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Fuzzy Reliability-Based Traction Control Model for Intelligent Transportation Systems

机译:基于模糊可靠性的智能交通系统牵引力控制模型

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摘要

In this paper, a fuzzy Bayesian traction control system was developed for rail vehicles with speed sensors in intelligent transportation systems. The system included three main components to sense, process, and classify the traction conditions. The information received from the speed sensors is used to avoid any error that might cause service interruption and unnecessary maintenance. There are, however, occasions when these signals may not be sensed, transmitted, or received precisely due to unexpected conditions such as noise. Therefore, in this study, the $gamma$-level fuzzy Bayesian model was proposed for sensor-based traction control systems. In order to apply the fuzzy Bayesian concept, the wheel acceleration was assumed to be a fuzzy random variable for membership function with fuzzy prior distribution. Using the fuzzy signals, the intelligent model calculates the risk of classification for the system that results in determining the misclassification decision at a minimum cost. The model's engine involves a mathematical problem which can be solved in any programming language in onboard or embedded computers. The conceptual model was applied to a case study with promising results, which can be used for target systems or simulation.
机译:本文为智能交通系统中带速度传感器的铁路车辆开发了模糊贝叶斯牵引力控制系统。该系统包括三个主要组件,以感测,处理和分类牵引条件。从速度传感器接收的信息用于避免可能导致服务中断和不必要维护的任何错误。但是,在某些情况下,由于诸如噪声之类的意外情况,可能无法准确地感测,发送或接收这些信号。因此,在这项研究中,针对基于传感器的牵引力控制系统提出了伽马级别的模糊贝叶斯模型。为了应用模糊贝叶斯概念,车轮加速度被假定为具有模糊先验分布的隶属函数的模糊随机变量。使用模糊信号,智能模型可以计算系统的分类风险,从而以最小的成本确定错误分类决策。该模型的引擎涉及一个数学问题,可以用机载或嵌入式计算机中的任何编程语言来解决。该概念模型已应用于案例研究,并获得了可喜的结果,可用于目标系统或仿真。

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