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  4. Stating Comparison Score Uncertainty and Verification Decision Confidence Towards Transparent Face Recognition
 
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2022
Conference Paper
Title

Stating Comparison Score Uncertainty and Verification Decision Confidence Towards Transparent Face Recognition

Abstract
Face Recognition (FR) is increasingly used in critical verification decisions and thus, there is a need for assessing the trustworthiness of such decisions. The confidence of a decision is often based on the overall performance of the model or on the image quality. We propose to propagate model uncertainties to scores and decisions in an effort to increase the transparency of verification decisions. This work presents two contributions. First, we propose an approach to estimate the uncertainty of face comparison scores. Second, we introduce a confidence measure of the system's decision to provide insights into the verification decision. The suitability of the comparison scores uncertainties and the verification decision confidences have been experimentally proven on three face recognition models on two datasets.
Author(s)
Huber, Marco
Fraunhofer-Institut für Graphische Datenverarbeitung IGD  
Terhörst, Philipp
Fraunhofer-Institut für Graphische Datenverarbeitung IGD  
Kirchbuchner, Florian  orcid-logo
Fraunhofer-Institut für Graphische Datenverarbeitung IGD  
Damer, Naser  
Fraunhofer-Institut für Graphische Datenverarbeitung IGD  
Kuijper, Arjan  orcid-logo
Fraunhofer-Institut für Graphische Datenverarbeitung IGD  
Mainwork
Bmvc 2022 33rd British Machine Vision Conference Proceedings
Funder
Bundesministerium für Bildung und Forschung  
Conference
33rd British Machine Vision Conference Proceedings, BMVC 2022
Language
English
Fraunhofer-Institut für Graphische Datenverarbeitung IGD  
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