Symbolic-regression boosting

被引:0
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作者
Moshe Sipper
Jason H. Moore
机构
[1] Ben-Gurion University,Department of Computer Science
[2] University of Pennsylvania,Institute for Biomedical Informatics
关键词
Symbolic regression; Gradient boosting; Genetic programming;
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摘要
Modifying standard gradient boosting by replacing the embedded weak learner in favor of a strong(er) one, we present SyRBo: symbolic-regression boosting. Experiments over 98 regression datasets show that by adding a small number of boosting stages—between 2 and 5—to a symbolic regressor, statistically significant improvements can often be attained. We note that coding SyRBo on top of any symbolic regressor is straightforward, and the added cost is simply a few more evolutionary rounds. SyRBo is essentially a simple add-on that can be readily added to an extant symbolic regressor, often with beneficial results.
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页码:357 / 381
页数:24
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