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Model building using bi-level optimization

机译:使用双层优化进行模型构建

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摘要

In many problems from different disciplines such as engineering, physics, medicine, and biology, a series of experimental data is used in order to generate a model that can describe a system with minimum noise. The procedure for building a model provides a description of the behavior of the system under study and can be used to give a prediction for the future. Herein a novel hierarchical bi-level implementation of the cross validation method is presented. In this bi-level schema, the leader optimization problem builds (training) the model and the follower checks (testing) the developed model. The problem of synthesis and analysis of regulatory networks is used to compare the classical cross validation method to the proposed methodology referred to as bi-level cross validation. In all the examples considered, the bi-level cross validation results in a better model compared with the classical cross validation approach.
机译:在来自不同学科(例如工程,物理学,医学和生物学)的许多问题中,使用一系列实验数据来生成可以描述具有最小噪声的系统的模型。建立模型的过程提供了对所研究系统行为的描述,可用于对未来进行预测。在此,提出了交叉验证方法的新颖的分层双层实现。在这种两级模式中,领导者优化问题建立(训练)模型,跟随者检查(测试)开发的模型。监管网络的综合和分析问题被用来将经典的交叉验证方法与所提出的被称为双层交叉验证的方法进行比较。在所有考虑的示例中,与传统的交叉验证方法相比,双层交叉验证产生了更好的模型。

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