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Ultrasonic Array for Hand Gesture with CNN

Authors
Ju, JaewooLee, SuyeonKoh, Jinhwan
Issue Date
May-2024
Publisher
Institute of Electrical and Electronics Engineers Inc.
Keywords
Convolutional Neural Network; Hand gesture recognition Artificial Intelligence; Ultrasonic array
Citation
Proceedings - 2024 RIVF International Conference on Computing and Communication Technologies, RIVF 2024, pp 457 - 460
Pages
4
Indexed
SCOPUS
Journal Title
Proceedings - 2024 RIVF International Conference on Computing and Communication Technologies, RIVF 2024
Start Page
457
End Page
460
URI
https://scholarworks.gnu.ac.kr/handle/sw.gnu/78885
DOI
10.1109/RIVF64335.2024.11009004
Abstract
In this research, ultrasonic transducers were utilized for gesture recognition. Due to the wide beamwidth of ultrasonic transducers, it is difficult to effectively distinguish between multiple objects within a single beam. However, it performs well in accurately identifying individual objects. To leverage this characteristic of the ultrasonic transducer as an advantage, this research involved constructing an ultrasonic array. This array was created by arranging eight transmitting transducers in a circular formation and placing a single receiving transducer at the center. Through this, a wide beam area was formed extensively, enabling the measurement of unrestricted movement of a single hand in the X, Y, and Z axes. Hand gesture data were collected at distances of 10 cm, 30 cm, 50 cm, 70 cm, and 90 cm from the array. The collected data were trained and tested using a customized Convolutional Neural Network (CNN) model, demonstrating high accuracy on raw data, which is most suitable for immediate interaction with computers. The proposed system achieved over 98% accuracy. © 2024 IEEE.
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IT공과대학 (전자공학부)
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