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IEEE transactions on pattern analysis and machine intelligence. 2024 Apr;46(4):2316-2332. doi: 10.1109/TPAMI.2023.3330825 Q118.62025

Revisiting Computer-Aided Tuberculosis Diagnosis

重新审视计算机辅助结核病诊断 翻译改进

Yun Liu, Yu-Huan Wu, Shi-Chen Zhang, Li Liu, Min Wu, Ming-Ming Cheng

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DOI: 10.1109/TPAMI.2023.3330825 PMID: 37934644

摘要 Ai翻译

Tuberculosis (TB) is a major global health threat, causing millions of deaths annually. Although early diagnosis and treatment can greatly improve the chances of survival, it remains a major challenge, especially in developing countries. Recently, computer-aided tuberculosis diagnosis (CTD) using deep learning has shown promise, but progress is hindered by limited training data. To address this, we establish a large-scale dataset, namely the Tuberculosis X-ray (TBX11 K) dataset, which contains 11 200 chest X-ray (CXR) images with corresponding bounding box annotations for TB areas. This dataset enables the training of sophisticated detectors for high-quality CTD. Furthermore, we propose a strong baseline, SymFormer, for simultaneous CXR image classification and TB infection area detection. SymFormer incorporates Symmetric Search Attention (SymAttention) to tackle the bilateral symmetry property of CXR images for learning discriminative features. Since CXR images may not strictly adhere to the bilateral symmetry property, we also propose Symmetric Positional Encoding (SPE) to facilitate SymAttention through feature recalibration. To promote future research on CTD, we build a benchmark by introducing evaluation metrics, evaluating baseline models reformed from existing detectors, and running an online challenge. Experiments show that SymFormer achieves state-of-the-art performance on the TBX11 K dataset.

Keywords:computer-aided diagnosis

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期刊名:Ieee transactions on pattern analysis and machine intelligence

缩写:IEEE T PATTERN ANAL

ISSN:0162-8828

e-ISSN:1939-3539

IF/分区:18.6/Q1

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Revisiting Computer-Aided Tuberculosis Diagnosis