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Desensitized Filtering for Systems with Uncertain Parameters and Noise Correlation

机译:具有不确定参数和噪声相关的系统的脱敏过滤

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This paper introduces estimation algorithms for systems with uncertain parameters and correlated noises. The algorithms are derived using the standard Kalman filter for correlated noises and the desensitized filtering technique for systems with uncertain parameters. A general algorithm and its special case are proposed. The latter updates statistics with explicit expressions, which makes it simpler and faster. The extended forms of the algorithms, which can be used for nonlinear systems, are also introduced. The developed algorithm is tested on an example, where the importance of the noise correlation information is shown.
机译:本文介绍了具有不确定参数和相关噪声的系统的估计算法。使用标准Kalman滤波器导出算法,用于相关的噪声和具有不确定参数的系统的脱敏过滤技术。提出了一般算法及其特殊情况。后者更新了具有显式表达式的统计信息,这使得它更加简单,更快。还引入了可用于非线性系统的算法的扩展形式。在示例上测试开发的算法,其中示出了噪声相关信息的重要性。

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