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Exploring active learning based on representativeness and uncertainty for biomedical data classification

Exploring active learning based on representativeness and uncertainty for biomedical data classification

Rafael S. Bressan, Guilherme Camargo, Pedro Henrique Bugatti, Priscila Tiemi Maeda Saito

ARTIGO

Inglês

Abstract: Nowadays, there is an abundance of biomedical data, such as images and genetic sequences, among others. However, there is a lack of annotation to such volume of data, due to the high costs involved to perform this task. Thus, it is mandatory to develop techniques to ease the burden of... Ver mais

COORDENAÇÃO DE APERFEIÇOAMENTO DE PESSOAL DE NÍVEL SUPERIOR - CAPES

FUNDAÇÃO ARAUCÁRIA DE APOIO AO DESENVOLVIMENTO CIENTÍFICO E TECNOLÓGICO DO ESTADO DO PARANÁ - FA

CONSELHO NACIONAL DE DESENVOLVIMENTO CIENTÍFICO E TECNOLÓGICO - CNPQ

431668/2016-7; 422811/2016-5

Fechado

Exploring active learning based on representativeness and uncertainty for biomedical data classification

Rafael S. Bressan, Guilherme Camargo, Pedro Henrique Bugatti, Priscila Tiemi Maeda Saito

										

Exploring active learning based on representativeness and uncertainty for biomedical data classification

Rafael S. Bressan, Guilherme Camargo, Pedro Henrique Bugatti, Priscila Tiemi Maeda Saito

    Fontes

    IEEE journal of biomedical and health informatics (Fonte avulsa)