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Updated: Jul 3, 2026

Detection of Architectural Distortion in Prior Mammograms via Analysis of Oriented Patterns
Published on: August 30, 2013
Radiomics-based mammographic abnormality identification via radiologist annotations.
Ravi Bullock1, Yiwen Xu1, Rasika Rajapakshe1
1Department of Medical Physics, BC Cancer, Kelowna, BC V1Y 5L3, Canada.
This study developed a radiomics pipeline to detect abnormalities on mammograms. The models showed promise in distinguishing abnormal from normal breast tissue, aiding breast cancer detection.
Area of Science:
- Medical Imaging
- Artificial Intelligence
- Radiomics
Background:
- Screening mammography is crucial for early breast cancer detection.
- Distinguishing subtle abnormalities from normal tissue remains a challenge.
- Radiomics offers a quantitative approach to analyze medical images.
Purpose of the Study:
- To develop and evaluate a radiomics-based pipeline for identifying suspicious findings on 2D screening mammograms.
- To train machine learning models to differentiate between radiologist-annotated abnormalities and normal breast tissue.
Main Methods:
- A retrospective study analyzed 1604 screening mammograms from 1294 participants.
- Radiomics features were extracted from regions of interest (ROIs) with abnormalities and normal tissue.
- Multiple machine learning classifiers were trained and evaluated using the area under the receiver operating characteristic curve (AUC).
Main Results:
- The radiomics pipeline achieved AUC values ranging from 0.69 to 0.73.
- No significant differences were observed between the performance of different machine learning models.
- The highest nominal performance (AUC: 0.73) was achieved using ANOVA F-score feature selection and Discriminant Analysis (DA).
Conclusions:
- The developed radiomics pipeline demonstrates potential in differentiating abnormalities from normal tissue on screening mammograms.
- Radiomics shows promise for enhancing breast cancer detection and integrating advanced machine learning into screening workflows.
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