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A New Algebraic Approach to Decision Making in a Railway Interlocking System Based on Preprocess

机译:基于预处理的铁路联锁系统决策新代数方法

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The safety of railway networks is a very important issue. Roughly speaking, it can be split into safety along lines and safety of railway facilities such as stations, junctions, yards, etc. In modern networks the safety along lines is controlled by automatic block systems that do not give clearance to trains to enter a section (block) until the latter is detected to be unoccupied. Meanwhile, the safety within railway facilities is supervised by railway interlocking systems. Decision making in a railway interlocking is a very important issue which is considered to be very labour-intensive. Decision-making in both automatic block systems and railway interlocking systems, unlike road traffic light systems, is not based on time (they are not scheduling problems) but in space. Basically, two different trains should never be allowed to access the same section (whatever time has passed). There are many different approaches to automate decision-making in railway interlocking systems. The classic approaches are offline: only certain routes are allowed and their compatibility is decided in advance. Meanwhile, modern approaches make decisions in real time and are independent from the topology of the railway network, but can be applied only to small or medium size railway networks. Nevertheless, these last approaches have the following drawbacks: the performances are very dependent on the number of trains in the railway network; and are unsuitable to large networks since they take long time to be run. On the other hand, algebraic approaches based on computer algebra concepts have been used in artificial intelligence for implementing expert systems. In this paper we present a completely new algebraic model, based on these concepts of computer algebra that overcomes these drawbacks: the performance of our approach is independent of the number of trains in the railway network and also is suitable for large railway networks.
机译:铁路网络的安全是一个非常重要的问题。粗略地讲,它可以分为沿线安全性和铁路设施(如车站,枢纽,院子等)的安全性。在现代网络中,沿线安全性是由自动阻止系统控制的,这种自动阻止系统不会给列车进入区间提供许可(阻止),直到检测到后者未被占用为止。同时,铁路联锁系统对铁路设施内的安全进行监督。铁路联锁系统中的决策是一个非常重要的问题,被认为是劳动密集型的。与道路交通信号灯系统不同,自动封锁系统和铁路联锁系统中的决策不是基于时间(它们不是调度问题),而是基于空间。基本上,绝不允许两个不同的火车进入同一路段(无论时间已过去)。在铁路联锁系统中,有许多不同的方法可以使决策自动化。经典方法是脱机的:仅允许某些路由,并且它们的兼容性是事先确定的。同时,现代方法可以实时做出决策,并且与铁路网络的拓扑结构无关,但是只能应用于中小型铁路网络。然而,这些最后的方法具有以下缺点:性能在很大程度上取决于铁路网络中的火车数量。并且不适合大型网络,因为它们需要很长时间才能运行。另一方面,基于计算机代数概念的代数方法已在人工智能中用于实现专家系统。在本文中,我们基于计算机代数的这些概念提出了一种全新的代数模型,该模型克服了以下缺点:我们的方法的性能与铁路网络中的列车数量无关,也适用于大型铁路网络。

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  • 来源
    《Mathematical Problems in Engineering》 |2018年第12期|4982974.1-4982974.14|共14页
  • 作者单位

    Univ Politecn Madrid Escuela Tecn Super Ingn Sistemas Informat Dept Sistemas Inteligentes Aplicados C Alan Turing S-N Madrid 28031 Spain;

    Univ Complutense Madrid Fac Educ Dept Algebra Geometria & Topol C Rector Royo Villanova S-N E-28040 Madrid Spain|Univ Complutense Madrid Fac Educ Inst Matemat Interdisciplinar C Rector Royo Villanova S-N E-28040 Madrid Spain;

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