cs.AI updates on arXiv.org 09月23日
精准肺癌检测:方法评估与挑战
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本文综述了多种用于肺癌检测的方法,包括高级图像处理技术,分析了其在CT扫描、胸部X光片和生物标志物解读中的有效性。文章指出以往研究的不足,强调构建跨人群和成像方式的鲁棒模型的重要性,并探讨了3D CNN架构在CT扫描中的应用及存在的问题。

arXiv:2509.16254v1 Announce Type: cross Abstract: Lung cancer continues to be the predominant cause of cancer-related mortality globally. This review analyzes various approaches, including advanced image processing methods, focusing on their efficacy in interpreting CT scans, chest radiographs, and biological markers. Notably, we identify critical gaps in the previous surveys, including the need for robust models that can generalize across diverse populations and imaging modalities. This comprehensive synthesis aims to serve as a foundational resource for researchers and clinicians, guiding future efforts toward more accurate and efficient lung cancer detection. Key findings reveal that 3D CNN architectures integrated with CT scans achieve the most superior performances, yet challenges such as high false positives, dataset variability, and computational complexity persist across modalities.

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肺癌检测 图像处理 3D CNN CT扫描 挑战
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