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Tactile sensor signal processing using an adaptive kalman filter

机译:使用自适应卡尔曼滤波器的触觉传感器信号处理

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This paper presents the algorithm for on-line estimation of the optimal gain of the Kalman filter applied to a tactile sensor signals when the structure of the signal model is known exactly, but the signal to noise ratio is unknown. A first order spectrum of a pure signal and white Gaussian measurement noise have been assumed. The proposed adaptation algorithm has been examined for various spectra of the signal and for various signal to noise ratios. The effect of the length of an adaptation step on the convergence properties of the algorithm and on errors of the pure signal estimation has also been tested. The presented considerations might be helpful for designers who synthesize optimal linear digital filters of sensor's signals in the case of unknown signal to noise ratio. Although that particular algorithm has been applied for stationary signals, it can also be used successfully for time variant sensor's signals when the signal to noise ratio varies very slowly in comparison to the length of adaptation step. The method for the best choice of the adaptation step for the time variant sensor's signals has been proposed.
机译:当信号模型的结构已知,但信噪比未知时,本文提出了一种在线估计应用于触觉传感器信号的卡尔曼滤波器的最佳增益的算法。假定了纯信号的一阶频谱和白高斯测量噪声。已经针对信号的各种频谱和各种信噪比检查了所提出的自适应算法。还测试了自适应步骤的长度对算法的收敛性以及对纯信号估计的误差的影响。提出的考虑因素可能对在信噪比未知的情况下综合传感器信号的最佳线性数字滤波器的设计人员有所帮助。尽管该特定算法已应用于固定信号,但当信噪比与自适应步长相比变化非常缓慢时,它也可以成功用于时变传感器的信号。已经提出了最佳选择时变传感器信号的适配步骤的方法。

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