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  4. SSBC 2020: Sclera Segmentation Benchmarking Competition in the Mobile Environment
 
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2020
Conference Paper
Title

SSBC 2020: Sclera Segmentation Benchmarking Competition in the Mobile Environment

Abstract
The paper presents a summary of the 2020 Sclera Segmentation Benchmarking Competition (SSBC), the 7th in the series of group benchmarking efforts centred around the problem of sclera segmentation. Different from previous editions, the goal of SSBC 2020 was to evaluate the performance of sclera-segmentation models on images captured with mobile devices. The competition was used as a platform to assess the sensitivity of existing models to i) differences in mobile devices used for image capture and ii) changes in the ambient acquisition conditions. 26 research groups registered for SSBC 2020, out of which 13 took part in the final round and submitted a total of 16 segmentation models for scoring. These included a wide variety of deep-learning solutions as well as one approach based on standard image processing techniques. Experiments were conducted with three recent datasets. Most of the segmentation models achieved relatively consistent performance across images captured with different mobile devices (with slight differences across devices), but struggled most with low-quality images captured in challenging ambient conditions, i.e., in an indoor environment and with poor lighting.
Author(s)
Vitek, M.
Univ. of Ljubljana
Das, A.
Indian Statistical Institute
Pourcenoux, Yann
Grenoble Institute of Technology
Missler, Alexandre
Ecole Nationale Superieure de l'Electronique et de ses Applications
Paumier, C.
Ecole Nationale Superieure de l'Electronique et de ses Applications
Das, S.
Univ. of Engineering and Management
Ghosh, Ishita de
Barrackpore Rastraguru Surendranath College
Lucio, Diego Rafael
Federal University of Parana
Zanlorensi, Luiz Antonio
Federal Univ. of Parana
Boutros, Fadi  orcid-logo
Fraunhofer-Institut für Graphische Datenverarbeitung IGD  
Damer, Naser  
Federal Univ. of Parana
Grebe, Jonas Henry
Fraunhofer-Institut für Graphische Datenverarbeitung IGD  
Kuijper, Arjan  orcid-logo
Fraunhofer-Institut für Graphische Datenverarbeitung IGD  
Hu, J.
Fraunhofer-Institut für Graphische Datenverarbeitung IGD  
He, Y.
Chinese Academy of Sciences
Wang, C.
Chinese Academy of Sciences
Liu, H.
Beijing Univ. of Civil Engineering and Architecture
Wang, Y.
Chinese Academy of Sciences
Sun, Z.
Chinese Academy of Sciences
Osorio-Roig, D.
Chinese Academy of Sciences
Rathgeb, Christian
Hochschule Darmstadt
Busch, Christoph
Hochschule Darmstadt
Tapia, Juan
Hochschule Darmstadt
Valenzuela, Andrés
Univ. de Santiago
Zampoukis, Georgios
TOC Biometrics
Tsochatzidis, Lazaros
Democritus Univ. of Thrace
Pratikakis, Ioannis
Democritus Univ. of Thrace
Nathan, Sabari
Democritus Univ. of Thrace
Suganya, Ramamoorthy
Couger Inc.
Mehta, V.
Thiagarajar College of Engineering
Dhall, Abhinav
Indian Institute of Technology Ropar
Raja, Kiran
Indian Institute of Technology Ropar / Monash Univ.
Gupta, G.
Norwegian Univ. of Science and Technology
Khiarak, Jalil Nourmohammadi
Norwegian Univ. of Science and Technology
Akbari-Shahper, Mohsen
Warsaw Univ. of Technology
Jaryani, Farhang
Tabriz Univ.
Asgari-Chenaghl, Meysam
Arak Univ.
Vyas, Ritesh
Tabriz Univ.
Dakshit, Sagnik
Bennet Univ.
Peer, Peter
Univ. of Texas at Dallas
Pal, Umapada
Univ. of Ljubljana
Struc, Vitomir
Indian Statistical Institute
Menotti, David
Univ. of Ljubljana
Mainwork
IEEE International Joint Conference on Biometrics, IJCB 2020  
Project(s)
TReSPAsS-ETN
ATHENE
Funder
European Commission EC  
Bundesministerium für Bildung und Forschung BMBF (Deutschland)  
Conference
International Joint Conference on Biometrics (IJCB) 2020  
DOI
10.1109/IJCB48548.2020.9304881
Language
English
Fraunhofer-Institut für Graphische Datenverarbeitung IGD  
Keyword(s)
  • ATHENE

  • CRISP

  • Lead Topic: Visual Computing as a Service

  • Research Line: Computer vision (CV)

  • biometrics

  • machine learning

  • artificial intelligence (AI)

  • Iris recognition

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