Saved in:
Bibliographic Details
Main Authors: Aulika, I., Ogurcovs, A., Kemere, M., Bundulis, A., Kundzins, K., Butikova, J., Vembris, A., Sarakovskis, A., Bacher, E., Laurenzis, M., Schertzer, S., Stopar, J., Zore, A., Kamnik, R., Munih, M., Cartiel, S., Garcia-Pueyo, J., Munoz, A.
Format: Preprint
Published: 2025
Subjects:
Online Access:https://arxiv.org/abs/2507.22456
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866913965970292736
author Aulika, I.
Ogurcovs, A.
Kemere, M.
Bundulis, A.
Kundzins, K.
Butikova, J.
Vembris, A.
Sarakovskis, A.
Bacher, E.
Laurenzis, M.
Schertzer, S.
Stopar, J.
Zore, A.
Kamnik, R.
Munih, M.
Cartiel, S.
Garcia-Pueyo, J.
Munoz, A.
author_facet Aulika, I.
Ogurcovs, A.
Kemere, M.
Bundulis, A.
Kundzins, K.
Butikova, J.
Vembris, A.
Sarakovskis, A.
Bacher, E.
Laurenzis, M.
Schertzer, S.
Stopar, J.
Zore, A.
Kamnik, R.
Munih, M.
Cartiel, S.
Garcia-Pueyo, J.
Munoz, A.
contents Optical tactile sensing holds transformative potential for robotics, particularly in collaborative environments where touch perception enhances safety, adaptability, and cognitive interaction. However, traditional tactile technologies based on total internal reflection (TIR) and frustrated total internal reflection (FTIR) - such as those used in touchscreen systems - face significant limitations. These include reliance on multiple infrared light sources and cameras, as well as poor adaptability to the complex, curved geometries often found in robotic systems. To address these challenges, we recently introduced OptoSkin, an advanced optical tactile sensor based on direct Time-of-Flight (ToF) technology, enabling touch and pressure detection. In this study, we investigate how specific material properties, particularly light scattering, influence the sensitivity of contact point detection under direct ToF sensing. Four materials with distinct scattering coefficients were selected to assess their impact on signal quality across different contact scenarios involving various target surfaces.
format Preprint
id arxiv_https___arxiv_org_abs_2507_22456
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Characterizing Material Effects On Direct ToF Signal Response In Optical Tactile Systems
Aulika, I.
Ogurcovs, A.
Kemere, M.
Bundulis, A.
Kundzins, K.
Butikova, J.
Vembris, A.
Sarakovskis, A.
Bacher, E.
Laurenzis, M.
Schertzer, S.
Stopar, J.
Zore, A.
Kamnik, R.
Munih, M.
Cartiel, S.
Garcia-Pueyo, J.
Munoz, A.
Optics
Materials Science
Optical tactile sensing holds transformative potential for robotics, particularly in collaborative environments where touch perception enhances safety, adaptability, and cognitive interaction. However, traditional tactile technologies based on total internal reflection (TIR) and frustrated total internal reflection (FTIR) - such as those used in touchscreen systems - face significant limitations. These include reliance on multiple infrared light sources and cameras, as well as poor adaptability to the complex, curved geometries often found in robotic systems. To address these challenges, we recently introduced OptoSkin, an advanced optical tactile sensor based on direct Time-of-Flight (ToF) technology, enabling touch and pressure detection. In this study, we investigate how specific material properties, particularly light scattering, influence the sensitivity of contact point detection under direct ToF sensing. Four materials with distinct scattering coefficients were selected to assess their impact on signal quality across different contact scenarios involving various target surfaces.
title Characterizing Material Effects On Direct ToF Signal Response In Optical Tactile Systems
topic Optics
Materials Science
url https://arxiv.org/abs/2507.22456