Learning to detect chest radiographs containing lung nodules using visual attention networks
Emanuele Pesce, Petros-Pavlos Ypsilantis, Samuel Withey, Robert, Bakewell, Vicky Goh, Giovanni Montana

TL;DR
This study demonstrates that convolutional neural networks with visual attention mechanisms can effectively detect lung nodules in chest radiographs using weak labels from radiological reports, reducing the need for extensive manual annotations.
Contribution
The paper introduces two novel neural network architectures that leverage weak labels and annotated bounding boxes for improved lung nodule detection and localization in chest radiographs.
Findings
High detection accuracy achieved with weakly labeled data.
Attention mechanisms improve localization performance.
Reinforcement learning enhances focus on relevant image regions.
Abstract
Machine learning approaches hold great potential for the automated detection of lung nodules in chest radiographs, but training the algorithms requires vary large amounts of manually annotated images, which are difficult to obtain. Weak labels indicating whether a radiograph is likely to contain pulmonary nodules are typically easier to obtain at scale by parsing historical free-text radiological reports associated to the radiographs. Using a repositotory of over 700,000 chest radiographs, in this study we demonstrate that promising nodule detection performance can be achieved using weak labels through convolutional neural networks for radiograph classification. We propose two network architectures for the classification of images likely to contain pulmonary nodules using both weak labels and manually-delineated bounding boxes, when these are available. Annotated nodules are used at…
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