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GPS Estimation for Places of Interest From Social Users' Uploaded Photos

机译:从社交用户上传的照片中对景点进行GPS估算

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摘要

Social media has become a very popular way for people to share their photos with friends. Because most of the social images are attached with GPS (geo-tags), a photo's GPS information can be estimated with the help of the large geo-tagged image set while using a visual searching based approach. This paper proposes an unsupervised image GPS location estimation approach with hierarchical global feature clustering and local feature refinement. It consists of two parts: an offline system and an online system. In the offline system, a hierarchical structure is constructed for a large-scale offline social image set with GPS information. Representative images are selected for each GPS location refined cluster, and an inverted file structure is proposed. In the online system, when given an input image, its GPS information can be estimated by hierarchical global clusters selection and local feature refinement in the online system. Both the computational cost and GPS estimation performance demonstrates the effectiveness of the proposed hierarchical structure and inverted file structure in our approach.
机译:社交媒体已成为人们与朋友分享照片的一种非常流行的方式。由于大多数社交图像都附有GPS(地理标签),因此在使用基于视觉搜索的方法时,可以借助带有地理标签的大型图像集来估算照片的GPS信息。本文提出了一种具有分层全局特征聚类和局部特征细化的无监督图像GPS定位估计方法。它由两部分组成:离线系统和在线系统。在离线系统中,为具有GPS信息的大规模离线社交图像集构建了层次结构。为每个GPS定位精炼簇选择代表图像,并提出一种倒排文件结构。在在线系统中,当给定输入图像时,可以通过在线系统中的分层全局聚类选择和局部特征细化来估计其GPS信息。计算成本和GPS估计性能都证明了我们提出的分层结构和倒排文件结构的有效性。

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