocessing algorithm and a regular compression algorithm, delta-encoding has better performance on compression ratio, and becomes a universal hybrid algorithm for structured data in IoT system rather than a specific algorithm in high-speed train system. Finally, several experiments are provided to prove that delta-encoding have advantages in both compression ratio and compression time.
机译:铁路运输在经济和社会发展中都起着重要作用。近几十年来,铁路交通的需求不断增长。为了满足不断增长的需求,出现了新一代的铁路运输控制系统。它由收集,传输,分析和调度模块组成。在这种情况下,建立了一个信息传输系统来连接火车和调度中心。但是,铁路系统的基础设施无法为这样的数据量提供足够的带宽。结果,不能确保数据传输的效率。在本文中,我们专注于压缩算法,该算法可减少传输的数据量并提高系统性能。在分析常用算法的基础上,提出了一种有效的压缩算法,称为增量编码。它包括两个步骤:预处理和压缩。 Delta编码利用基于类的差异模型来减少数据冗余,从而实现预处理算法。结合预处理算法和常规压缩算法,增量编码在压缩率上具有更好的性能,成为物联网系统中结构化数据的通用混合算法,而不是高速列车系统中的特定算法。最后,提供了一些实验来证明增量编码在压缩率和压缩时间上均具有优势。

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