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Robust predictor for nonlinear systems based on bounding-error methods

机译:基于边界误差方法的非线性系统鲁棒预测器

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A new robust predictor for nonlinear systems is proposed. The predictor uses a set of system input-output measurements and a local linearization method based on bounded-error to return an interval that bounds the system output. The midpoint of the prediction interval is the optimal solution of an optimization problem which minimizes a quadratic prediction-error functional cost with a regularization term. The width of the prediction interval can be used as a reliability index of this central prediction. Bounded-error methods use an unique error bound applied to all measurements. The main idea of this work is to use a reliability index that provides a different error bound for each measurement. This allows us to apply the proposed method to measurements with outliers or different error bounds. The main contribution of the paper is the explicit expression that provides the prediction interval and assures a low computational effort.
机译:提出了一种新的非线性系统鲁棒预测器。预测器使用一组系统输入-输出测量值和基于有界误差的局部线性化方法来返回对系统输出有界的间隔。预测间隔的中点是优化问题的最佳解决方案,该优化问题可以用正则项最小化二次预测误差功能成本。预测间隔的宽度可以用作该中央预测的可靠性指标。有界误差方法使用适用于所有测量的唯一误差界。这项工作的主要思想是使用可靠性指标,该指标为每次测量提供不同的误差范围。这使我们能够将提出的方法应用于具有异常值或不同误差范围的测量。本文的主要贡献是提供了预测间隔并确保了较低的计算工作量的显式表达式。

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