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e-ViL: A Dataset and Benchmark for Natural Language Explanations in Vision-Language Tasks
Conference paper

e-ViL: A Dataset and Benchmark for Natural Language Explanations in Vision-Language Tasks

Maxime Kayser, Oana-Maria Camburu, Leonard Salewski, Cornelius Emde, Virginie Do, Zeynep Akata and Thomas Lukasiewicz
Proceedings of the IEEE International Conference on Computer Vision
Institute of Electrical and Electronics Engineers Inc.
2021

Abstract

Computer vision Automatic metrics Comprehensive comparisons Embeddings Evaluation framework Human evaluation Human-friendly Language model Learn+ Metric evaluation Natural language explanations Large dataset

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