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Conf Proc IEEE Eng Med Biol Soc ; 2006: 1972-5, 2006.
Article in English | MEDLINE | ID: mdl-17945686

ABSTRACT

In this paper we investigate the performance of statistical modeling of digital mammograms by means of wavelet domain hidden Markov tree model (WHMT) for its inclusion to a computer-aided diagnostic prompting system for detecting microcalcification (MC) clusters. The system incorporates: (1) gross-segmentation of mammograms for obtaining the breast region; (2) eliminating the pepper-type noise, (3) block-wise wavelet transform of the breast signal and likelihood calculation; (4) image segmentation; (5) postprocessing for retaining MC clusters. FROC curves are obtained for all MC clusters containing mammograms of mini-MIAS database. 100% of true positive cases are detected by the system at 2.9 false positives per case.


Subject(s)
Breast Neoplasms/diagnostic imaging , Calcinosis/diagnostic imaging , Information Storage and Retrieval/methods , Mammography/methods , Pattern Recognition, Automated/methods , Radiographic Image Enhancement/methods , Radiographic Image Interpretation, Computer-Assisted/methods , Algorithms , Artificial Intelligence , Computer Simulation , Female , Humans , Markov Chains , Models, Biological , Models, Statistical , Precancerous Conditions/diagnostic imaging , Reproducibility of Results , Sensitivity and Specificity , Signal Processing, Computer-Assisted
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