Was that so Hard? Estimating Human Classification Difficulty

Morten Rieger Hannemose*, Josefine Vilsbøll Sundgaard, Niels Kvorning Ternov, Rasmus R. Paulsen, Anders Nymark Christensen

*Corresponding author af dette arbejde
3 Citationer (Scopus)

Abstract

When doctors are trained to diagnose a specific disease, they learn faster when presented with cases in order of increasing difficulty. This creates the need for automatically estimating how difficult it is for doctors to classify a given case. In this paper, we introduce methods for estimating how hard it is for a doctor to diagnose a case represented by a medical image, both when ground truth difficulties are available for training, and when they are not. Our methods are based on embeddings obtained with deep metric learning. Additionally, we introduce a practical method for obtaining ground truth human difficulty for each image case in a dataset using self-assessed certainty. We apply our methods to two different medical datasets, achieving high Kendall rank correlation coefficients on both, showing that we outperform existing methods by a large margin on our problem and data.

OriginalsprogEngelsk
TitelApplications of Medical Artificial Intelligence - 1st International Workshop, AMAI 2022, Held in Conjunction with MICCAI 2022, Proceedings
RedaktørerShandong Wu, Behrouz Shabestari, Lei Xing
Antal sider10
Vol/bind13540
ForlagSpringer Science and Business Media Deutschland GmbH
Publikationsdato2022
Sider88-97
ISBN (Trykt)9783031177200
DOI
StatusUdgivet - 2022
Begivenhed1st International Workshop on Applications of Medical Artificial Intelligence, AMAI 2022, held in conjunction with the 25th International Conference on Medical Image Computing and Computer Assisted Intervention, MICCAI 2022 - Virtual, Online
Varighed: 18 sep. 202218 sep. 2022

Konference

Konference1st International Workshop on Applications of Medical Artificial Intelligence, AMAI 2022, held in conjunction with the 25th International Conference on Medical Image Computing and Computer Assisted Intervention, MICCAI 2022
ByVirtual, Online
Periode18/09/202218/09/2022
NavnLecture Notes in Computer Science (including subseries Lecture Notes in Artificial Intelligence and Lecture Notes in Bioinformatics)
Vol/bind13540 LNCS
ISSN0302-9743

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