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Learning Based Image Selection for 3D Reconstruction of Heritage Sites

机译:基于学习的图像选择,用于遗址的3D重建

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In this paper, we propose learning based pipeline with image clustering and image selection methods for 3D reconstruction of heritage site using cleaned internet sourced images. Cleaned internet sourced images means the images that do not contain an image with text, blur, occlusion, and shadow. 3D reconstruction of heritage sites is one of the emerging topics and is gaining importance as efforts are made to digitally preserve the heritage sites. 3D reconstruction using internet-sourced images is challenging as they often contain thousands of images taken from the same viewpoint. We propose to use autoencoders to extract robust features from images to cluster similar parts of heritage sites. We propose to use the image selection algorithm to select images from each cluster with the removal of redundant images. We demonstrate the proposed pipeline using available 3D reconstruction pipeline for a variety of heritage sites which contain one cluster to eight clusters and obtain better visual 3D reconstruction.
机译:在本文中,我们提出了一种基于学习的管道,该管道具有图像聚类和图像选择方法,可使用清洁的Internet来源图像对遗产地进行3D重建。清洁的互联网来源图像表示不包含带有文本,模糊,遮挡和阴影的图像的图像。遗产地的3D重建是新出现的主题之一,并且随着人们对遗产地进行数字化保护而变得越来越重要。使用来自互联网的图像进行3D重建具有挑战性,因为它们通常包含数千张从同一角度拍摄的图像。我们建议使用自动编码器从图像中提取强大的功能,以对遗产遗址的相似部分进行聚类。我们建议使用图像选择算法从每个群集中选择图像,同时去除多余的图像。我们针对包含1个集群到8个集群的各种遗产,使用可用的3D重建管线演示了拟议的管线,并获得了更好的可视3D重建。

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