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Semi-Supervised Exploration in Image Retrieval

Authors :
Chang, Cheng
Rai, Himanshu
Gorti, Satya Krishna
Ma, Junwei
Liu, Chundi
Yu, Guangwei
Volkovs, Maksims
Publication Year :
2019

Abstract

We present our solution to Landmark Image Retrieval Challenge 2019. This challenge was based on the large Google Landmarks Dataset V2[9]. The goal was to retrieve all database images containing the same landmark for every provided query image. Our solution is a combination of global and local models to form an initial KNN graph. We then use a novel extension of the recently proposed graph traversal method EGT [1] referred to as semi-supervised EGT to refine the graph and retrieve better candidates.

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.1906.04944
Document Type :
Working Paper