An Automated Virtual Receptionist for Recognizing Visitors and Assuring Mask Wearing

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Date
2020
Journal Title
Journal ISSN
Volume Title
Publisher
The Eurographics Association
Abstract
Intelligent virtual agents have many societal uses, specifically in situations in which the presence of real humans would be prohibitive. In particular, virtual receptionists can perform a variety of tasks associated with visitor and employee safety, e.g., during the COVID-19 pandemic. In this poster, we present our prototype of a virtual receptionist that employs computer vision and meta-learning techniques to identify and interact with a visitor in a manner similar to that of a real human receptionist. Specifically we employ a meta-learning-based classifier to learn the visitors' faces from the minimal data collected during a first visit, such that the receptionist can recognize the same visitor during follow-up visits. The system also makes use of deep neural network-based computer vision techniques to recognize whether the visitor is wearing a face mask or not.
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@inproceedings{
10.2312:egve.20201273
, booktitle = {
ICAT-EGVE 2020 - International Conference on Artificial Reality and Telexistence and Eurographics Symposium on Virtual Environments - Posters and Demos
}, editor = {
Kulik, Alexander and Sra, Misha and Kim, Kangsoo and Seo, Byung-Kuk
}, title = {{
An Automated Virtual Receptionist for Recognizing Visitors and Assuring Mask Wearing
}}, author = {
Zehtabian, Sharare
and
Khodadadeh, Siavash
and
Kim, Kangsoo
and
Bruder, Gerd
and
Welch, Greg
and
Bölöni, Ladislau
and
Turgut, Damla
}, year = {
2020
}, publisher = {
The Eurographics Association
}, ISSN = {
1727-530X
}, ISBN = {
978-3-03868-112-0
}, DOI = {
10.2312/egve.20201273
} }
Citation