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SFCN-OPI: Detection and Fine-Grained Classification of Nuclei Using Sibling FCN with Objectness Prior Interaction

机译:SFCN-OPI:使用兄弟FCN具有与对象的序列的核心的检测和细粒度分类

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摘要

Cell nuclei detection and fine-grained classification have been fundamental yet challenging problems in histopathology image analysis. Due to the nuclei tiny size, significant inter-/intra-class variances, as well as the inferior image quality, previous automated methods would easily suffer from limited accuracy and robustness. In the meanwhile, existing approaches usually deal with these two tasks independently, which would neglect the close relatedness of them. In this paper, we present a novel method of sibling fully convolutional network with prior objectness interaction (called SFCN-OPI) to tackle the two tasks simultaneously and interactively using a unified end-to-end framework. Specifically, the sibling FCN branches share features in earlier layers while holding respective higher layers for specific tasks. More importantly, the detection branch outputs the objectness prior which dynamically interacts with the fine-grained classification sibling branch during the training and testing processes. With this mechanism, the fine-grained classification successfully focuses on regions with high confidence of nuclei existence and outputs the conditional probability, which in turn benefits the detection through back propagation. Extensive experiments on colon cancer histology images have validated the effectiveness of our proposed SFCN-OPI and our method has outperformed the state-of-the-art methods by a large margin.
机译:细胞核检测和细粒度分类是组织病理学图像分析中的根本尚待雄然气的问题。由于核微小尺寸,显着/类内的差异,以及劣质图像质量,先前的自动化方法将容易受到有限的准确性和鲁棒性。与此同时,现有方法通常独立处理这两个任务,这将忽略它们的紧密相关性。在本文中,我们提出了一种具有先前对象交互(称为SFCN-OPI)的兄弟全卷积网络的新方法,以同时和交互地使用统一的端到端框架来解决两个任务。具体地,兄弟FCN分支在早期层中的共享特征,同时保持针对特定任务的相应较高层。更重要的是,检测分支输出在训练和测试过程中与细粒度分类兄弟分支动态交互的对象。通过这种机制,细粒度分类成功地关注具有高良心核的存在的区域,并输出条件概率,这反过来源于反向传播。对结肠癌组织学图像的广泛实验已经验证了我们所提出的SFCN-OPI的有效性,我们的方法通过大幅度优于最先进的方法。

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