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Squares: Supporting Interactive Performance Analysis for Multiclass Classifiers

Published: 01 January 2017 Publication History
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  • Abstract

    Performance analysis is critical in applied machine learning because it influences the models practitioners produce. Current performance analysis tools suffer from issues including obscuring important characteristics of model behavior and dissociating performance from data. In this work, we present Squares, a performance visualization for multiclass classification problems. Squares supports estimating common performance metrics while displaying instance-level distribution information necessary for helping practitioners prioritize efforts and access data. Our controlled study shows that practitioners can assess performance significantly faster and more accurately with Squares than a confusion matrix, a common performance analysis tool in machine learning.

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    Published In

    cover image IEEE Transactions on Visualization and Computer Graphics
    IEEE Transactions on Visualization and Computer Graphics  Volume 23, Issue 1
    January 2017
    999 pages

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    IEEE Educational Activities Department

    United States

    Publication History

    Published: 01 January 2017

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    • (2024)A Visual Analytics Tool to Explore Multi-Classification Model with High Number of ClassesCompanion Proceedings of the 16th ACM SIGCHI Symposium on Engineering Interactive Computing Systems10.1145/3660515.3662833(84-86)Online publication date: 24-Jun-2024
    • (2024)Talaria: Interactively Optimizing Machine Learning Models for Efficient InferenceProceedings of the CHI Conference on Human Factors in Computing Systems10.1145/3613904.3642628(1-19)Online publication date: 11-May-2024
    • (2024)Class-Constrained t-SNE: Combining Data Features and Class ProbabilitiesIEEE Transactions on Visualization and Computer Graphics10.1109/TVCG.2023.332660030:1(164-174)Online publication date: 1-Jan-2024
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