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Automatic Assistance to Cognitive Disabled Web Users via Reinforcement Learning on the Browser

  • Tomas Murillo Morales (Vortragende*r)

Aktivität: Vortrag oder PräsentationVortrag nach Bewerbung und AuswahlScience-to-science

Beschreibung

This paper introduces a proof of concept software reasoner that aims to detect whether an individual user is in need of cognitive assistance during a typical Web browsing session. The implemented reasoner is part of the Easy Reading browser extension for Firefox. It aims to infer the user’s current cognitive state by collecting and analyzing user’s physiological data in real time, such as eye tracking, heart beat rate and variability, and blink rate. In addition, when the reasoner determines that the user is in need of help it automatically triggers a support tool appropriate for the individual user and Web content being consumed. By framing the problem as a Markov Decision Process, typical policy control methods found in the Reinforcement Learning literature, such as Q-learning, can be employed to tackle the learning problem.
Zeitraum10 Sep. 2020
Ereignistitelunbekannt/unknown
VeranstaltungstypKonferenz
OrtÖsterreichAuf Karte anzeigen

Wissenschaftszweige

  • 502007 E-Commerce
  • 509002 Disability Studies
  • 102027 Web Engineering
  • 302027 Hör-, Stimm- und Sprachstˆrungen
  • 202004 Brain-Computer Interface
  • 503008 E-Learning
  • 102 Informatik
  • 602013 Gebärdensprachforschung
  • 506002 E-Government
  • 211902 Assistierende Technologien
  • 102022 Softwareentwicklung
  • 102021 Pervasive Computing
  • 102013 Human-Computer Interaction
  • 102024 Usability Research
  • 102015 Informationssysteme
  • 102026 Virtual Reality
  • 102014 Informationsdesign
  • 102036 Digitale Barrierefreiheit

JKU-Schwerpunkte

  • Digital Transformation
  • Sustainable Development: Responsible Technologies and Management