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Meta-DETR: Image-Level Few-Shot Object Detection with Inter-Class Correlation Exploitation

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Few-shot object detection has been extensively investigated by incorporating meta-learning into region-based detection frameworks. Despite its success, the said paradigm is constrained by several factors, such as (i) low-quality region proposals for novel classes and (ii) negligence of the inter-class correlation among different classes. Such limitations hinder the generalization of base-class knowledge for the detection of novel-class objects. In this work, we design Meta-DETR, a novel few-shot detection framework that incorporates correlational aggregation for meta-learning into DETR detection frameworks. Meta-DETR works entirely at image level without any region proposals, which circumvents the constraint of inaccurate proposals in prevalent few-shot detection frameworks. Besides, Meta-DETR can simultaneously attend to multiple support classes within a single feed-forward. This unique design allows capturing the inter-class correlation among different classes, which significantly reduces the misclassification of similar classes and enhances knowledge generalization to novel classes. Experiments over multiple few-shot object detection benchmarks show that the proposed Meta-DETR outperforms state-of-the-art methods by large margins. The implementation codes will be released at https://github.com/ZhangGongjie/Meta-DETR.

Gongjie Zhang, Zhipeng Luo, Kaiwen Cui, Shijian Lu• 2021

Related benchmarks

TaskDatasetResultRank
Object DetectionMS COCO novel classes 2017 (val)
AP22.2
123
Object DetectionPASCAL VOC (Novel Set 1)--
71
Few-shot Object DetectionMS COCO novel classes
mAP22.2
37
Object DetectionPascal VOC Class Split 1 2007 (test)
mAP@0.573.5
34
Object DetectionPascal VOC Overall Average 2007 (test)
mAP@0.550.2
20
Object DetectionMS COCO (novel split)
1-Shot nAP7.5
15
Object DetectionMS COCO 20 novel categories 2017 (val)
Novel AP @ 10 Shots19
13
Object DetectionPascal VOC Class Split 2 2007 (test)
mAP@0.554.6
10
Object DetectionPascal VOC Class Split 3 2007 (test)
mAP@0.560.6
10
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