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Unrolled Projected Gradient Algorithm for Stain Separation in Digital Histopathological Images

Citation Author(s):
Astrid Laurent-Bellue, Amel Benazza-Benyahia, Catherine Guettier, Jean-Christophe Pesquet
Submitted by:
aymen sadraoui
Last updated:
9 November 2024 - 6:53am
Document Type:
Presentation Slides
Document Year:
2024
Event:
Presenters:
Aymen Sadraoui
Paper Code:
2234
 

This paper introduces a novel optimization approach for stain separation in digital histopathological images. Our stain separation cost function incorporates a smooth total variation regularization and is minimized by using a projected gradient algorithm. To enhance computational efficiency and enable supervised learning of the hyperparameters, we further unroll our algorithm into a neural network. The unrolled architecture is not only more efficient for solving the stain separation problem, but also allows to design a highly interpretable and flexible method. Experimental results demonstrate the effectiveness of the proposed unrolled projected gradient algorithm in achieving accurate and visually consistent stain separation.

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