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摘要:
Multi-target regression is concerned with the simultaneous prediction of multiple continuous target variables based on the same set of input variables.It has received relatively small attention from the Machine Learning community.However,multi-target regression exists in many real-world applications.In this paper we conduct extensive experiments to investigate the performance of three representative multi-target regression learning algorithms(i.e.Multi-Target Stacking(MTS),Random Linear Target Combination(RLTC),and Multi-Objective Random Forest(MORF)),comparing the baseline single-target learning.Our experimental results show that all three multi-target regression learning algorithms do improve the performance of the single-target learning.Among them,MTS performs the best,followed by RLTC,followed by MORF.However,the single-target learning sometimes still performs very well,even the best.This analysis sheds the light on multi-target regression learning and indicates that the single-target learning is a competitive baseline for multi-target regression learning on multi-target domains.
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篇名 An Empirical Comparison on Multi-Target Regression Learning
来源期刊 计算机、材料和连续体(英文) 学科 工学
关键词 MULTI-TARGET regression MULTI-LABEL CLASSIFICATION MULTI-TARGET STACKING
年,卷(期) 2018,(8) 所属期刊栏目
研究方向 页码范围 185-198
页数 14页 分类号 TP3
字数 语种
DOI
五维指标
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MULTI-TARGET
regression
MULTI-LABEL
CLASSIFICATION
MULTI-TARGET
STACKING
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引文网络交叉学科
相关学者/机构
期刊影响力
计算机、材料和连续体(英文)
月刊
1546-2218
江苏省南京市浦口区东大路2号东大科技园A
出版文献量(篇)
346
总下载数(次)
4
总被引数(次)
0
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