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Locating hyperplanes to fitting set of points: A general framework

机译:将超平面定位到适合的点集:通用框架

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This paper presents a family of methods for locating/fitting hyperplanes with respect to a given set of points. We introduce a general framework for a family of aggregation criteria, based on ordered weighted operators, of different distance-based errors. The most popular methods found in the specialized literature, namely least sum of squares, least absolute deviation, least quantile of squares or least trimmed sum of squares among many others, can be cast within this family as particular choices of the errors and the aggregation criteria. Unified mathematical programming formulations for these methods are provided and some interesting cases are analyzed. The most general setting give rise to mixed integer nonlinear programming problems. For those situations we present inner and outer linear approximations to assess tractable solution procedures. It is also proposed a new goodness of fitting index which extends the classical coefficient of determination and allows one to compare different fitting hyperplanes. A series of illustrative examples and extensive computational experiments implemented in R are provided to show the applicability of the proposed methods. (C) 2018 Elsevier Ltd. All rights reserved.
机译:本文介绍了一系列针对给定点定位/拟合超平面的方法。我们针对不同距离误差的有序加权运算符,引入了一系列聚合准则的通用框架。在专业文献中发现的最受欢迎的方法,即最小平方和,最小绝对偏差,最小二分位数或最小修整的平方和,除其他外,可以作为错误和聚合标准的特定选择而在该族中使用。 。提供了用于这些方法的统一数学编程公式,并分析了一些有趣的情况。最一般的设置引起混合整数非线性规划问题。对于那些情况,我们提出了内部和外部线性近似来评估可解决的求解程序。还提出了一种拟合指数的新优点,它扩展了经典的确定系数,并允许人们比较不同的拟合超平面。提供了一系列用R语言实现的说明性示例和大量计算实验,以显示所提出方法的适用性。 (C)2018 Elsevier Ltd.保留所有权利。

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