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Railway Traffic Conflict Detection via a State Transition Prediction Approach

机译:基于状态转换预测方法的铁路交通冲突检测

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Conflict detection and resolution is one of the most important tasks in daily railway traffic management, although it is still difficult to solve all its aspects. In fact, the aspect of conflict detection has not been amply studied. In this paper, an approach of traffic state prediction and conflict detection, based on proper state transition maps (STMaps) and corresponding relation matrices, is proposed. First, the traffic state sequences, which mainly concern infrastructure status and train movement information, are studied. These state sequences are expressed as segment and route state vectors and kept in corresponding state-domain tables (SDTables). The empirical state transitions are then applied to detect irregular states in a dynamic traffic environment. Furthermore, the structural constraints of infrastructure topology and route compatibilities are represented in matrices to aid the calculation and prediction of potential conflicting situations. Scenarios such as train delay and infrastructure failure are designed to test the proposed approach. The test results show that irregular states can be efficiently detected and potential conflicts can be further identified, and the detailed conflict information is also approachable.
机译:尽管仍然难以解决所有方面的问题,但是冲突检测和解决是日常铁路交通管理中最重要的任务之一。实际上,尚未充分研究冲突检测的方面。本文提出了一种基于适当的状态转换图(STMaps)和相应的关系矩阵的交通状态预测和冲突检测方法。首先,研究了主要涉及基础设施状态和列车运行信息的交通状态序列。这些状态序列表示为段和路由状态向量,并保留在相应的状态域表(SDTables)中。然后,将经验状态转换应用于检测动态交通环境中的不规则状态。此外,基础设施拓扑的结构约束和路线兼容性以矩阵表示,以帮助计算和预测潜在的冲突情况。设计了诸如火车延误和基础设施故障之类的方案来测试所提出的方法。测试结果表明,可以有效地检测出不规则状态,并且可以进一步识别潜在的冲突,并且详细的冲突信息也是可以接近的。

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