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Article

Image Generation for 2D-CNN Using Time-Series Signal Features from Foot Gesture Applied to Select Cobot Operating Mode

by
Fadwa El Aswad
1,
Gilde Vanel Tchane Djogdom
1,2,
Martin J.-D. Otis
1,*,
Johannes C. Ayena
3 and
Ramy Meziane
1,2
1
Laboratory of Automation and Robotic interaction (LAR.i), Department of Applied Sciences, Université du Québec à Chicoutimi (UQAC), 555 Boulevard de l’Université, Chicoutimi, QC G7H 2B1, Canada
2
Technological Institute of Industrial Maintenance (ITMI), Sept-Iles College, 175 Rue de la Vérendrye, Sept-Iles, QC G4R 5B7, Canada
3
Communications and Microelectronic Integration Laboratory (LACIME), Department of Electrical Engineering, École de Technologie Supérieure, 1100 Rue Notre-Dame Ouest, Montréal, QC H3C1K3, Canada
*
Author to whom correspondence should be addressed.
Sensors 2021, 21(17), 5743; https://doi.org/10.3390/s21175743
Submission received: 30 June 2021 / Revised: 17 August 2021 / Accepted: 23 August 2021 / Published: 26 August 2021
(This article belongs to the Special Issue Instrumentation in Interactive Robotic and Automation)

Abstract

Advances in robotics are part of reducing the burden associated with manufacturing tasks in workers. For example, the cobot could be used as a “third-arm” during the assembling task. Thus, the necessity of designing new intuitive control modalities arises. This paper presents a foot gesture approach centered on robot control constraints to switch between four operating modalities. This control scheme is based on raw data acquired by an instrumented insole located at a human’s foot. It is composed of an inertial measurement unit (IMU) and four force sensors. Firstly, a gesture dictionary was proposed and, from data acquired, a set of 78 features was computed with a statistical approach, and later reduced to 3 via variance analysis ANOVA. Then, the time series collected data were converted into a 2D image and provided as an input for a 2D convolutional neural network (CNN) for the recognition of foot gestures. Every gesture was assimilated to a predefined cobot operating mode. The offline recognition rate appears to be highly dependent on the features to be considered and their spatial representation in 2D image. We achieve a higher recognition rate for a specific representation of features by sets of triangular and rectangular forms. These results were encouraging in the use of CNN to recognize foot gestures, which then will be associated with a command to control an industrial robot.
Keywords: human–robot collaboration; instrumented insole; foot gesture recognition; convolutional neural network human–robot collaboration; instrumented insole; foot gesture recognition; convolutional neural network

Share and Cite

MDPI and ACS Style

Aswad, F.E.; Djogdom, G.V.T.; Otis, M.J.-D.; Ayena, J.C.; Meziane, R. Image Generation for 2D-CNN Using Time-Series Signal Features from Foot Gesture Applied to Select Cobot Operating Mode. Sensors 2021, 21, 5743. https://doi.org/10.3390/s21175743

AMA Style

Aswad FE, Djogdom GVT, Otis MJ-D, Ayena JC, Meziane R. Image Generation for 2D-CNN Using Time-Series Signal Features from Foot Gesture Applied to Select Cobot Operating Mode. Sensors. 2021; 21(17):5743. https://doi.org/10.3390/s21175743

Chicago/Turabian Style

Aswad, Fadwa El, Gilde Vanel Tchane Djogdom, Martin J.-D. Otis, Johannes C. Ayena, and Ramy Meziane. 2021. "Image Generation for 2D-CNN Using Time-Series Signal Features from Foot Gesture Applied to Select Cobot Operating Mode" Sensors 21, no. 17: 5743. https://doi.org/10.3390/s21175743

APA Style

Aswad, F. E., Djogdom, G. V. T., Otis, M. J.-D., Ayena, J. C., & Meziane, R. (2021). Image Generation for 2D-CNN Using Time-Series Signal Features from Foot Gesture Applied to Select Cobot Operating Mode. Sensors, 21(17), 5743. https://doi.org/10.3390/s21175743

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