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Simultaneous Optimization of Statistical Model and Control Input Plan

机译:统计模型和控制输入计划的同时优化

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In this paper, we develop a simultaneous optimization problem of a statistical model and a control input plan. The aim of this problem is to obtain a high accuracy control input plan by using a statistical model with high generalization ability at important covariate values in determining a control input plan. We use covariate shift adaptation as the method to construct a statistical model. This enables us to construct the model with high generalization ability at a test distribution that is a specific covariate value's distribution. Concretely, we address a problem in which the controlled variable's prediction is improved by arbitrarily moving the test distribution. As the statistical model changes by covariate shift adaptation, the optimal plan of control inputs based on them also changes, so this problem becomes a problem of simultaneously optimizing the statistical model and the control input plan. To solve this problem, we propose an iterative alternate optimization method. We illustrate the effectiveness of the proposed method by using a simple numerical example of a charge/discharge plan problem of a storage battery.
机译:在本文中,我们开发了统计模型和控制输入计划的同时优化问题。该问题的目的是通过在确定控制输入计划时在重要的协变量值上使用具有高泛化能力的统计模型来获得高精度的控制输入计划。我们使用协变量移位适应作为构建统计模型的方法。这使我们能够在作为特定协变量值分布的测试分布处构建具有高泛化能力的模型。具体而言,我们解决了一个问题,即通过任意移动测试分布可以改善控制变量的预测。当统计模型通过协变量移位自适应而改变时,基于它们的控制输入的最优计划也改变,因此该问题成为同时优化统计模型和控制输入计划的问题。为了解决这个问题,我们提出了一种迭代替代优化方法。我们通过使用一个简单的数值示例的蓄电池充放电计划问题来说明所提出方法的有效性。

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