Université Blida 1

Reinforcement Learning Based Uncertain Pattern Mining

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dc.contributor.author Elamrani, FatimaZahra
dc.contributor.author Mouloud, Chaima
dc.contributor.author Zahra, Fatma Zohra ( Promotrice)
dc.date.accessioned 2023-01-30T10:58:54Z
dc.date.available 2023-01-30T10:58:54Z
dc.date.issued 2022
dc.identifier.uri https://di.univ-blida.dz/jspui/handle/123456789/20744
dc.description ill., Bibliogr. ma-004-897 fr_FR
dc.description.abstract Pattern mining consists of finding interesting, useful and pertinent patterns (data structures) that exist among large amount of data. These discovered patterns can be used as actionable knowledge directly or they can be used by other data mining methods as an input. Itemsets represent the most basic type of pattern and are the most treated in this field. In the real world, the actual data is for the most part uncertain. Indeed, we are interested in our work on this type of data, and as a result, our work consists of providing an approach for extracting frequent itemsets from uncertain data using deep reinforcement learning, which has had a lot of success in a variety of domains. Keywords: frequent itemset mining, high utility itemset mining, uncertain data, reinforcement learning, deep learning. fr_FR
dc.language.iso en fr_FR
dc.publisher Université Blida 1 fr_FR
dc.subject Frequent itemset mining fr_FR
dc.subject High utility itemset mining fr_FR
dc.subject Uncertain data fr_FR
dc.subject Reinforcement learning fr_FR
dc.subject Deep learning. fr_FR
dc.title Reinforcement Learning Based Uncertain Pattern Mining fr_FR
dc.type Thesis fr_FR


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