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Locale-based visual object retrieval under illumination change

机译:光照变化下基于语言环境的视觉对象检索

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Providing a user with an effective image search engine has been a very active research area. A search by an object model is considered to be one of the most desirable and yet difficult tasks. An added difficulty is that objects can be photographed under different lighting conditions. We have developed a feature localization scheme that finds a set of locales in an image. We make use of a diagonal model for illumination change and obtain a candidate set of lighting transformation coefficients in chromaticity space. For each pair of coefficients, elastic correlation is performed, which is a form of correlation of locale colors. A least square minimization for pose estimation is then applied, followed by a process of texture support and shape verification. Tests on a database of over 1,400 images and video clips show promising image retrieval results. Moreover it has been shown that the method is capable of recovering lighting changes.
机译:向用户提供有效的图像搜索引擎一直是非常活跃的研究领域。通过对象模型进行搜索被认为是最理想且最困难的任务之一。另一个困难是,可以在不同的照明条件下拍摄物体。我们已经开发了一种特征本地化方案,可以在图像中找到一组语言环境。我们利用对角线模型进行照明变化,并在色度空间中获得候选的照明变换系数集。对于每对系数,执行弹性相关,这是区域颜色相关的一种形式。然后应用用于姿势估计的最小二乘最小化,然后是纹理支持和形状验证的过程。在包含1,400多个图像和视频剪辑的数据库上进行的测试显示出令人鼓舞的图像检索结果。此外,已经表明,该方法能够恢复照明变化。

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