Automated classification of fat- infiltrated axillary lymph nodes on screening mammograms

被引:2
作者
Song, Qingyuan [1 ]
Alexander, Roberta M. Diflorio- [2 ]
Sieberg, Ryan T. [3 ]
Dwan, Dennis [4 ]
Boyce, William [2 ,5 ]
Stumetz, Kyle [2 ]
Karagas, Margaret R.
Mackenzie, Todd A. [1 ]
Hassanpour, Saeed [1 ,6 ,7 ]
机构
[1] Dartmouth Coll, Geisel Sch Med, Dept Biomed Data Sci, Lebanon, NH 03756 USA
[2] Dartmouth Hitchcock Med Ctr, Dept Radiol, Lebanon, NH USA
[3] Univ Calif San Francisco, Sch Med, Dept Radiol, San Francisco, CA USA
[4] Carney Hosp, Dept Internal Med, Dorchester, MA USA
[5] Dartmouth Coll, Geisel Sch Med, Lebanon, NH USA
[6] Dartmouth Coll, Geisel Sch Med, Dept Epidemiol, Lebanon, NH 03756 USA
[7] Dartmouth Coll, Dept Comp Sci, Hanover, NH 03755 USA
关键词
ARTERIAL CALCIFICATIONS; CARDIOVASCULAR-DISEASE; OBESITY;
D O I
10.1259/bjr.20220835
中图分类号
R8 [特种医学]; R445 [影像诊断学];
学科分类号
1002 ; 100207 ; 1009 ;
摘要
Objective: Fat-infiltrated axillary lymph nodes (LNs) are unique sites for ectopic fat deposition. Early studies showed a strong correlation between fatty LNs and obesity-related diseases. Confirming this correlation requires large -scale studies, hindered by scarce labeled data. With the long -term goal of developing a rapid and generalizable tool to aid data labeling, we developed an automated deep learning (DL) -based pipeline to classify the status of fatty LNs on screening mammograms. Methods: Our internal data set included 886 mammograms from a tertiary academic medical institution, with a binary status of the fat-infiltrated LNs based on the size and morphology of the largest visible axillary LN. A two -stage DL model training and fine-tuning pipeline was developed to classify the fat-infiltrated LN status using the internal training and development data set. The model was evaluated on a held -out internal test set and a subset of the Digital Database for Screening Mammography. Results: Our model achieved 0.97 (95% CI: 0.94-0.99) accuracy and 1.00 (95% CI: 1.00-1.00) area under the receiver operator characteristic curve on 264 internal testing mammograms, and 0.82 (95% CI: 0.77-0.86) accuracy and 0.87 (95% CI: 0.82-0.91) area under the receiver operator characteristic curve on 70 external testing mammograms. Conclusion: This study confirmed the feasibility of using a DL model for fat-infiltrated LN classification. The model provides a practical tool to identify fatty LNs on mammograms and to allow for future large -scale studies to evaluate the role of fatty LNs as an imaging biomarker of obesity-associated pathologies. Advances in knowledge: Our study is the first to classify fatty LNs using an automated DL approach.
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页数:9
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