Abbass, Yahya und Montenegro, Silvana Miranda und Egle, Fabio und Saleh, Moustafa und Valle, Maurizio und Castellini, Claudio (2025) A Case Study: FMG-based Gesture Recognition using High-Density Piezoelectric Electronic Skin and Machine Learning. IEEE Sensors Letters, 9 (12), Seite 5505904. IEEE - Institute of Electrical and Electronics Engineers. doi: 10.1109/LSENS.2025.3624027. ISSN 2475-1472.
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Offizielle URL: https://ieeexplore.ieee.org/document/11208780
Kurzfassung
During muscle contractions, force distributions are generated on muscle surfaces due to muscle activity, which is applicable for control in a human-machine interface. It has been proven that the force distribution from the corresponding body motions can be recorded utilizing the so-called Force Myography (FMG). Flexible piezoelectric sensors with attractive sensing properties have been widely used in several areas to detect force variations through wearable devices. In this letter, we developed an FMG armband composed of high-density (24 sensors) piezoelectric electronic skin and multichannel embedded electronics. The FMG armband was used to recognize eleven hand and wrist gestures performed by able-bodied subjects. To do this, two signal-processing approaches (front-end approach and feature-based approach) were developed to process the FMG patterns and extract the proper features. The processed FMG patterns were evaluated and identified by employing various classical machine learning algorithms, and an average gesture recognition accuracy of 98% for wrist gestures was obtained. This letter demonstrates the feasibility of using high-density piezoelectric skin for FMG and leads to alternative methods for gesture recognition in biomedical applications.
| elib-URL des Eintrags: | https://elib.dlr.de/221689/ | ||||||||||||||||||||||||||||
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| Dokumentart: | Zeitschriftenbeitrag | ||||||||||||||||||||||||||||
| Titel: | A Case Study: FMG-based Gesture Recognition using High-Density Piezoelectric Electronic Skin and Machine Learning | ||||||||||||||||||||||||||||
| Autoren: |
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| Datum: | 20 Oktober 2025 | ||||||||||||||||||||||||||||
| Erschienen in: | IEEE Sensors Letters | ||||||||||||||||||||||||||||
| Referierte Publikation: | Ja | ||||||||||||||||||||||||||||
| Open Access: | Ja | ||||||||||||||||||||||||||||
| Gold Open Access: | Nein | ||||||||||||||||||||||||||||
| In SCOPUS: | Ja | ||||||||||||||||||||||||||||
| In ISI Web of Science: | Ja | ||||||||||||||||||||||||||||
| Band: | 9 | ||||||||||||||||||||||||||||
| DOI: | 10.1109/LSENS.2025.3624027 | ||||||||||||||||||||||||||||
| Seitenbereich: | Seite 5505904 | ||||||||||||||||||||||||||||
| Verlag: | IEEE - Institute of Electrical and Electronics Engineers | ||||||||||||||||||||||||||||
| ISSN: | 2475-1472 | ||||||||||||||||||||||||||||
| Status: | veröffentlicht | ||||||||||||||||||||||||||||
| Stichwörter: | Robot sensing systems;Hands;Gesture recognition;Muscles;Electronic skin;Wrist;Sensor systems;Feature extraction;Electrodes;Periodic structures;Piezoelectric devices;Sensor systems;force myography (FMG);gesture recognition;human–machine interfaces;piezoelectric sensors;wearable sensors | ||||||||||||||||||||||||||||
| HGF - Forschungsbereich: | Luftfahrt, Raumfahrt und Verkehr | ||||||||||||||||||||||||||||
| HGF - Programm: | Raumfahrt | ||||||||||||||||||||||||||||
| HGF - Programmthema: | Robotik | ||||||||||||||||||||||||||||
| DLR - Schwerpunkt: | Raumfahrt | ||||||||||||||||||||||||||||
| DLR - Forschungsgebiet: | R RO - Robotik | ||||||||||||||||||||||||||||
| DLR - Teilgebiet (Projekt, Vorhaben): | R - Intuitive Mensch-Roboter Schnittstelle [RO] | ||||||||||||||||||||||||||||
| Standort: | Oberpfaffenhofen | ||||||||||||||||||||||||||||
| Institute & Einrichtungen: | Institut für Robotik und Mechatronik (ab 2013) > Leitungsbereich | ||||||||||||||||||||||||||||
| Hinterlegt von: | Castellini, Dr. Claudio | ||||||||||||||||||||||||||||
| Hinterlegt am: | 07 Jan 2026 23:08 | ||||||||||||||||||||||||||||
| Letzte Änderung: | 12 Jan 2026 13:18 |
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