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Managing Computer-Assisted Detection System Based on Transfer Learning with Negative Transfer Inhibition

机译:基于转移学习的计算机辅助检测系统与负转移抑制作用

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摘要

The reading workload for radiologists is increasing because the numbers of examinations and images per examination are increasing due to the technical progress on imaging modalities such as computed tomography and magnetic resonance imaging. A computer-assisted detection (CAD) system based on machine learning is expected to assist radiologists. The preliminary results of a multi-institutional study indicate that the performance of the CAD system for each institution improved using training data of other institutions. This indicates that transfer learning may be useful for developing the CAD systems among multiple institutions. In this paper, we focus on transfer learning without sharing training data due to the need to protect personal information in each institution. Moreover, we raise a problem of negative transfer in CAD system and propose an algorithm for inhibiting negative transfer. Our algorithm provides a theoretical guarantee for managing CAD software in terms of transfer learning and exhibits experimentally better performance compared to that of the current algorithm in cerebral aneurysm detection.
机译:放射科学家的阅读工作量正在增加,因为由于计算断层扫描和磁共振成像等成像方式的技术进步,每个检查的检查和图像的数量正在增加。基于机器学习的计算机辅助检测(CAD)系统有助于提供放射科医师。多机构研究的初步结果表明,每个机构的CAD系统的表现改善了其他机构的培训数据。这表明转移学习可能对于在多个机构之间开发CAD系统有用。在本文中,由于需要在每个机构中保护个人信息,我们专注于转移学习而不分享培训数据。此外,我们提出了CAD系统中负转移的问题,提出了一种抑制负转移的算法。我们的算法提供了在转移学习方面管理CAD软件的理论保证,并与脑动脉瘤检测中的当前算法相比表现出实验更好的性能。

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