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INFORMER-Interpretability-Founded Monitoring of Medical Image Deep Learning Models: Application to Chest X-ray
Shelley Zixin Shu1, Aurélie Pahud de Mortanges2, Alexander Poellinger2
1ARTORG Center for Biomedical Engineering Research, Bern, Switzerland. zixin.shu@unibe.ch.
Abstract:
Deep learning has demonstrated strong performance in medical imaging. However, its limited interpretability remains a major barrier to clinical trust and safe deployment. This limitation is particularly relevant in multi-label classification, where quality control methods are still underdeveloped and commonly rely only on model outputs, without incorporating gradient-level information that may better reflect prediction reliability. In this study, we propose a quality control framework for multi-label medical image classification that improves both reliability and interpretability. The framework includes a graph-based class-distinctiveness method that analyzes saliency-derived information to identify unreliable predictions, as well as a retrieval-based extension that provides case-based explanations for flagged outputs. The proposed methods were evaluated on the CheXpert dataset and compared with established output-based quality control approaches. Robustness was assessed using bootstrapped test sets, and differences in ranking across bootstrap samples were analyzed using the Wilcoxon signed-rank test. The proposed framework outperformed baseline methods, achieving a higher mean F1 score (0.574 vs. 0.563), while the best-performing variant showed higher sensitivity (0.752 vs. 0.700). In bootstrapped analyses, it achieved better mean ranks than the baseline approaches. Averaged across input-image noise levels of 0.001-0.005, under IxG-based evaluation, the proposed framework showed improvements in bootstrapped F1 over the baseline, with the retrieval-based variant achieving a 21.92% improvement and the corresponding non-retrieval variant achieving a 13.53% improvement. Clinicians further evaluated the retrieved examples to determine their relevance for interpreting flagged predictions. These findings indicate that gradient-level and graph-based analysis can enhance the effectiveness, transparency, and clinical applicability of quality control in multi-label medical image classification.
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Definition and Purpose
An X-ray, or radiograph, is a non-invasive method that uses ionizing radiation to take images of internal structures. It is mainly used in cardiac imaging to examine the heart, lungs, and major blood vessels, aiming to identify abnormalities in the heart's size, shape, and position, such as heart failure, congenital defects, and vascular...
X-ray Imaging