Searching for fingerspelled content in American Sign Language
Bowen Shi, Diane Brentari, Greg Shakhnarovich, Karen Livescu
Abstract
Natural language processing for sign language video—including tasks like recognition, translation, and search—is crucial for making artificial intelligence technologies accessible to deaf individuals, and is gaining research interest in recent years. In this paper, we address the problem of searching for fingerspelled keywords or key phrases in raw sign language videos. This is an important task since significant content in sign language is often conveyed via fingerspelling, and to our knowledge the task has not been studied before. We propose an end-to-end model for this task, FSS-Net, that jointly detects fingerspelling and matches it to a text sequence. Our experiments, done on a large public dataset of ASL fingerspelling in the wild, show the importance of fingerspelling detection as a component of a search and retrieval model. Our model significantly outperforms baseline methods adapted from prior work on related tasks.
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- Span-based Localizing Network for Natural Language Video LocalizationHao Zhang, Aixin Sun, Wei Jing, Joey Tianyi ZhouACL 2020 · 279 citations
- COOT: Cooperative Hierarchical Transformer for Video-Text Representation LearningSimon Ging, Mohammadreza Zolfaghari, Hamed Pirsiavash, Thomas BroxNeurIPS 2020 · 186 citations
- Fingerspelling Recognition in the Wild With Iterative Visual AttentionBowen Shi, Aurora Martinez Del Rio, Jonathan Keane, Diane Brentari et al.ICCV 2019 · 76 citations
- Fingerspelling Detection in American Sign LanguageBowen Shi, Diane Brentari, Greg Shakhnarovich, Karen LivescuCVPR 2021
- Including Signed Languages in Natural Language ProcessingKayo Yin, Amit Moryossef, Julie Hochgesang, Yoav Goldberg et al.ACL 2021
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