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A Multi-Organ Nucleus Segmentation Challenge

分割 计算机科学 人工智能 计算机视觉 核心 医学影像学 图像分割 神经科学 生物
作者
Neeraj Kumar,Ruchika Verma,Deepak Anand,Yanning Zhou,Omer Fahri Onder,Efstratios Tsougenis,Hao Chen,Pheng‐Ann Heng,Jiahui Li,Zhiqiang Hu,Yunzhi Wang,Navid Alemi Koohbanani,Mostafa Jahanifar,Neda Zamani Tajeddin,Ali Gooya,Nasir Rajpoot,Xuhua Ren,Sihang Zhou,Qian Wang,Dinggang Shen
出处
期刊:IEEE Transactions on Medical Imaging [Institute of Electrical and Electronics Engineers]
卷期号:39 (5): 1380-1391 被引量:376
标识
DOI:10.1109/tmi.2019.2947628
摘要

Generalized nucleus segmentation techniques can contribute greatly to reducing the time to develop and validate visual biomarkers for new digital pathology datasets. We summarize the results of MoNuSeg 2018 Challenge whose objective was to develop generalizable nuclei segmentation techniques in digital pathology. The challenge was an official satellite event of the MICCAI 2018 conference in which 32 teams with more than 80 participants from geographically diverse institutes participated. Contestants were given a training set with 30 images from seven organs with annotations of 21,623 individual nuclei. A test dataset with 14 images taken from seven organs, including two organs that did not appear in the training set was released without annotations. Entries were evaluated based on average aggregated Jaccard index (AJI) on the test set to prioritize accurate instance segmentation as opposed to mere semantic segmentation. More than half the teams that completed the challenge outperformed a previous baseline. Among the trends observed that contributed to increased accuracy were the use of color normalization as well as heavy data augmentation. Additionally, fully convolutional networks inspired by variants of U-Net, FCN, and Mask-RCNN were popularly used, typically based on ResNet or VGG base architectures. Watershed segmentation on predicted semantic segmentation maps was a popular post-processing strategy. Several of the top techniques compared favorably to an individual human annotator and can be used with confidence for nuclear morphometrics.
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