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Kernel PCA for Out-of-Distribution Detection

About

Out-of-Distribution (OoD) detection is vital for the reliability of Deep Neural Networks (DNNs). Existing works have shown the insufficiency of Principal Component Analysis (PCA) straightforwardly applied on the features of DNNs in detecting OoD data from In-Distribution (InD) data. The failure of PCA suggests that the network features residing in OoD and InD are not well separated by simply proceeding in a linear subspace, which instead can be resolved through proper non-linear mappings. In this work, we leverage the framework of Kernel PCA (KPCA) for OoD detection, and seek suitable non-linear kernels that advocate the separability between InD and OoD data in the subspace spanned by the principal components. Besides, explicit feature mappings induced from the devoted task-specific kernels are adopted so that the KPCA reconstruction error for new test samples can be efficiently obtained with large-scale data. Extensive theoretical and empirical results on multiple OoD data sets and network structures verify the superiority of our KPCA detector in efficiency and efficacy with state-of-the-art detection performance.

Kun Fang, Qinghua Tao, Kexin Lv, Mingzhen He, Xiaolin Huang, Jie Yang• 2024

Related benchmarks

TaskDatasetResultRank
OOD DetectionMVTec Pill (Similar)
AUROC88.27
90
OOD DetectionMVTec Pill (Dissimilar)
AUROC81.15
90
OOD DetectionMVTec Metal Nut Dissimilar
AUROC0.5352
90
OOD DetectionISIC Ink Artefacts (Similar)
AUROC71.74
70
OOD DetectionISIC Colour Chart Artefacts Synth Similar
AUROC0.8858
40
OOD DetectionISIC Colour Chart Artefacts, Synth Dissimilar
AUROC83.97
40
OOD DetectionISIC Colour Chart Artefacts (Dissimilar)
AUROC0.8435
40
OOD DetectionISIC Colour Chart Artefacts Similar
AUROC87.37
40
OOD DetectionISIC Ink Artefacts (Dissimilar)
AUROC65.76
40
OOD DetectionISIC Colour Chart Artefacts Similar (test)
AUROC0.9109
30
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