Hypergraph Propagation and Community Selection for Objects Retrieval
Guoyuan An, Yuchi Huo, Sung Eui Yoon
Abstract
Spatial verification is a crucial technique for particular object retrieval. It utilizes spatial information for the accurate detection of true positive images. However, existing query expansion and diffusion methods cannot efficiently propagate the spatial information in an ordinary graph with scalar edge weights, resulting in low recall or precision. To tackle these problems, we propose a novel hypergraphbased framework that efficiently propagates spatial information in query time and retrieves an object in the database accurately. Additionally, we propose using the image graph's structure information through community selection technique, to measure the accuracy of the initial search result and to provide correct starting points for hypergraph propagation without heavy spatial verification computations. Experiment results on ROxford and RParis show that our method significantly outperforms the existing query expansion and diffusion methods.
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Cited by top-tier papers4
- Where's Waldo: Diffusion Features For Personalized Segmentation and RetrievalDvir Samuel, Rami Ben-Ari, Matan Levy, Nir Darshan et al.NeurIPS 2024 · 19 citations
- Towards Content-based Pixel Retrieval in Revisited Oxford and ParisGuoyuan An, Woo Jae Kim, Saelyne Yang, Rong Li et al.ICCV 2023 · 5 citations
- Topological RANSAC for instance verification and retrieval without fine-tuningGuoyuan An, Juhyeong Seon, Inkyu An, Yuchi Huo et al.NeurIPS 2023 · 4 citations
- Find your Needle: Small Object Image Retrieval via Multi-Object Attention OptimizationMichael Green, Matan Levy, Issar Tzachor, Dvir Samuel et al.NeurIPS 2025 · 1 citation
Builds on2
- SuperGlue: Learning Feature Matching With Graph Neural NetworksPaul-Edouard Sarlin, Daniel DeTone, Tomasz Malisiewicz, Andrew RabinovichCVPR 2020
- Google Landmarks Dataset v2 - A Large-Scale Benchmark for Instance-Level Recognition and RetrievalTobias Weyand, André Araújo, Bingyi Cao, Jack SimCVPR 2020
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