Use este identificador para citar ou linkar para este item: http://www.repositorio.ufop.br/jspui/handle/123456789/7292
Título: A novel hybrid method for the segmentation of the coronary artery tree in 2D angiograms.
Autor(es): Lara, Daniel da Silva Diogo
Faria, Alexandre Wagner Chagas
Araújo, Arnaldo de Albuquerque
Gomes, David Menotti
Palavras-chave: Image segmentation
Angiography
Data do documento: 2013
Referência: LARA, D. da S. D. et al. A novel hybrid method for the segmentation of the coronary artery tree in 2D angiograms. International Journal of Computer Science and Information Technology, v. 5, n. 3, p. 45-65, jun. 2013. Disponível em: <http://airccse.org/journal/jcsit/5313ijcsit04.pdf>. Acesso em: 17 fev. 2017.
Resumo: Nowadays, medical diagnostics using images have considerable importance in many areas of medicine. Specifically, diagnoses of cardiac arteries can be performed by means of digital images. Usually, this diagnostic is aided by computational tools. Generally, automated tools designed to aid in coronary heart diseases diagnosis require the coronary artery tree segmentation. This work presents a method for a semiautomatic segmentation of the coronary artery tree in 2D angiograms. In other to achieve that, a hybrid algorithm based on region growing and differential geometry is proposed. For the validation of our proposal, some objective and quantitative metrics are defined allowing us to compare our method with another one proposed in the literature. From the experiments, we observe that, in average, the proposed method here identifies about 90% of the coronary artery tree while the method proposed by Schrijver & Slump (2002) identifies about 80%.
URI: http://www.repositorio.ufop.br/handle/123456789/7292
Link para o artigo: http://airccse.org/journal/jcsit/5313ijcsit04.pdf
DOI: http://doi.org/10.5121/ijcsit.2013.5304
ISSN: 0975-4660
Aparece nas coleções:DECOM - Artigos publicados em periódicos

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