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Breast Density Classification Using Multiple Feature Selection (CROSBI ID 188669)

Prilog u časopisu | izvorni znanstveni rad | međunarodna recenzija

Muštra, Mario ; Grgić, Mislav ; Delač, Krešimir Breast Density Classification Using Multiple Feature Selection // Automatika : časopis za automatiku, mjerenje, elektroniku, računarstvo i komunikacije, 53 (2012), 4; 362-372. doi: 10.7305/automatika.53-4.281

Podaci o odgovornosti

Muštra, Mario ; Grgić, Mislav ; Delač, Krešimir

engleski

Breast Density Classification Using Multiple Feature Selection

Mammography as an x-ray method usually gives good results for lower density breasts while higher breast tissue densities significantly reduce the overall detection sensitivity and can lead to false negative results. In automatic detection algorithms knowledge about breast density can be useful for setting an appropriate decision threshold in order to produce more accurate detection. Because the overall intensity of mammograms is not directly correlated with the breast density we have decided to observe breast density as a texture classification problem. In this paper we propose breast density classification using feature selection process for different classifiers based on grayscale features of first and second order. In feature selection process different selection methods were used and obtained results show the improvement on overall classification by choosing the appropriate method and classifier. The classification accuracy has been tested on the mini-MIAS database and KBD-FER digital mammography database with different number of categories for each database. Obtained accuracy stretches between 97.2 % and 76.4 % for different number of categories.

Breast Density; Feature Selection; Haralick Features; Soh Features; Classification

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Podaci o izdanju

53 (4)

2012.

362-372

objavljeno

0005-1144

10.7305/automatika.53-4.281

Povezanost rada

Elektrotehnika, Računarstvo

Poveznice
Indeksiranost