DeepSORT-Driven Visual Tracking Approach for Gesture Recognition in Interactive Systems
Tong Zhang, Fenghua Shao, Runsheng Zhang, Yifan Zhuang, Liuqingqing Yang

TL;DR
This paper demonstrates that DeepSORT-based visual tracking significantly enhances gesture recognition accuracy and real-time performance in interactive systems, especially in complex, multi-target environments, advancing human-computer interaction technologies.
Contribution
It introduces the application of DeepSORT for gesture recognition, showing improved tracking accuracy and robustness over traditional methods in dynamic, multi-target scenarios.
Findings
DeepSORT achieves high accuracy in gesture tracking.
The method effectively handles occlusion and motion blur.
It provides stable multi-target tracking for interactive systems.
Abstract
Based on the DeepSORT algorithm, this study explores the application of visual tracking technology in intelligent human-computer interaction, especially in the field of gesture recognition and tracking. With the rapid development of artificial intelligence and deep learning technology, visual-based interaction has gradually replaced traditional input devices and become an important way for intelligent systems to interact with users. The DeepSORT algorithm can achieve accurate target tracking in dynamic environments by combining Kalman filters and deep learning feature extraction methods. It is especially suitable for complex scenes with multi-target tracking and fast movements. This study experimentally verifies the superior performance of DeepSORT in gesture recognition and tracking. It can accurately capture and track the user's gesture trajectory and is superior to traditional…
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Taxonomy
TopicsHand Gesture Recognition Systems · Advanced Technologies in Various Fields · Gaze Tracking and Assistive Technology
