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A Strong and Reproducible Object Detector with Only Public Datasets

25 April 2023
Tianhe Ren
Jianwei Yang
Siyi Liu
Ailing Zeng
Feng Li
Hao Zhang
Hongyang Li
Zhaoyang Zeng
Lei Zhang
    ObjD
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Abstract

This work presents Focal-Stable-DINO, a strong and reproducible object detection model which achieves 64.6 AP on COCO val2017 and 64.8 AP on COCO test-dev using only 700M parameters without any test time augmentation. It explores the combination of the powerful FocalNet-Huge backbone with the effective Stable-DINO detector. Different from existing SOTA models that utilize an extensive number of parameters and complex training techniques on large-scale private data or merged data, our model is exclusively trained on the publicly available dataset Objects365, which ensures the reproducibility of our approach.

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