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A brief survey on deep learning based methods for lung cancer classification using computerized tomography scans

机译:基于深度学习的肺癌分类方法简要调查,计算机层压扫描扫描

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In this paper, we present a brief but critic survey of deep learning approaches in solving the remarkable task of lung cancer detection using computerized tomography scans. This is a survey paper that is intended to give the reader the cuttingedge algorithms to solve this task. We reviewed over 20 papers related to this topic to cover the best methods to approach this problem. In addition, our work develops a review not only in the algorithm, but also in the input dataset, the computerized tomography scans. At the end, we conclude with a summary of the current state-of-the-art methods, an overall analysis of the algorithms revised and some considerations to solve the lung cancer classification task in computerized tomography.
机译:在本文中,我们介绍了使用计算机层面扫描解决肺癌检测显着任务的深度学习方法的简要但批评批评。这是一个调查纸,旨在为读者提供Captege算法来解决这项任务。我们审查了与本主题相关的20篇论文,以涵盖接受此问题的最佳方法。此外,我们的工作不仅在算法中开发了审查,而且在输入数据集中开发审查,计算机层面扫描扫描。最后,我们总结了目前最先进的方法的总结,对修订的算法的总体分析以及解决计算机断层扫描中肺癌分类任务的一些考虑因素。

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