Computerized Analysis of Mammographic Images for Detection and Characterization of Breast Cancer

Computerized Analysis of Mammographic Images for Detection and Characterization of Breast Cancer
Author: Arianna Mencattini
Publisher: Springer Nature
Total Pages: 166
Release: 2022-05-31
Genre: Technology & Engineering
ISBN: 3031016645


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The identification and interpretation of the signs of breast cancer in mammographic images from screening programs can be very difficult due to the subtle and diversified appearance of breast disease. This book presents new image processing and pattern recognition techniques for computer-aided detection and diagnosis of breast cancer in its various forms. The main goals are: (1) the identification of bilateral asymmetry as an early sign of breast disease which is not detectable by other existing approaches; and (2) the detection and classification of masses and regions of architectural distortion, as benign lesions or malignant tumors, in a unified framework that does not require accurate extraction of the contours of the lesions. The innovative aspects of the work include the design and validation of landmarking algorithms, automatic Tabár masking procedures, and various feature descriptors for quantification of similarity and for contour independent classification of mammographic lesions. Characterization of breast tissue patterns is achieved by means of multidirectional Gabor filters. For the classification tasks, pattern recognition strategies, including Fisher linear discriminant analysis, Bayesian classifiers, support vector machines, and neural networks are applied using automatic selection of features and cross-validation techniques. Computer-aided detection of bilateral asymmetry resulted in accuracy up to 0.94, with sensitivity and specificity of 1 and 0.88, respectively. Computer-aided diagnosis of automatically detected lesions provided sensitivity of detection of malignant tumors in the range of [0.70, 0.81] at a range of falsely detected tumors of [0.82, 3.47] per image. The techniques presented in this work are effective in detecting and characterizing various mammographic signs of breast disease.


Computerized Analysis of Mammographic Images for Detection and Characterization of Breast Cancer
Language: en
Pages: 166
Authors: Arianna Mencattini
Categories: Technology & Engineering
Type: BOOK - Published: 2022-05-31 - Publisher: Springer Nature

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The identification and interpretation of the signs of breast cancer in mammographic images from screening programs can be very difficult due to the subtle and d
Computer-Aided Detection of Architectural Distortion in Prior Mammograms of Interval Cancer
Language: en
Pages: 176
Authors: Shantanu Banik
Categories: Technology & Engineering
Type: BOOK - Published: 2022-05-31 - Publisher: Springer Nature

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Architectural distortion is an important and early sign of breast cancer, but because of its subtlety, it is a common cause of false-negative findings on screen
State Of The Art In Digital Mammographic Image Analysis
Language: en
Pages: 307
Authors: Sue Astley
Categories: Computers
Type: BOOK - Published: 1994-07-26 - Publisher: World Scientific

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This book provides a detailed assessment of the state of the art in automated techniques for the analysis of digital mammogram images. Topics covered include a
Fractal Analysis of Breast Masses in Mammograms
Language: en
Pages: 120
Authors: Thanh M. Cabral
Categories: Technology & Engineering
Type: BOOK - Published: 2012-10-01 - Publisher: Morgan & Claypool Publishers

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Fractal analysis is useful in digital image processing for the characterization of shape roughness and gray-scale texture or complexity. Breast masses present s
Digital Mammography
Language: en
Pages: 222
Authors: Ulrich Bick
Categories: Medical
Type: BOOK - Published: 2010-03-11 - Publisher: Springer Science & Business Media

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Digital Radiography has been ? rmly established in diagnostic radiology during the last decade. Because of the special requirements of high contrast and spatial