Biomimetic Grasp Control of Robotic Hands Using Deep Learning

dc.contributor.authorM Dweiri, Yazan
dc.contributor.authorH Hejazi, Ali
dc.contributor.authorY Al-Zeer, Alaa
dc.contributor.authorR Ayoub, Jawdat
dc.contributor.authorM AlAjlouni, Mohammad
dc.date.accessioned2025-11-25T08:46:00Z
dc.date.available2025-11-25T08:46:00Z
dc.date.issued2023
dc.description.abstractGripping force modulation based on pressure feedback is an essential element for intuitive and natural-like control of powered limb prostheses. This paper aims to mimic human hand-gripping control in robotic arms by processing dynamic pressure maps with state-of-the-art artificial intelligence algorithms. A pressure-sensing glove was built with integrated data acquisition to learn human grip behavior when holding various objects, and then transfer the observed control pattern to control a robotic arm. The pressure readings are processed using a recurrent convolutional neural network and were able to predict the biological gripping termination with an accuracy of 84.5% for a single type of object and 77% for mixed object types. The proposed control system has proven to be a viable approach for biomimetic handling control for an intelligent robotic arm with pressure feedback. Keywords Electrical engineering, Heuristic algorithms, Biomimetics, Force, Dynamics, Process control, Modulation
dc.identifier.citationDweiri, Y. M., AlAjlouni, M. M., Ayoub, J. R., Al-Zeer, A. Y., & Hejazi, A. H. (2023, May). Biomimetic Grasp Control of Robotic Hands Using Deep Learning. In 2023 IEEE Jordan International Joint Conference on Electrical Engineering and Information Technology (JEEIT) (pp. 1-6). IEEE.
dc.identifier.doihttps://doi.org/10.1109/JEEIT58638.2023.10185845
dc.identifier.urihttps://repository.adu.ac.ae/handle/1/7806
dc.language.isoen
dc.publisherIEEE
dc.titleBiomimetic Grasp Control of Robotic Hands Using Deep Learning
dc.typeArticle

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