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Main Authors: Hasler, Stephan, Fischer, Lydia
Format: Preprint
Published: 2024
Subjects:
Online Access:https://arxiv.org/abs/2406.17346
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author Hasler, Stephan
Fischer, Lydia
author_facet Hasler, Stephan
Fischer, Lydia
contents Machine learning is more and more applied in critical application areas like health and driver assistance. To minimize the risk of wrong decisions, in such applications it is necessary to consider the certainty of a classification to reject uncertain samples. An established tool for this are reject curves that visualize the trade-off between the number of rejected samples and classification performance metrics. We argue that common reject curves are too abstract and hard to interpret by non-experts. We propose Stacked Confusion Reject Plots (SCORE) that offer a more intuitive understanding of the used data and the classifier's behavior. We present example plots on artificial Gaussian data to document the different options of SCORE and provide the code as a Python package.
format Preprint
id arxiv_https___arxiv_org_abs_2406_17346
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Stacked Confusion Reject Plots (SCORE)
Hasler, Stephan
Fischer, Lydia
Machine Learning
Machine learning is more and more applied in critical application areas like health and driver assistance. To minimize the risk of wrong decisions, in such applications it is necessary to consider the certainty of a classification to reject uncertain samples. An established tool for this are reject curves that visualize the trade-off between the number of rejected samples and classification performance metrics. We argue that common reject curves are too abstract and hard to interpret by non-experts. We propose Stacked Confusion Reject Plots (SCORE) that offer a more intuitive understanding of the used data and the classifier's behavior. We present example plots on artificial Gaussian data to document the different options of SCORE and provide the code as a Python package.
title Stacked Confusion Reject Plots (SCORE)
topic Machine Learning
url https://arxiv.org/abs/2406.17346