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Selecting the Optimal System Design under Covariates

机译:选择协变量下的最佳系统设计

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In this research, we consider the ranking and selection problem in the presence of covariates. It is an important problem in personalized decision making. The performance of each design alternative depends on the values of the covariates to the simulation model for which the relationship is hard to describe analytically. Therefore the optimal design under each possible covariate value needs to be estimated by simulation. This work first introduces three measures to evaluate the selection quality over the covariate space and investigates their rate functions of convergence. By optimizing the rate functions, an asymptotically optimal budget allocation rule is developed and a corresponding selection algorithm is devised. We further show that the selection algorithm can recover the asymptotical optimal allocation in the limit. The high efficiency of the selection algorithm is illustrated via numerical testing.
机译:在这项研究中,我们考虑了协调因子存在的排名和选择问题。这是个性化决策中的一个重要问题。每个设计替代方案的性能取决于协调区的仿真模型的值难以分析地描述的模拟模型。因此,需要通过模拟估计每个可能的协变量下的最佳设计。这项工作首先介绍了三项措施,以评估协变量的选择质量,并调查它们的收敛速率。通过优化速率函数,开发了渐近最佳预算分配规则,并设计了相应的选择算法。我们进一步表明,选择算法可以在极限中恢复渐近最佳分配。通过数值测试说明选择算法的高效率。

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