Medical Artificial Intelligence for Early Detection of Lung Cancer: A Survey
Guohui Cai, Ying Cai, Zeyu Zhang, Yuanzhouhan Cao, Lin Wu, Daji Ergu, Zhinbin Liao, Yang Zhao

TL;DR
This survey reviews recent advances in deep learning techniques for early lung cancer detection through pulmonary nodule analysis, highlighting improvements over traditional methods and discussing ongoing challenges.
Contribution
It provides a comprehensive overview of deep learning applications in lung cancer diagnosis, emphasizing recent progress and future directions.
Findings
Deep learning models outperform traditional methods in nodule classification.
Ensemble and novel deep learning techniques enhance detection accuracy.
Technological advancements continue to improve early lung cancer diagnosis.
Abstract
Lung cancer remains one of the leading causes of morbidity and mortality worldwide, making early diagnosis critical for improving therapeutic outcomes and patient prognosis. Computer-aided diagnosis systems, which analyze computed tomography images, have proven effective in detecting and classifying pulmonary nodules, significantly enhancing the detection rate of early-stage lung cancer. Although traditional machine learning algorithms have been valuable, they exhibit limitations in handling complex sample data. The recent emergence of deep learning has revolutionized medical image analysis, driving substantial advancements in this field. This review focuses on recent progress in deep learning for pulmonary nodule detection, segmentation, and classification. Traditional machine learning methods, such as support vector machines and k-nearest neighbors, have shown limitations, paving the…
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Taxonomy
TopicsRadiomics and Machine Learning in Medical Imaging · COVID-19 diagnosis using AI · Lung Cancer Diagnosis and Treatment
MethodsSupport Vector Machine
