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Flexible and comprehensive R toolbox for model-based optimization ('MBO'), also known as Bayesian optimization. It implements the Efficient Global Optimization Algorithm and is designed for both single- and multi- objective optimization with mixed continuous, categorical and conditional parameters. The machine learning toolbox 'mlr' provide dozens of regression learners to model the performance of the target algorithm with respect to the parameter settings. It provides many different infill criteria to guide the search process. Additional features include multi-point batch proposal, parallel execution as well as visualization and sophisticated logging mechanisms, which is especially useful for teaching and understanding of algorithm behavior. 'mlrMBO' is implemented in a modular fashion, such that single components can be easily replaced or adapted by the user for specific use cases.

copied from cf-staging / r-mlrmbo
Type Size Name Uploaded Downloads Labels
conda 600.2 kB | win-64/r-mlrmbo-1.1.3-r36hda5aaf8_0.tar.bz2  5 years and 1 month ago 1153 main cf202003
conda 593.9 kB | win-64/r-mlrmbo-1.1.3-r35hda5aaf8_0.tar.bz2  5 years and 1 month ago 1157 main cf202003
conda 566.7 kB | osx-64/r-mlrmbo-1.1.3-r35h17f1fa6_0.tar.bz2  5 years and 1 month ago 344 main cf202003
conda 571.4 kB | osx-64/r-mlrmbo-1.1.3-r36h17f1fa6_0.tar.bz2  5 years and 1 month ago 340 main cf202003
conda 574.1 kB | linux-64/r-mlrmbo-1.1.3-r36hcdcec82_0.tar.bz2  5 years and 1 month ago 3273 main cf202003
conda 569.4 kB | linux-64/r-mlrmbo-1.1.3-r35hcdcec82_0.tar.bz2  5 years and 1 month ago 3371 main cf202003

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