Distributionally Robust Kalman Filtering With Volatility Uncertainty

IF 7 1区 计算机科学 Q1 AUTOMATION & CONTROL SYSTEMS IEEE Transactions on Automatic Control Pub Date : 2024-12-25 DOI:10.1109/TAC.2024.3522192
Bingyan Han
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Abstract

This work presents a distributionally robust Kalman filter to address uncertainties in noise covariance matrices and predicted covariance estimates. We adopt a distributionally robust formulation using bicausal optimal transport to characterize a set of plausible alternative models. The optimization problem is transformed into a convex nonlinear semi-definite programming problem and solved using the trust-region interior point method with the aid of $LDL^\top$ decomposition. The empirical outperformance is demonstrated through target tracking and pairs trading.
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具有波动不确定性的分布鲁棒卡尔曼滤波
这项工作提出了一个分布鲁棒卡尔曼滤波器,以解决噪声协方差矩阵和预测协方差估计中的不确定性。我们采用一种分布稳健的公式,使用双因果最优运输来表征一组合理的替代模型。将优化问题转化为凸非线性半定规划问题,利用信赖域内点法,结合$LDL^\top$分解进行求解。通过目标跟踪和配对交易证明了实证的优异表现。
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来源期刊
IEEE Transactions on Automatic Control
IEEE Transactions on Automatic Control 工程技术-工程:电子与电气
CiteScore
11.30
自引率
5.90%
发文量
824
审稿时长
9 months
期刊介绍: In the IEEE Transactions on Automatic Control, the IEEE Control Systems Society publishes high-quality papers on the theory, design, and applications of control engineering. Two types of contributions are regularly considered: 1) Papers: Presentation of significant research, development, or application of control concepts. 2) Technical Notes and Correspondence: Brief technical notes, comments on published areas or established control topics, corrections to papers and notes published in the Transactions. In addition, special papers (tutorials, surveys, and perspectives on the theory and applications of control systems topics) are solicited.
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