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Tree-Structured Regression Model Using a Projection Pursuit Approach

Title
Tree-Structured Regression Model Using a Projection Pursuit Approach
Authors
Cho, HyunsunLee, Eun-Kyung
Ewha Authors
이은경
SCOPUS Author ID
이은경scopusscopus
Issue Date
2021
Journal Title
APPLIED SCIENCES-BASEL
ISSN
2076-3417JCR Link
Citation
APPLIED SCIENCES-BASEL vol. 11, no. 21
Keywords
regression treeprojection pursuitexploratory data analysispiecewise regressionrecursive partition
Publisher
MDPI
Indexed
SCIE; SCOPUS WOS scopus
Document Type
Article
Abstract
In this paper, a new tree-structured regression model-the projection pursuit regression tree-is proposed. It combines the projection pursuit classification tree with the projection pursuit regression. The main advantage of the projection pursuit regression tree is exploring the independent variable space in each range of the dependent variable. Additionally, it retains the main properties of the projection pursuit classification tree. The projection pursuit regression tree provides several methods of assigning values to the final node, which enhances predictability. It shows better performance than CART in most cases and sometimes beats random forest with a single tree. This development makes it possible to find a better explainable model with reasonable predictability.
DOI
10.3390/app11219885
Appears in Collections:
자연과학대학 > 통계학전공 > Journal papers
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