Medical Gesture Recognition Method Based on Improved Lightweight Network

Author:

Wang WenjieORCID,He Mengling,Wang Xiaohua,Ma Jianwei,Song Huajian

Abstract

Surgery is a compelling application field for collaborative control robots. This paper proposes a gesture recognition method applied to a medical assistant robot delivering instruments to collaborate with surgeons to complete surgeries. The key to assisting the surgeon in passing instruments in the operating room is the ability to recognize the surgeon’s hand gestures accurately and quickly. Existing gesture recognition techniques suffer from poor recognition accuracy and low rate. To address the existing shortcomings, we propose an improved lightweight convolutional neural network called E-MobileNetv2. The ECA module is added to the original MobileNetv2 network model to obtain more useful features by computing the information interactions between the current channel and the adjacent channels and between the current channel and the distant channels in the feature map. We add R6-SELU activation function to enhance the network’s ability to extract features. By adjusting the shrinkable hyper-parameters, the number of parameters of the network is reduced to improve the recognition speed. The improved network model achieves excellent performance on both the self-built dataset Gesture_II and the public dataset Jester. The recognition accuracy of the improved model is 96.82%, which is 3.17 % higher than that of the original model, achieving an increase in accuracy and recognition speed.

Funder

National Natural Science Foundation of China

Key Research and Development Program of Shaanxi

Publisher

MDPI AG

Subject

Fluid Flow and Transfer Processes,Computer Science Applications,Process Chemistry and Technology,General Engineering,Instrumentation,General Materials Science

Cited by 7 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. XentricAI: A Gesture Sensing Calibration Approach Through Explainable and User-Centric AI;Communications in Computer and Information Science;2024

2. An Adaptive Frame Selection and Deep Learning-Based Dynamic Hand Gesture Recognition System for Sterile Environments;2023 International Conference on Computational Intelligence, Networks and Security (ICCINS);2023-12-22

3. A Novel Approach for Recognition and Classification of Hand Gesture Using Deep Convolution Neural Networks;Communications in Computer and Information Science;2023-11-05

4. PEA-YOLO: a lightweight network for static gesture recognition combining multiscale and attention mechanisms;Signal, Image and Video Processing;2023-10-05

5. Gesture image recognition method based on DC-Res2Net and a feature fusion attention module;Journal of Visual Communication and Image Representation;2023-09

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