Nonsmooth Optimization Algorithm for Solving Clusterwise Linear Regression Problems

被引:1
|
作者
Adil M. Bagirov
Julien Ugon
Hijran G. Mirzayeva
机构
[1] Federation University Australia,School of Science, Information Technology and Engineering, Faculty of Science
来源
Journal of Optimization Theory and Applications | 2015年 / 164卷
关键词
Nonsmooth optimization; Nonconvex optimization; Clusterwise linear regression; Discrete gradient method; 65K05; 90C25;
D O I
暂无
中图分类号
学科分类号
摘要
Clusterwise linear regression consists of finding a number of linear regression functions each approximating a subset of the data. In this paper, the clusterwise linear regression problem is formulated as a nonsmooth nonconvex optimization problem and an algorithm based on an incremental approach and on the discrete gradient method of nonsmooth optimization is designed to solve it. This algorithm incrementally divides the whole dataset into groups which can be easily approximated by one linear regression function. A special procedure is introduced to generate good starting points for solving global optimization problems at each iteration of the incremental algorithm. The algorithm is compared with the multi-start Späth and the incremental algorithms on several publicly available datasets for regression analysis.
引用
收藏
页码:755 / 780
页数:25
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