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Attention 3D Fully Convolutional Neural Network for False Positive Reduction of Lung Nodule Detection

  • Guitao Cao*
  • , Qi Yang
  • , Beichen Zheng
  • , Kai Hou
  • , Jiawei Zhang
  • *此作品的通讯作者
  • East China Normal University
  • Zhongshan Hospital
  • Ltd.
  • Shanghai Open University

科研成果: 书/报告/会议事项章节会议稿件同行评审

摘要

Deep Learning based lung nodule detection is rapidly growing. It is one of the most challenging tasks to increase the true positive while decreasing the false positive. In this paper, we propose a novel attention 3D fully Convolutional Neural Network for lung nodule detection to tackle this problem. It performs automatic suspect localization by a new channel-spatial attention U-Network with Squeeze and Excitation Blocks (U-SENet) for candidate nodules segmentation, following by a Fully Convolutional C3D (FC-C3D) network to reduce the false positives. The weights of spatial units and channels for U-SENet can be adjusted to focus on the regions related to the lung nodules. These candidate nodules are input to FC-C3D network, where the convolutional layers are re-placed by the fully connected layers, so that the size of the input feature map is no longer limited. In addition, voting fusion and weighted average fusion are adopted to improve the efficiency of the network. The experiments we implement demonstrate our model outperforms the other methods in the effectiveness, with the sensitivity up to 93.3 %.

源语言英语
主期刊名Neural Information Processing - 29th International Conference, ICONIP 2022, Proceedings
编辑Mohammad Tanveer, Sonali Agarwal, Seiichi Ozawa, Asif Ekbal, Adam Jatowt
出版商Springer Science and Business Media Deutschland GmbH
337-350
页数14
ISBN(印刷版)9789819916443
DOI
出版状态已出版 - 2023
活动29th International Conference on Neural Information Processing, ICONIP 2022 - Virtual, Online
期限: 22 11月 202226 11月 2022

出版系列

姓名Communications in Computer and Information Science
1793 CCIS
ISSN(印刷版)1865-0929
ISSN(电子版)1865-0937

会议

会议29th International Conference on Neural Information Processing, ICONIP 2022
Virtual, Online
时期22/11/2226/11/22

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