Literature DB >> 31346949

A deep learning algorithm for one-step contour aware nuclei segmentation of histopathology images.

Yuxin Cui1, Guiying Zhang2, Zhonghao Liu1, Zheng Xiong1, Jianjun Hu3.   

Abstract

This paper addresses the task of nuclei segmentation in high-resolution histopathology images. We propose an automatic end-to-end deep neural network algorithm for segmentation of individual nuclei. A nucleus-boundary model is introduced to predict nuclei and their boundaries simultaneously using a fully convolutional neural network. Given a color-normalized image, the model directly outputs an estimated nuclei map and a boundary map. A simple, fast, and parameter-free post-processing procedure is performed on the estimated nuclei map to produce the final segmented nuclei. An overlapped patch extraction and assembling method is also designed for seamless prediction of nuclei in large whole-slide images. We also show the effectiveness of data augmentation methods for nuclei segmentation task. Our experiments showed our method outperforms prior state-of-the-art methods. Moreover, it is efficient that one 1000×1000 image can be segmented in less than 5 s. This makes it possible to precisely segment the whole-slide image in acceptable time. The source code is available at https://github.com/easycui/nuclei_segmentation . Graphical Abstract The neural network for nuclei segmentation.

Entities:  

Keywords:  Data augmentation; Deep learning; Fully convolutional neural network; Nuclei segmentation

Year:  2019        PMID: 31346949     DOI: 10.1007/s11517-019-02008-8

Source DB:  PubMed          Journal:  Med Biol Eng Comput        ISSN: 0140-0118            Impact factor:   2.602


  12 in total

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Journal:  Annu Int Conf IEEE Eng Med Biol Soc       Date:  2022-07

2.  Microscopic nuclei classification, segmentation, and detection with improved deep convolutional neural networks (DCNN).

Authors:  Zahangir Alom; Vijayan K Asari; Anil Parwani; Tarek M Taha
Journal:  Diagn Pathol       Date:  2022-04-19       Impact factor: 3.196

3.  An automatic nuclei segmentation method based on deep convolutional neural networks for histopathology images.

Authors:  Hwejin Jung; Bilal Lodhi; Jaewoo Kang
Journal:  BMC Biomed Eng       Date:  2019-10-17

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5.  Automatic Segmentation of Bone Canals in Histological Images.

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6.  Introducing Hann windows for reducing edge-effects in patch-based image segmentation.

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Journal:  PLoS One       Date:  2020-03-12       Impact factor: 3.240

Review 7.  Role of AI and Histopathological Images in Detecting Prostate Cancer: A Survey.

Authors:  Sarah M Ayyad; Mohamed Shehata; Ahmed Shalaby; Mohamed Abou El-Ghar; Mohammed Ghazal; Moumen El-Melegy; Nahla B Abdel-Hamid; Labib M Labib; H Arafat Ali; Ayman El-Baz
Journal:  Sensors (Basel)       Date:  2021-04-07       Impact factor: 3.576

8.  System for quantitative evaluation of DAB&H-stained breast cancer biopsy digital images (CHISEL).

Authors:  Lukasz Roszkowiak; Anna Korzynska; Krzysztof Siemion; Jakub Zak; Dorota Pijanowska; Ramon Bosch; Marylene Lejeune; Carlos Lopez
Journal:  Sci Rep       Date:  2021-04-29       Impact factor: 4.379

9.  Learning to see colours: Biologically relevant virtual staining for adipocyte cell images.

Authors:  Håkan Wieslander; Ankit Gupta; Ebba Bergman; Erik Hallström; Philip John Harrison
Journal:  PLoS One       Date:  2021-10-15       Impact factor: 3.240

10.  nucleAIzer: A Parameter-free Deep Learning Framework for Nucleus Segmentation Using Image Style Transfer.

Authors:  Reka Hollandi; Abel Szkalisity; Timea Toth; Ervin Tasnadi; Csaba Molnar; Botond Mathe; Istvan Grexa; Jozsef Molnar; Arpad Balind; Mate Gorbe; Maria Kovacs; Ede Migh; Allen Goodman; Tamas Balassa; Krisztian Koos; Wenyu Wang; Juan Carlos Caicedo; Norbert Bara; Ferenc Kovacs; Lassi Paavolainen; Tivadar Danka; Andras Kriston; Anne Elizabeth Carpenter; Kevin Smith; Peter Horvath
Journal:  Cell Syst       Date:  2020-05-07       Impact factor: 10.304

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