运行列车定位问题的降阶卡尔曼滤波性能评价

S. Banerjee, S. Chattaraj
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引用次数: 0

摘要

研究了一种基于卡尔曼滤波的运行列车站间(短距离)定位问题的求解方法。基于信号系统的解决方案,辅助轨道侧安装硬件是一种经典的方法,然而,由于安装,维护和防止破坏,涉及高运营成本。基于星载导航传感器和卫星导航系统提供数据的智能集散控制系统的原理,寻求新的发展方向。由于卫星数据的瞬态特性,这种系统在不利的情况下容易发生故障。基于卡尔曼滤波的估计器仅由机载传感器数据构建,已被证明是等价的。然而,这种全阶滤波器涉及到许多动态状态,计算成本很高。本文讨论了基于车载传感器数据的降阶卡尔曼滤波器的设计与实现,以解决运行列车的定位问题。仿真结果验证了所提滤波器的有效性。
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Performance Evaluation of a Reduced Order Kalman Filter for Running Train Localization Problem
A Kalman Filter based solution to running train localization problem from station to station (in short distance) has been explored. Signal system based solution aided with track side installed hardware is a classical approach, however, involves high operational cost due to installation, maintenance and protection against vandalism. Recent development is sought based on the principles of intelligent distributed control system, which operates on data supplied by both on board navigation sensors and satellite navigation system. Such a system is prone to failure due to transient nature of satellite data in adverse situations. Kalman filter based estimator constructed with only on-board sensor data has been proven to be at par. However, such a full order filter involves many states in its dynamics, which incurs high computational cost. Present work discusses the design and implementation of a reduced order Kalman filter based on on-board sensor data, to solve running train localization problem. Simulation results are presented in order to establish the effectiveness of the proposed filter.
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