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Entree


Case Recommender: A Flexible and Extensible Python Framework for Recommender Systems

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Autor(es):
da Costa, Arthur ; Fressato, Eduardo ; Neto, Fernando ; Manzato, Marcelo ; Campello, Ricardo ; ACM
Número total de Autores: 6
Tipo de documento: Artigo Científico
Fonte: 12TH ACM CONFERENCE ON RECOMMENDER SYSTEMS (RECSYS); v. N/A, p. 2-pg., 2018-01-01.
Resumo

This paper presents a polished open-source Python-based recommender framework named Case Recommender, which provides a rich set of components from which developers can construct and evaluate customized recommender systems. It implements well-known and state-of-the-art algorithms in rating prediction and item recommendation scenarios. The main advantage of the Case Recommender is the possibility to integrate clustering and ensemble algorithms with recommendation engines, easing the development of more accurate and efficient approaches. (AU)

Processo FAPESP: 16/20280-6 - Organização Semântica de Anotações Colaborativas de Usuários Aplicada em Sistemas de Recomendação
Beneficiário:Marcelo Garcia Manzato
Modalidade de apoio: Auxílio à Pesquisa - Regular