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Road grades and tire forces estimation using two-stage extended Kalman filter in a delayed interconnected cascade structure

机译:延迟互连叶栅结构中使用两级扩展卡尔曼滤波器的道路坡度和轮胎力估计

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Intelligent vehicles sense their dynamics and the environment to make proper decisions. Some of this information are hard to be measured or need expensive sensors. This paper addresses the estimation of road grade angles, along with tire-ground interaction forces, in a delayed interconnected cascade observer structure. A new approach using a Two-Stage Extended Kalman Filter is proposed, allowing a robust simultaneous estimation of the slow and fast dynamics variables. Experimental data is used to validate the estimator.
机译:智能车辆感知其动态和环境,以做出正确的决策。其中一些信息很难测量,或者需要昂贵的传感器。本文讨论了延迟互连的级联观测器结构中道路坡度角的估计以及轮胎与地面的相互作用力。提出了一种使用两阶段扩展卡尔曼滤波器的新方法,该方法允许对慢速和快速动态变量进行鲁棒的同时估计。实验数据用于验证估计量。

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