nnDetection: A Self-configuring Method for Medical Object Detection

被引:59
|
作者
Baumgartner, Michael [1 ]
Jaeger, Paul F. [2 ]
Isensee, Fabian [1 ,3 ]
Maier-Hein, Klaus H. [1 ,4 ]
机构
[1] German Canc Res Ctr, Div Med Image Comp, Heidelberg, Germany
[2] German Canc Res Ctr, Interact Machine Learning Grp, Heidelberg, Germany
[3] German Canc Res Ctr, HIP Appl Comp Vis Lab, Heidelberg, Germany
[4] Heidelberg Univ Hosp, Pattern Anal & Learning Grp, Heidelberg, Germany
关键词
NODULES;
D O I
10.1007/978-3-030-87240-3_51
中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
Simultaneous localisation and categorization of objects in medical images, also referred to as medical object detection, is of high clinical relevance because diagnostic decisions often depend on rating of objects rather than e.g. pixels. For this task, the cumbersome and iterative process of method configuration constitutes a major research bottleneck. Recently, nnU-Net has tackled this challenge for the task of image segmentation with great success. Following nnU-Net's agenda, in this work we systematize and automate the configuration process for medical object detection. The resulting self-configuring method, nnDetection, adapts itself without any manual intervention to arbitrary medical detection problems while achieving results en par with or superior to the state-of-the-art. We demonstrate the effectiveness of nnDetection on two public benchmarks, ADAM and LUNA16, and propose 11 further medical object detection tasks on public data sets for comprehensive method evaluation. Code is at https://github.com/MIC-DKFZ/nnDetection.
引用
收藏
页码:530 / 539
页数:10
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