分段回归
计算机科学
分段线性函数
回归
分段
人工智能
线性回归
回归分析
断点
机器学习
模式识别(心理学)
算法
统计
数学
贝叶斯多元线性回归
生物
基因
数学分析
染色体易位
生物化学
几何学
作者
Zeynep Önder,Ali Değırmencı,Ömer Karal
标识
DOI:10.1109/asyu56188.2022.9925406
摘要
© 2022 IEEE.Nowadays there are many methods to explain non-linear behavior. However, among them, Piecewise Linear (PWL) regression has received a lot of attention in recent years. Accurate estimation of breakpoints is critical in the PWL model, which compresses nonlinear relationships at breakpoints and exhibits linear behavior between two breakpoints. The aim of this study is to determine the location of the break points in the most useful way by using decision tree regressor and k-means clustering, which are machine learning-based methods. From the experimental results, it was observed that the accuracy of the k-Means clustering method (98%) was higher than the decision tree regressor method (96%).
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