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Papers/Omni-DETR: Omni-Supervised Object Detection with Transform...

Omni-DETR: Omni-Supervised Object Detection with Transformers

Pei Wang, Zhaowei Cai, Hao Yang, Gurumurthy Swaminathan, Nuno Vasconcelos, Bernt Schiele, Stefano Soatto

2022-03-30CVPR 2022 1object-detectionObject DetectionSemi-Supervised Object Detection
PaperPDFCode(official)

Abstract

We consider the problem of omni-supervised object detection, which can use unlabeled, fully labeled and weakly labeled annotations, such as image tags, counts, points, etc., for object detection. This is enabled by a unified architecture, Omni-DETR, based on the recent progress on student-teacher framework and end-to-end transformer based object detection. Under this unified architecture, different types of weak labels can be leveraged to generate accurate pseudo labels, by a bipartite matching based filtering mechanism, for the model to learn. In the experiments, Omni-DETR has achieved state-of-the-art results on multiple datasets and settings. And we have found that weak annotations can help to improve detection performance and a mixture of them can achieve a better trade-off between annotation cost and accuracy than the standard complete annotation. These findings could encourage larger object detection datasets with mixture annotations. The code is available at https://github.com/amazon-research/omni-detr.

Results

TaskDatasetMetricValueModel
Semi-Supervised Object DetectionCOCO 10% labeled datamAP34.1Omni-DETR
Semi-Supervised Object DetectionCOCO 2% labeled datamAP23.2Omni-DETR
Semi-Supervised Object DetectionCOCO 5% labeled datamAP30.2Omni-DETR
Semi-Supervised Object DetectionCOCO 1% labeled datamAP18.6Omni-DETR
2D Object DetectionCOCO 10% labeled datamAP34.1Omni-DETR
2D Object DetectionCOCO 2% labeled datamAP23.2Omni-DETR
2D Object DetectionCOCO 5% labeled datamAP30.2Omni-DETR
2D Object DetectionCOCO 1% labeled datamAP18.6Omni-DETR

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