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      Deep Learning Under the Microscope: Improving the Interpretability of Medical Imaging Neural Networks

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          Abstract

          In this paper, we propose a novel interpretation method tailored to histological Whole Slide Image (WSI) processing. A Deep Neural Network (DNN), inspired by Bag-of-Features models is equipped with a Multiple Instance Learning (MIL) branch and trained with weak supervision for WSI classification. MIL avoids label ambiguity and enhances our model's expressive power without guiding its attention. We utilize a fine-grained logit heatmap of the models activations to interpret its decision-making process. The proposed method is quantitatively and qualitatively evaluated on two challenging histology datasets, outperforming a variety of baselines. In addition, two expert pathologists were consulted regarding the interpretability provided by our method and acknowledged its potential for integration into several clinical applications.

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          Multiple instance learning: A survey of problem characteristics and applications

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            Deep Multiple Instance Hashing for Scalable Medical Image Retrieval

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              Author and article information

              Journal
              05 April 2019
              Article
              1904.03127
              72485aa2-fbb9-4b2d-b65a-e6f82953a30a

              http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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              Custom metadata
              Under Review for MICCAI 2019
              cs.CV

              Computer vision & Pattern recognition
              Computer vision & Pattern recognition

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