Computer-Aided Detection of Architectural Distortion in Prior Mammograms of Interval Cancer
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Computer-Aided Detection of Architectural Distortion in Prior Mammograms of Interval Cancer

Shantanu Banik, Rangaraj Rangayyan, J.E. Leo Desautels

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Computer-Aided Detection of Architectural Distortion in Prior Mammograms of Interval Cancer

Shantanu Banik, Rangaraj Rangayyan, J.E. Leo Desautels

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À propos de ce livre

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 screening mammograms. Screening mammograms obtained prior to the detection of cancer could contain subtle signs of early stages of breast cancer, in particular, architectural distortion. This book presents image processing and pattern recognition techniques to detect architectural distortion in prior mammograms of interval-cancer cases. The methods are based upon Gabor filters, phase portrait analysis, procedures for the analysis of the angular spread of power, fractal analysis, Laws' texture energy measures derived from geometrically transformed regions of interest (ROIs), and Haralick's texture features. With Gabor filters and phase-portrait analysis, 4, 224 ROIs were automatically obtained from 106 prior mammograms of 56 interval-cancer cases, including 301 true-positive ROIs related to architectural distortion, and from 52 mammograms of 13 normal cases. For each ROI, the fractal dimension, the entropy of the angular spread of power, 10 Laws' texture energy measures, and Haralick's 14 texture features were computed. The areas under the receiver operating characteristic (ROC) curves obtained using the features selected by stepwise logistic regression and the leave-one-image-out method are 0.77 with the Bayesian classifier, 0.76 with Fisher linear discriminant analysis, and 0.79 with a neural network classifier. Free-response ROC analysis indicated sensitivities of 0.80 and 0.90 at 5.7 and 8.8 false positives (FPs) per image, respectively, with the Bayesian classifier and the leave-one-image-out method. The present study has demonstrated the ability to detect early signs of breast cancer 15 months ahead of the time of clinical diagnosis, on the average, for interval-cancer cases, with a sensitivity of 0.8 at 5.7 FP/image. The presented computer-aided detection techniques, dedicated to accurate detection and localization of architectural distortion, could lead to efficient detection of early and subtle signs of breast cancer at pre-mass-formation stages. Table of Contents: Introduction / Detection of Early Signs of Breast Cancer / Detection and Analysis of Oriented Patterns / Detection of Potential Sites of Architectural Distortion / Experimental Set Up and Datasets / Feature Selection and Pattern Classification / Analysis of Oriented Patterns Related to Architectural Distortion / Detection of Architectural Distortion in Prior Mammograms / Concluding Remarks

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Informations

Éditeur
Springer
Année
2022
ISBN
9783031016561

Table des matiĂšres

  1. Cover
  2. Copyright Page
  3. Title Page
  4. Dedication
  5. Contents
  6. Preface
  7. Acknowledgments
  8. List of Symbols and Abbreviations
  9. Introduction
  10. Detection of Early Signs of Breast Cancer
  11. Detection and Analysis of Oriented Patterns
  12. Detection of Potential Sites of Architectural Distortion
  13. Experimental Set Up and Datasets
  14. Feature Selection and Pattern Classification
  15. Analysis of Oriented Patterns Related to Architectural Distortion
  16. Detection of Architectural Distortion in Prior Mammograms
  17. Concluding Remarks
  18. List of Empirically Selected Parameters
  19. References
  20. Authors’ Biographies
Normes de citation pour Computer-Aided Detection of Architectural Distortion in Prior Mammograms of Interval Cancer

APA 6 Citation

Banik, S., Rangayyan, R., & Desautels, L. (2013). Computer-Aided Detection of Architectural Distortion in Prior Mammograms of Interval Cancer ([edition unavailable]). Springer International Publishing. Retrieved from https://www.perlego.com/book/3706350/computeraided-detection-of-architectural-distortion-in-prior-mammograms-of-interval-cancer-pdf (Original work published 2013)

Chicago Citation

Banik, Shantanu, Rangaraj Rangayyan, and Leo Desautels. (2013) 2013. Computer-Aided Detection of Architectural Distortion in Prior Mammograms of Interval Cancer. [Edition unavailable]. Springer International Publishing. https://www.perlego.com/book/3706350/computeraided-detection-of-architectural-distortion-in-prior-mammograms-of-interval-cancer-pdf.

Harvard Citation

Banik, S., Rangayyan, R. and Desautels, L. (2013) Computer-Aided Detection of Architectural Distortion in Prior Mammograms of Interval Cancer. [edition unavailable]. Springer International Publishing. Available at: https://www.perlego.com/book/3706350/computeraided-detection-of-architectural-distortion-in-prior-mammograms-of-interval-cancer-pdf (Accessed: 15 October 2022).

MLA 7 Citation

Banik, Shantanu, Rangaraj Rangayyan, and Leo Desautels. Computer-Aided Detection of Architectural Distortion in Prior Mammograms of Interval Cancer. [edition unavailable]. Springer International Publishing, 2013. Web. 15 Oct. 2022.