城市建筑CBIR利用A-KAZE的特点

Ciprian Orhei, Lucian Radu, M. Mocofan, Silviu Vert, R. Vasiu
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引用次数: 3

摘要

基于内容的图像检索系统是计算机视觉领域一个活跃的研究课题。这些系统在处理城市环境增强现实应用时非常重要,比如建筑地标识别、旅游故事讲述、文化遗产等。在本文中,我们提出了一个基于内容的图像检索系统,该系统仅使用视觉线索来处理城市场景中的建筑物识别。该系统使用了一个特征描述符框架,用于提取感兴趣点的图像特征。该系统是一个自然的进步,因为特征包或a - kaze都在其他应用中显示出良好的效果。为了评估我们提出的系统,我们使用了流行的数据集ZuBuD,在那里我们获得了99%的检测准确率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
CBIR for urban building using A-KAZE features
Content based image retrieval systems are an active research topic in the Computer Vision domain. These systems are important when dealing with urban environment augmented reality applications like building landmarks recognition, tourism storytelling, cultural heritage and so on. In this paper we propose a content-based image retrieval system that handles recognizing buildings from an urban scenario using only visual cues. The system use a Bag of Features feature descriptor framework and, for extracting points of interest, image features. The proposed system is a natural step forward as Bag of Features or A-KAZE both have shown good results in other applications. To evaluate our proposed system, we have used the popular dataset, ZuBuD, where we obtained a 99% accuracy in detection.
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