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Estimation of the acceleration of a car under performance tests by using an optimal observer

机译:使用最佳观察器估算性能测试下的汽车加速度

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In this paper, the acceleration of a car under performance tests is estimated by using a Kalman filter. Here, the observation vector consists of the observation of both the velocity and the longitudinal acceleration of the car. This is the process vector and is the input of the filter. The output is the filtered estimate of the state vector, which consist of the velocity and longitudinal acceleration of the car. The accelerometer is modeled as a linear dynamical system in which the acceleration is a Wiener process, the state vector is corrupted by process noise and the observation vector by measurement noise. The process noise and the measurement noise are modeled as zero-mean, white-noise processes. The error-performance surface of the filter is obtained by taking into consideration several values of correlation matrix of process and measurement noise, and the experimental results show a satisfactory improvement in the signal-to-noise ratio of the system.
机译:在本文中,使用卡尔曼滤波器估算了在性能测试下的汽车加速度。在这里,观察矢量包括对汽车速度和纵向加速度的观察。这是过程向量,是过滤器的输入。输出是状态向量的滤波后估计,其中包括汽车的速度和纵向加速度。加速度计被建模为线性动力学系统,其中加速度是维纳过程,状态矢量被过程噪声破坏,观察矢量被测量噪声破坏。过程噪声和测量噪声被建模为零均值,白噪声过程。通过考虑过程和测量噪声的相关矩阵的几个值,可以得到滤波器的误码性能表面,实验结果表明,该系统的信噪比有令人满意的提高。

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