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ConfusionFlow: A Model-Agnostic Visualization for Temporal Analysis of Classifier Confusion

Hinterreiter, Andreas; Ruch, Peter; Stitz, Holger; Ennemoser, Martin; Bernard, Jürgen; Strobelt, Hendrik; Streit, Marc (2022). ConfusionFlow: A Model-Agnostic Visualization for Temporal Analysis of Classifier Confusion. IEEE Transactions on Visualization and Computer Graphics, 28(2):1222-1236.

Abstract

Classifiers are among the most widely used supervised machine learning algorithms. Many classification models exist, and choosing the right one for a given task is difficult. During model selection and debugging, data scientists need to assess classifiers' performances, evaluate their learning behavior over time, and compare different models. Typically, this analysis is based on single-number performance measures such as accuracy. A more detailed evaluation of classifiers is possible by inspecting class errors. The confusion matrix is an established way for visualizing these class errors, but it was not designed with temporal or comparative analysis in mind. More generally, established performance analysis systems do not allow a combined temporal and comparative analysis of class-level information. To address this issue, we propose ConfusionFlow, an interactive, comparative visualization tool that combines the benefits of class confusion matrices with the visualization of performance characteristics over time. ConfusionFlow is model-agnostic and can be used to compare performances for different model types, model architectures, and/or training and test datasets. We demonstrate the usefulness of ConfusionFlow in a case study on instance selection strategies in active learning. We further assess the scalability of ConfusionFlow and present a use case in the context of neural network pruning.

Additional indexing

Item Type:Journal Article, refereed, original work
Communities & Collections:03 Faculty of Economics > Department of Informatics
Dewey Decimal Classification:000 Computer science, knowledge & systems
Scopus Subject Areas:Physical Sciences > Software
Physical Sciences > Signal Processing
Physical Sciences > Computer Vision and Pattern Recognition
Physical Sciences > Computer Graphics and Computer-Aided Design
Uncontrolled Keywords:Computer Graphics and Computer-Aided Design, Computer Vision and Pattern Recognition, Signal Processing, Software, Visual Analytics, Interactive Visual Data Analysis
Scope:Discipline-based scholarship (basic research)
Language:English
Date:1 February 2022
Deposited On:31 Jan 2024 08:03
Last Modified:29 Dec 2024 04:33
Publisher:Institute of Electrical and Electronics Engineers
ISSN:1077-2626
OA Status:Green
Free access at:Publisher DOI. An embargo period may apply.
Publisher DOI:https://doi.org/10.1109/tvcg.2020.3012063
Other Identification Number:merlin-id:24311
Project Information:
  • Funder: State of Upper Austria
  • Grant ID:
  • Project Title:
  • Funder: State of Upper Austria
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  • Language: English
  • Licence: Creative Commons: Attribution 4.0 International (CC BY 4.0)

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