Evaluating Webcam-based Gaze Data as an Alternative for Human Rationale Annotations

Stephanie Brandl, Oliver Eberle, Tiago Ribeiro, Anders Søgaard, Nora Hollenstein


Abstract
Rationales in the form of manually annotated input spans usually serve as ground truth when evaluating explainability methods in NLP. They are, however, time-consuming and often biased by the annotation process. In this paper, we debate whether human gaze, in the form of webcam-based eye-tracking recordings, poses a valid alternative when evaluating importance scores. We evaluate the additional information provided by gaze data, such as total reading times, gaze entropy, and decoding accuracy with respect to human rationale annotations. We compare WebQAmGaze, a multilingual dataset for information-seeking QA, with attention and explainability-based importance scores for 4 different multilingual Transformer-based language models (mBERT, distil-mBERT, XLMR, and XLMR-L) and 3 languages (English, Spanish, and German). Our pipeline can easily be applied to other tasks and languages. Our findings suggest that gaze data offers valuable linguistic insights that could be leveraged to infer task difficulty and further show a comparable ranking of explainability methods to that of human rationales.
Anthology ID:
2024.lrec-main.580
Volume:
Proceedings of the 2024 Joint International Conference on Computational Linguistics, Language Resources and Evaluation (LREC-COLING 2024)
Month:
May
Year:
2024
Address:
Torino, Italia
Editors:
Nicoletta Calzolari, Min-Yen Kan, Veronique Hoste, Alessandro Lenci, Sakriani Sakti, Nianwen Xue
Venues:
LREC | COLING
SIG:
Publisher:
ELRA and ICCL
Note:
Pages:
6544–6556
Language:
URL:
https://aclanthology.org/2024.lrec-main.580
DOI:
Bibkey:
Cite (ACL):
Stephanie Brandl, Oliver Eberle, Tiago Ribeiro, Anders Søgaard, and Nora Hollenstein. 2024. Evaluating Webcam-based Gaze Data as an Alternative for Human Rationale Annotations. In Proceedings of the 2024 Joint International Conference on Computational Linguistics, Language Resources and Evaluation (LREC-COLING 2024), pages 6544–6556, Torino, Italia. ELRA and ICCL.
Cite (Informal):
Evaluating Webcam-based Gaze Data as an Alternative for Human Rationale Annotations (Brandl et al., LREC-COLING 2024)
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PDF:
https://aclanthology.org/2024.lrec-main.580.pdf