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3rd Place Solution to "Google Landmark Retrieval 2020"

24 August 2020
Ke Mei
Lei li
Jinchang Xu
Yanhua Cheng
Yugeng Lin
    3DV
    3DPC
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Abstract

Image retrieval is a fundamental problem in computer vision. This paper presents our 3rd place detailed solution to the Google Landmark Retrieval 2020 challenge. We focus on the exploration of data cleaning and models with metric learning. We use a data cleaning strategy based on embedding clustering. Besides, we employ a data augmentation method called Corner-Cutmix, which improves the model's ability to recognize multi-scale and occluded landmark images. We show in detail the ablation experiments and results of our method.

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