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  4. Uncertainty-aware Evaluation of Time-Series Classification for Online Handwriting Recognition with Domain Shift
 
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2022
Conference Paper
Title

Uncertainty-aware Evaluation of Time-Series Classification for Online Handwriting Recognition with Domain Shift

Abstract
For many applications, analyzing the uncertainty of a machine learning model is indispensable. While research of uncertainty quantification (UQ) techniques is very advanced for computer vision applications, UQ methods for spatio-temporal data are less studied. In this paper, we focus on models for online handwriting recognition, one particular type of spatio-temporal data. The data is observed from a sensor-enhanced pen with the goal to classify written characters. We conduct a broad evaluation of aleatoric (data) and epistemic (model) UQ based on two prominent techniques for Bayesian inference, Stochastic Weight Averaging-Gaussian (SWAG) and Deep Ensembles. Next to a better understanding of the model, UQ techniques can detect out-of-distribution data and domain shifts when combining right-handed and left-handed writers (an underrepresented group).
Author(s)
Klaß, Andreas
Fraunhofer-Institut für Integrierte Schaltungen IIS  
Lorenz, Sven M.
Fraunhofer-Institut für Integrierte Schaltungen IIS  
Lauer-Schmaltz, Martin Wolfgang
Rügamer, David
Bischl, Bernd
Mutschler, Christopher  
Fraunhofer-Institut für Integrierte Schaltungen IIS  
Ott, Felix
Fraunhofer-Institut für Integrierte Schaltungen IIS  
Mainwork
1st International Workshop on Spatio-Temporal Reasoning and Learning, STRL 2022. Proceedings  
Conference
International Workshop on Spatio-Temporal Reasoning and Learning 2022  
International Joint Conference on Artificial Intelligence 2022  
European Conference on Artificial Intelligence 2022  
Link
Link
Language
English
Fraunhofer-Institut für Integrierte Schaltungen IIS  
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