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XAIface: A Framework and Toolkit for Explainable Face Recognition

Beteiligte Autor*innen der JOANNEUM RESEARCH:
Autor*innen:
MirabetHerranz, Nelida and Winter, Martin and Lu, Yuhang and Bousnina, Naima and Pfıster, Jonas and Galdi, Chiara and Dugelay, JeanLuc and Bailer, Werner and Ebrahimi, Touradj and Correira, Paulo Lobato and Pereira, Fernando and Schmautzer, Felix and Schweighofer, Erich
Abstract:
Artificial intelligencebased face recognition solutions are becoming increasingly popular. Therefore, it is crucial to fully understand and explain how these technologies work in order to make them more effective and acceptable to society. This is the goal of the CHISTERA project XAIface, the final results of which are reported in this article: a framework and toolkit for improving AI decision explainability, in the context of automated face recognition, through several novel methods are presented. These methods are integrated into an endtoend face recognition demonstrator system, which facilitates studying the impact of various influencing factors and system processes on recognition performance. By doing so, we can visually explain the decisions made by the face verification pipeline for specific instances in our test set using heatmaps and locally interpretable features. Furthermore, we offer a comprehensive explanation of the endtoend model by examining the relationship between verification failures and misclassifications of soft biometric facial traits.
Titel:
XAIface: A Framework and Toolkit for Explainable Face Recognition
Herausgeber (Verlag):
IEEE
Seiten:
1-7

Publikationsreihe

Buchtitel
2024 International Conference on ContentBased Multimedia Indexing (CBMI)
Herausgeber(Verlag)
IEEE

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