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Мета-обучение

6 байт убрано, 00:48, 6 апреля 2019
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| Concept variation || || Task complexity <ref>R. Vilalta. Understanding accuracy performance through concept characterization and algorithm analysis. ICML Workshop on Recent Advances in Meta-Learning and Future Work, 1999.</ref> ||
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| Data consistency || || Data quality <ref>C K\ddot{\"o}pf and I Iglezakis. Combination of task description strategies and case base properties for meta-learning, 2002.</ref> ||
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| colspan="4" align="center" | '''основанные на модели'''
| Landmarker(NB) || $P(\theta_{NB},t_{j})$ || Feature independence || <ref>Daren Ler, Irena Koprinska, and Sanjay Chawla. Utilizing regression-based landmarkers within a meta-learning framework for algorithm selection. \emph{Technical Report 569. University of Sydney}, pages 44--51, 2005.</ref>
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| Relative LM || $P_{a,j} - P_{b,j}$ || Probing performance <ref>J F\ddot{\"u}rnkranz and J Petrak. An evaluation of landmarking variants. \emph{ECML/PKDD 2001 Workshop on Integrating Aspects of Data Mining, Decision Support and Meta-Learning}, pages 57--68, 2001.</ref> ||
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| Subsample LM || $P(\theta_{i},t_{j},s_{t})$ || Probing performance <ref>Taciana AF Gomes, Ricardo BC Prud{\^e}ncioPrudencio, Carlos Soares, Andr{\'e} Andre LD Rossi and Andr{\'e} Andre Carvalho. Combining meta-learning and search techniques to select parameters for support vector machines, 2012.</ref> ||
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