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SignParser: Empowering Dual-Handed Sign Language Translation with a Single Wearable

Xiaochen Liu, Fan Li, Yetong Cao, Binghui Shi, Song Yang, Yu Wang

2025Year
1Citations

Abstract

Sign language translation (SLT) is essential for promoting communicative equity and social integration for hearing-impaired individuals. However, computer-vision-based and wireless-signal-based SLT solutions mainly involve inconvenient operation, poor portability, and susceptibility to interference. Recently, wearable-device-based methods have emerged as a potential alternative, offering services anytime and anywhere. However, these methods fall into two extremes: employing complex device combinations to achieve dual-handed SLT or opting for single-device solutions that compromise comprehensive data capture from both hands. Consequently, such a dilemma constrains the widespread adoption of wearable devices in the field of SLT. In this paper, we propose SignParser, a unique dual-handed SLT system leveraging a single IMU sensor in commercial smartwatches. SignParser is superior to other wearable-device-based approaches in i) exploiting large-scale labeled virtual IMU data to achieve generalization capability across different users, ii) enabling single-device solution for dual-handed SLT via estimating non-dominant hand IMU data, and iii) ensuring real-time, contextual-guided, and unseen sentence-adaptive SLT by a lightweight sign spotter network integrated with large language models. Extensive experiments with 27 participants show that SignParser can achieve the average word error rate of 4.8% and 8.3% for new users and unseen sentences, respectively. The excellent performance demonstrates the SignParser's effectiveness in real-world scenarios.

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