Human skin is capable of sensing various types of forces with high resolution and accuracy. The development of an artificial sense of touch needs to address these properties, while retaining scalability to large surfaces with arbitrary shapes. The vision-based tactile sensor proposed in this article exploits the extremely high resolution of modern image sensors to reconstruct the normal force distribution applied to a soft material, whose deformation is observed on the camera images. By embedding a random pattern within the material, the full resolution of the camera can be exploited. The design and the motivation of the proposed approach are discussed with respect to a simplified elasticity model. An artificial deep neural network is trained on experimental data to perform the tactile sensing task with high accuracy for a specific indenter, and with a spatial resolution and a sensing range comparable to the human fingertip.
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http://dx.doi.org/10.3390/s19040928 | DOI Listing |
J R Stat Soc Ser C Appl Stat
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Columbia University, New York, USA.
We consider non-parametric estimation of disease onset distribution functions in multiple populations by using censored data with unknown population identifiers. The problem is motivated from studies aiming at estimating the age-specific disease risk distribution in deleterious mutation carriers for genetic counselling and design of therapeutic intervention trials to modify disease progression (i.e.
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Department of Occupational Therapy, Faculty of Medicine and Health Science, Stellenbosch University, Cape Town, South Africa.
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December 2024
Department of Social Studies, Faculty of Social Sciences, University of Stavanger, Stavanger, Norway.
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Family Medicine, Rowan-Virtua School of Osteopathic Medicine, Stratford, USA.
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Division of Pulmonary, Allergy, Critical Care, and Sleep Medicine and.
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