Automatic breast masses boundary extraction in digital mammography using spatial fuzzy c-means clustering and active contour models

Arianna Mencattini, Marcello Salmeri, Paola Casti, Grazia Raguso, Samuela L’Abbate, Loredana Chieppa, Antonietta Ancona, Fabio Felice Mangieri, Maria Luisa Pepe · 2011

In this paper, we propose a novel approach for the automatic breast boundary segmentation using spatial fuzzy c-means clustering and active contours models. We will evaluate the performance of the approach on screen film mammographic images digitized by specific scanner devices and full-field digital mammographic images at different spatial and pixel resolutions. Expert radiologists have supplied the reference boundary for the massive lesions along with the biopsy proven pathology assessment. A performance assessment procedure will be developed considering metrics such as precision, recall, F-measure, and accuracy of the segmentation results. A Montecarlo simulation will be also implemented to evaluate the sensitivity of the boundary extracted on the initial settings and on the image noise.

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