Bayesian Confidence Calibration for Epistemic Uncertainty Modelling

2021 IEEE Intelligent Vehicles Symposium (IV)(2021)

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摘要
Modern neural networks have found to be miscalibrated in terms of confidence calibration, i.e., their predicted confidence scores do not reflect the observed accuracy or precision. Recent work has introduced methods for post-hoc confidence calibration for classification as well as for object detection to address this issue. Especially in safety critical applications, it is crucial to obtain a reli...
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关键词
Uncertainty,Neural networks,Stochastic processes,Training data,Object detection,Calibration,Bayes methods
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