Coming Down to Earth: Satellite-to-Street View Synthesis for Geo-Localization
Aysim Toker, Qunjie Zhou, Maxim Maximov, Laura Leal-Taixé
摘要
The goal of cross-view image based geo-localization is to determine the location of a given street view image by matching it against a collection of geo-tagged satellite images. This task is notoriously challenging due to the drastic viewpoint and appearance differences between the two domains. We show that we can address this discrepancy explicitly by learning to synthesize realistic street views from satellite inputs. Following this observation, we propose a novel multi-task architecture in which image synthesis and retrieval are considered jointly. The rationale behind this is that we can bias our network to learn latent feature representations that are useful for retrieval if we utilize them to generate images across the two input domains. To the best of our knowledge, ours is the first approach that creates realistic street views from satellite images and localizes the corresponding query street-view simultaneously in an end-to-end manner. In our experiments, we obtain state-of-the-art performance on the CVUSA and CVACT benchmarks. Finally, we show compelling qualitative results for satellite-to-street view synthesis.
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引用它的顶会 Paper40
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它引用的顶会 Paper5
- Optimal Feature Transport for Cross-View Image Geo-LocalizationYujiao Shi, Xin Yu, Liu Liu, Tong Zhang 等AAAI 2020 · 被引用 210 次
- Bridging the Domain Gap for Ground-to-Aerial Image MatchingKrishna Regmi, Mubarak ShahICCV 2019 · 被引用 191 次
- Ground-to-Aerial Image Geo-Localization With a Hard Exemplar Reweighting Triplet LossSudong Cai, Yulan Guo, Salman H. Khan, Jiwei Hu 等ICCV 2019 · 被引用 140 次
- Where Am I Looking At? Joint Location and Orientation Estimation by Cross-View MatchingYujiao Shi, Xin Yu, Dylan Campbell, Hongdong LiCVPR 2020
- Geometry-Aware Satellite-to-Ground Image Synthesis for Urban AreasXiaohu Lu, Zuoyue Li, Zhaopeng Cui, Martin R. Oswald 等CVPR 2020
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