cs.AI updates on arXiv.org 07月08日 13:53
Deep-Learning-Assisted Highly-Accurate COVID-19 Diagnosis on Lung Computed Tomography Images
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本文提出基于GAN和滑动窗口的CT图像质量控制流程,采用LDAM Loss和CB Loss解决数据集长尾问题,模型在基准测试数据集上达到0.983 MCC。

arXiv:2507.04252v1 Announce Type: cross Abstract: COVID-19 is a severe and acute viral disease that can cause symptoms consistent with pneumonia in which inflammation is caused in the alveolous regions of the lungs leading to a build-up of fluid and breathing difficulties. Thus, the diagnosis of COVID using CT scans has been effective in assisting with RT-PCR diagnosis and severity classifications. In this paper, we proposed a new data quality control pipeline to refine the quality of CT images based on GAN and sliding windows. Also, we use class-sensitive cost functions including Label Distribution Aware Loss(LDAM Loss) and Class-balanced(CB) Loss to solve the long-tail problem existing in datasets. Our model reaches more than 0.983 MCC in the benchmark test dataset.

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COVID-19 CT图像 GAN 质量控制 分类模型
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