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ICOS Protein Expression Segmentation: Can Transformer Networks Give Better Results?

Authors :
Singh, Vivek Kumar
Reilly, Paul O
James, Jacqueline
Tellez, Manuel Salto
Maxwell, Perry
Publication Year :
2022

Abstract

Biomarkers identify a patients response to treatment. With the recent advances in artificial intelligence based on the Transformer networks, there is only limited research has been done to measure the performance on challenging histopathology images. In this paper, we investigate the efficacy of the numerous state-of-the-art Transformer networks for immune-checkpoint biomarker, Inducible Tcell COStimulator (ICOS) protein cell segmentation in colon cancer from immunohistochemistry (IHC) slides. Extensive and comprehensive experimental results confirm that MiSSFormer achieved the highest Dice score of 74.85% than the rest evaluated Transformer and Efficient U-Net methods.<br />Comment: Accepted MIUA conference (Abstract short paper)

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.2206.11520
Document Type :
Working Paper