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Vehicle mass estimation using a total least-squares approach

机译:使用总最小二乘法估算车辆质量

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摘要

We introduce an incremental total least-squares vehicle mass estimation algorithm, based on a vehicle longitudinal dynamics model. Available control area network signals are used as model inputs and output. In contrast to common vehicle mass estimation schemes, where noise is only considered at the model output, our algorithm uses an errors-in-variables formulation and considers noise at the model inputs as well. A robust outlier treatment is realized as batch total least-squares routine and hence, the proposed algorithm works in a superior way on a broad range of vehicle acceleration. The results of six test runs on various vehicle masses show highly accurate mass estimation results on high and low dynamics of vehicular operation.
机译:我们基于车辆纵向动力学模型,介绍了一种增量式总最小二乘车辆质量估计算法。可用的控制区域网络信号用作模型输入和输出。与仅在模型输出端考虑噪声的常见车辆质量估算方案相比,我们的算法使用变量误差公式,并在模型输入端也考虑了噪声。鲁棒的异常处理实现为批处理总最小二乘例程,因此,所提出的算法在广泛的车辆加速度范围内以优越的方式工作。在各种车辆质量上进行的六次测试结果显示,车辆行驶的高动态和低动态的质量估算结果非常准确。

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