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Enhanced algorithm performance for land cover classification from remotely sensed data using bagging and boosting

January 1, 2001

Two ensemble methods, bagging and boosting, were investigated for improving algorithm performance. Our results confirmed the theoretical explanation [1] that bagging improves unstable, but not stable, learning algorithms. While boosting enhanced accuracy of a weak learner, its behavior is subject to the characteristics of each learning algorithm.

Publication Year 2001
Title Enhanced algorithm performance for land cover classification from remotely sensed data using bagging and boosting
DOI 10.1109/36.911126
Authors J.C.-W. Chan, C. Huang, R. DeFries
Publication Type Article
Publication Subtype Journal Article
Series Title IEEE Transactions on Geoscience and Remote Sensing
Index ID 70023633
Record Source USGS Publications Warehouse
USGS Organization Earth Resources Observation and Science (EROS) Center