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Ultra-wide Baseline Facade Matching for Geo-localization

机译:用于地理定位的超宽基线立面匹配

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Matching street-level images to a database of airborne images is hard because of extreme viewpoint and illumination differences. Color/gradient distributions or local descriptors fail to match forcing us to rely on the structure of self-similarity of patterns on facades. We propose to capture this structure with a novel "scale-selective self-similarity" (S~4) descriptor which is computed at each point on the facade at its inherent scale. To achieve this, we introduce a new method for scale selection which enables the extraction and segmentation of facades as well. Matching is done with a Bayesian classification of the street-view query S~4 descriptors given all labeled descriptors in the bird's-eye-view database. We show experimental results on retrieval accuracy on a challenging set of publicly available imagery and compare with standard SIFT-based techniques.
机译:由于极端的视点和照明差异,很难将街道图像与机载图像数据库进行匹配。颜色/渐变分布或局部描述符无法匹配,这迫使我们不得不依赖立面上图案的自相似性的结构。我们建议使用新颖的“比例选择性自相似”(S〜4)描述符来捕获此结构,该描述符是在立面的每个点以其固有比例进行计算的。为了实现这一目标,我们引入了一种新的比例尺选择方法,该方法还可以进行外墙的提取和分割。给定鸟瞰数据库中所有标记的描述符,使用街景查询S〜4描述符的贝叶斯分类进行匹配。我们在一组具有挑战性的公开图像上显示了关于检索精度的实验结果,并与基于标准SIFT的技术进行了比较。

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