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Myoelectric grip force prediction using deep learning for hand robot

Anam, KhairulArdhiansyah, Dheny DwiHana Sasono, Muchamad ArifNanda Imron, Arizal MujibtamalaRizal, Naufal AinurRamadhan, Mochamad EdowardMuttaqin, Aris ZainulCastellini, ClaudioSumardi, Sumardi
IAES International Journal of Artificial Intelligence (IJ-AI) (Sinta 1)Vol. 0 No. 01 Agustus 2025
DOI10.11591/ijai.v14.i4.pp3228-3240

Abstrak

Artificial intelligence (AI) has been widely applied in the medical world. One such application is a hand-driven robot based on user intention prediction. The purpose of this research is to control the grip strength of a robot based on the user’s intention by predicting the grip strength of the user using deep learning and electromyographic signals. The grip strength of the target hand is obtained from a handgrip dynamometer paired with electromyographic signals as training data. We evaluated a convolutional neural network (CNN) with two different architectures. The input to CNN was the root mean square (RMS) and mean absolute value (MAV). The grip strength of the hand dynamometer was used as a reference value for a low-level controller for the robotic hand. The experimental results show that CNN succeeded in predicting hand grip strength and controlling grip strength with a root mean square error (RMSE) of 2.35 N using the RMS feature. A comparison with a state-of-the-art regression method also shows that a CNN can better predict the grip strength.

Kata Kunci

Grip ForceMyoelectricDeep LearningAssistive robotDeep learningGrip forceHand robotMyoelectric

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Myoelectric grip force prediction using deep learning for hand robot | IAES International Journal of Artificial Intelligence (IJ-AI) | Publiora