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Task Agnostic and Post-hoc Unseen Distribution Detection

About

Despite the recent advances in out-of-distribution(OOD) detection, anomaly detection, and uncertainty estimation tasks, there do not exist a task-agnostic and post-hoc approach. To address this limitation, we design a novel clustering-based ensembling method, called Task Agnostic and Post-hoc Unseen Distribution Detection (TAPUDD) that utilizes the features extracted from the model trained on a specific task. Explicitly, it comprises of TAP-Mahalanobis, which clusters the training datasets' features and determines the minimum Mahalanobis distance of the test sample from all clusters. Further, we propose the Ensembling module that aggregates the computation of iterative TAP-Mahalanobis for a different number of clusters to provide reliable and efficient cluster computation. Through extensive experiments on synthetic and real-world datasets, we observe that our approach can detect unseen samples effectively across diverse tasks and performs better or on-par with the existing baselines. To this end, we eliminate the necessity of determining the optimal value of the number of clusters and demonstrate that our method is more viable for large-scale classification tasks.

Radhika Dua, Seongjun Yang, Yixuan Li, Edward Choi• 2022

Related benchmarks

TaskDatasetResultRank
OOD DetectionMVTec Pill (Dissimilar)
AUROC65.64
90
OOD DetectionMVTec Pill (Similar)
AUROC68.9
90
OOD DetectionMVTec Metal Nut Dissimilar
AUROC0.583
90
OOD DetectionISIC Ink Artefacts (Similar)
AUROC70.79
70
OOD DetectionISIC Colour Chart Artefacts Synth Similar
AUROC0.9326
40
OOD DetectionISIC Colour Chart Artefacts, Synth Dissimilar
AUROC90.34
40
OOD DetectionISIC Colour Chart Artefacts (Dissimilar)
AUROC0.9331
40
OOD DetectionISIC Colour Chart Artefacts Similar
AUROC95.13
40
OOD DetectionISIC Ink Artefacts (Dissimilar)
AUROC57.01
40
OOD DetectionISIC Colour Chart Artefacts Similar (test)
AUROC0.6864
30
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