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Meaningful Pose-Based Sign Language Evaluation

8 October 2025
Zifan Jiang
Colin Leong
Amit Moryossef
Anne Gohring
Annette Rios
Oliver Cory
Maksym Ivashechkin
Neha Tarigopula
Biao Zhang
Rico Sennrich
Sarah Ebling
    SLR
ArXiv (abs)PDFHTMLGithub (10★)
Main:5 Pages
4 Figures
Bibliography:2 Pages
5 Tables
Appendix:10 Pages
Abstract

We present a comprehensive study on meaningfully evaluating sign language utterances in the form of human skeletal poses. The study covers keypoint distance-based, embedding-based, and back-translation-based metrics. We show tradeoffs between different metrics in different scenarios through automatic meta-evaluation of sign-level retrieval and a human correlation study of text-to-pose translation across different sign languages. Our findings and the open-source pose-evaluation toolkit provide a practical and reproducible way of developing and evaluating sign language translation or generation systems.

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