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SignNet II: A Transformer-Based Two-Way Sign Language Translation Model
Summary
This study introduces SignNet II, an AI architecture for two-way sign language translation. Jointly trained networks significantly improve both sign-to-text and text-to-sign communication for the Deaf and Hard of Hearing community.
Area of Science:
- Artificial Intelligence
- Natural Language Processing
- Human-Computer Interaction
Background:
- Automated sign language processing (ASLP) traditionally focuses on sign-to-text, benefiting hearing individuals.
- Bridging the communication gap requires robust two-way translation between sign language and text.
- Transformer networks offer advanced capabilities for complex sequence-to-sequence tasks in ASLP.
Purpose of the Study:
- To introduce SignNet II, an AI architecture for facilitating two-way sign language communication.
- To enhance text-to-sign translation through metric embedding learning and sign similarity.
- To evaluate the performance of jointly trained networks against singly-trained models.
Main Methods:
- Development of SignNet II, a dual learning architecture comprising sign-to-text and text-to-sign networks.
- Joint training of networks using a dual learning mechanism.
- Implementation of metric embedding learning leveraging sign similarity for text-to-sign enhancement.
- Analysis of input feature representations using multi-feature transformers, focusing on keypoint-based pose features.
Main Results:
- SignNet II demonstrates significant advancements in two-way sign language processing.
- Jointly trained networks outperformed singly-trained counterparts in translation accuracy.
- Keypoint-based pose features showed consistent performance across varying video quality.
- Noteworthy enhancements in BLEU-1 - BLEU-4 scores were achieved on the German Sign Language (GSL) benchmark dataset.
Conclusions:
- SignNet II represents a promising step towards equitable two-way communication for Deaf and Hard of Hearing communities.
- Dual learning and metric embedding significantly improve ASLP performance, particularly for text-to-sign translation.
- The architecture's robustness with keypoint-based features makes it adaptable to real-world conditions.
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