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Bagged Boosted Trees for Classification of Ecological Momentary Assessment Data

2016-07-06 · Gerasimos Spanakis, Gerhard Weiss, Anne Roefs

Ecological Momentary Assessment (EMA) data is organized in multiple levels (per-subject, per-day, etc.) and this particular structure should be taken into account in machine learning algorithms used in EMA like decision trees and its variants. We propose a new algorithm called BBT (standing for Bagged Boosted Trees) that is enhanced by a over/under sampling method and can provide better estimates for the conditional class probability function. Experimental results on a real-world dataset show that BBT can benefit EMA data classification and performance.

📄 PDF Abstract BibTeX arXiv:1607.01582

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BIG-bench Machine LearningGeneral Classification

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