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Модель алгоритма и её выбор

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== Примечания ==
<references/>
 
== Примечания ==
# [https://en.wikipedia.org/wiki/Cross-validation_(statistics) Кросс-валидация]
# [https://link.springer.com/article/10.1023/B:MACH.0000015878.60765.42 Мета-обучение]
# [https://ru.wikipedia.org/wiki/%D0%9E%D0%B1%D1%83%D1%87%D0%B5%D0%BD%D0%B8%D0%B5_%D1%81_%D1%83%D1%87%D0%B8%D1%82%D0%B5%D0%BB%D0%B5%D0%BC Обучение с учителем]
# [https://ru.wikipedia.org/wiki/%D0%9B%D0%B8%D0%BD%D0%B5%D0%B9%D0%BD%D0%B0%D1%8F_%D1%80%D0%B5%D0%B3%D1%80%D0%B5%D1%81%D1%81%D0%B8%D1%8F Линейная регрессия]
# [https://www.fruct.org/publications/ainl-fruct/files/Fil.pdf Datasets Meta-Feature Description for Recommending Feature Selection Algorithm]
# [https://www.ml4aad.org/automated-algorithm-design/algorithm-configuration/smac/ SMAC]
# [https://7bce9816-a-62cb3a1a-s-sites.googlegroups.com/site/automl2017icml/accepted-papers/AutoML_2017_paper_23.pdf?attachauth=ANoY7cr6uPaUoNh3gc3A-A1UbLXQgNEATEkfZmKD8kozB3hpCYtM9JwnOevEsW9W42CwurzJKrxxEatcB4DCjWNB_Ndvy1uC0lbQyCTlDIfrW6eYJXvdbFJPilYfmf8_ryilH0IwG0ddntLYy-VA3Fm1JeM495fTZxorYth0DDKiqtKvSR92dGl8CM_mUB7sun0R6wurCxM36QqcYEaf5kIm13MM0reWlR3aPZVNe_-AefOCpoXznR-wH04mSWjH8jmlk5Bw51AN&attredirects=0 Fast Automated Selection of Learning Algorithm And its Hyperparameters by Reinforcement Learning]
# Shalamov V., Efimova V., Muravyov S., and Filchenkov A. "Reinforcement-based Method for Simultaneous Clustering Algorithm Selection and its Hyperparameters Optimization." Procedia Computer Science 136 (2018): 144-153.
== Источники информации ==
* [http://www.machinelearning.ru/wiki/images/0/05/BMMO11_4.pdf Выбор machinelearning.ru {{---}} Задачи выбора модели] - презентация на MachineLearning.ru* [https://en.wikipedia.org/wiki/Hyperparameter_(machine_learning) ГиперпараметрыWikipedia {{---}} Hyperparameter] - статья на Википедии* [https://machinelearningmastery.com/difference-between-a-parameter-and-a-hyperparameter/ Разница между параметрами и гиперпараметрамиWhat is the Difference Between a Parameter and a Hyperparameter?] - описание разницы между параметрами и гиперпараметрами модели
* [http://jmlda.org/papers/doc/2016/no2/Efimova2016Reinforcement.pdf Применение обучения с подкреплением для одновременного выбора модели алгоритма классификации и ее структурных параметров]
* [https://7bce9816-a-62cb3a1a-s-sites.googlegroups.com/site/automl2017icml/accepted-papers/AutoML_2017_paper_23.pdf?attachauth=ANoY7cr6uPaUoNh3gc3A-A1UbLXQgNEATEkfZmKD8kozB3hpCYtM9JwnOevEsW9W42CwurzJKrxxEatcB4DCjWNB_Ndvy1uC0lbQyCTlDIfrW6eYJXvdbFJPilYfmf8_ryilH0IwG0ddntLYy-VA3Fm1JeM495fTZxorYth0DDKiqtKvSR92dGl8CM_mUB7sun0R6wurCxM36QqcYEaf5kIm13MM0reWlR3aPZVNe_-AefOCpoXznR-wH04mSWjH8jmlk5Bw51AN&attredirects=0 Fast Automated Selection of Learning Algorithm And its Hyperparameters by Reinforcement Learning]
* Shalamov V., Efimova V., Muravyov S., and Filchenkov A. "Reinforcement-based Method for Simultaneous Clustering Algorithm Selection and its Hyperparameters Optimization." Procedia Computer Science 136 (2018): 144-153.
 
[[Категория: Автоматическое машинное обучение]]
[[Категория: Машинное обучение]]
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