image summarization
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2020 ◽  
Vol 4 (CSCW2) ◽  
pp. 1-28
Author(s):  
L. Elisa Celis ◽  
Vijay Keswani
Keyword(s):  


2020 ◽  
Vol 10 (18) ◽  
pp. 6427
Author(s):  
Helge Hecht ◽  
Mhd Hasan Sarhan ◽  
Vlad Popovici

A novel deep autoencoder architecture is proposed for the analysis of histopathology images. Its purpose is to produce a disentangled latent representation in which the structure and colour information are confined to different subspaces so that stain-independent models may be learned. For this, we introduce two constraints on the representation which are implemented as a classifier and an adversarial discriminator. We show how they can be used for learning a latent representation across haematoxylin-eosin and a number of immune stains. Finally, we demonstrate the utility of the proposed representation in the context of matching image patches for registration applications and for learning a bag of visual words for whole slide image summarization.



2019 ◽  
Author(s):  
Gordon Christie ◽  
Ryan Amundsen ◽  
Scott Almes ◽  
Brant Chee ◽  
Madhurya Mahajan ◽  
...  




Author(s):  
Hao Li ◽  
Shangfu Peng ◽  
Hanan Samet
Keyword(s):  


Author(s):  
Vasu Sharma ◽  
Akshay Kumar ◽  
Nishant Agrawal ◽  
Puneet Singh ◽  
Rajat Kulshreshtha




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