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July 20, 2023SHILAP Revista de lepidopterología120 citationsOpen Access

A Review of Hand Gesture Recognition Systems Based on Noninvasive Wearable Sensors

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RTRayane TchantchaneHZHao ZhouSZShen Zhang

Key Points

  • This review aims to explore advancements in noninvasive wearable sensors for hand gesture recognition systems and their applications.
  • Systematic review of recent achievements in upper-limb sensing techniques for hand gesture recognition.
  • Analysis of multimodal sensing fusion to enhance user information.
  • Evaluation of wearable gesture recognition algorithms for improved performance.
  • Identified significant progress in noninvasive sensor technologies for hand gesture recognition applications.
  • Highlighted challenges in achieving reliable and robust gesture recognition in diverse contexts.
  • Outlined emerging opportunities for future research in sensor-based hand gesture recognition systems.

Abstract

Hand gesture, one of the essential ways for a human to convey information and express intuitive intention, has a significant degree of differentiation, substantial flexibility, and high robustness of information transmission to make hand gesture recognition (HGR) one of the research hotspots in the fields of human–human and human–computer or human–machine interactions. Noninvasive, on‐body sensors can monitor, track, and recognize hand gestures for various applications such as sign language recognition, rehabilitation, myoelectric control for prosthetic hands and human–machine interface (HMI), and many other applications. This article systematically reviews recent achievements from noninvasive upper‐limb sensing techniques for HGR, multimodal sensing fusion to gain additional user information, and wearable gesture recognition algorithms to obtain more reliable and robust performance. Research challenges, progress, and emerging opportunities for sensor‐based HGR systems are also analyzed to provide perspectives for future research and progress.

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Cite This Study

Tchantchane et al. (2023) studied this question.

synapsesocial.com/papers/69e001bdbdd89ea531860bedhttps://doi.org/10.1002/aisy.202300207
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