Wearable Drone Controller: Machine Learning-Based Hand Gesture Recognition and Vibrotactile Feedback

Author:

Lee Ji-Won1,Yu Kee-Ho23

Affiliation:

1. KEPCO Research Institute, Daejeon 34056, Republic of Korea

2. Department of Aerospace Engineering, Jeonbuk National University, Jeonju 54896, Republic of Korea

3. Future Air Mobility Research Center, Jeonbuk National University, Jeonju 54896, Republic of Korea

Abstract

We proposed a wearable drone controller with hand gesture recognition and vibrotactile feedback. The intended hand motions of the user are sensed by an inertial measurement unit (IMU) placed on the back of the hand, and the signals are analyzed and classified using machine learning models. The recognized hand gestures control the drone, and the obstacle information in the heading direction of the drone is fed back to the user by activating the vibration motor attached to the wrist. Simulation experiments for drone operation were performed, and the participants’ subjective evaluations regarding the controller’s convenience and effectiveness were investigated. Finally, experiments with a real drone were conducted and discussed to validate the proposed controller.

Funder

National Research Foundation of Korea

Publisher

MDPI AG

Subject

Electrical and Electronic Engineering,Biochemistry,Instrumentation,Atomic and Molecular Physics, and Optics,Analytical Chemistry

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2. Intuitive Human–Swarm Interaction with Gesture Recognition and Machine Learning;Lecture Notes in Networks and Systems;2024

3. Application of Static Gesture Recognition Based on OpenCV;2023 7th Asian Conference on Artificial Intelligence Technology (ACAIT);2023-11-10

4. Intuitive Human-Swarm Interaction with Gesture Recognition and Machine Learning;Proceedings of the Twenty-fourth International Symposium on Theory, Algorithmic Foundations, and Protocol Design for Mobile Networks and Mobile Computing;2023-10-16

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