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Detection, Synthesis and Compression in Mammographic Image Analysis with a Hierarchical Image Probability Model

Published: 09 December 2001 Publication History
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  • Abstract

    We develop a probability model over image spaces and demonstrate its broad utility in mammographic imageanalysis. The model employs a pyramid representation to factor images across scale and a tree-structured set of hidden variables to capture long-range spatial dependencies. This factoring makes the computation of the density functions local and tractable. The result is a hierarchical mixture of conditional probabilities, similar to a hidden Markov model on a tree. The model parameters are found with maximum likelihood estimation using the EM algorithm. The utility of the model is demonstrated for three applications; 1) detection of mammographic masses in computer-aided diagnosis 2) qualitative assessment of model structure through mammographic synthesis and 3) compression of mammographicregions of interest.

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    • (2016)Constant time expected similarity estimation for large-scale anomaly detectionProceedings of the Twenty-second European Conference on Artificial Intelligence10.3233/978-1-61499-672-9-12(12-20)Online publication date: 29-Aug-2016
    • (2011)Preprocessing of screening mammograms based on local statistical modelsProceedings of the 4th International Symposium on Applied Sciences in Biomedical and Communication Technologies10.1145/2093698.2093704(1-4)Online publication date: 26-Oct-2011
    • (2009)Anomaly detectionACM Computing Surveys (CSUR)10.1145/1541880.154188241:3(1-58)Online publication date: 30-Jul-2009
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    Published In

    cover image Guide Proceedings
    MMBIA '01: Proceedings of the IEEE Workshop on Mathematical Methods in Biomedical Image Analysis (MMBIA'01)
    December 2001
    ISBN:0769513360

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    IEEE Computer Society

    United States

    Publication History

    Published: 09 December 2001

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    • (2016)Constant time expected similarity estimation for large-scale anomaly detectionProceedings of the Twenty-second European Conference on Artificial Intelligence10.3233/978-1-61499-672-9-12(12-20)Online publication date: 29-Aug-2016
    • (2011)Preprocessing of screening mammograms based on local statistical modelsProceedings of the 4th International Symposium on Applied Sciences in Biomedical and Communication Technologies10.1145/2093698.2093704(1-4)Online publication date: 26-Oct-2011
    • (2009)Anomaly detectionACM Computing Surveys (CSUR)10.1145/1541880.154188241:3(1-58)Online publication date: 30-Jul-2009
    • (2003)Novelty detectionSignal Processing10.1016/j.sigpro.2003.07.01883:12(2481-2497)Online publication date: 1-Dec-2003

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