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Landscape Fusion Method Based on Augmented Reality and Multiview Reconstruction

机译:基于增强现实和多视角重建的景观融合方法

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摘要

This paper proposes a fused landscape augmented reality method based on 3D model multiview reconstruction. Based on the principles related to augmented reality technology, the proposed method uses natural features of images for training and extraction, which solves the problems of convenience and aesthetics caused by artificial signs. By extracting and training natural features at different scales of the acquired images, Harris and FREAK algorithms are used to extract features and create binary descriptors for real-time acquired images. Feature matching is performed on the above two features to estimate the location where the reconstructed model will appear. At the same time, for the difficulties of 3D model reconstruction requiring relevant expertise and the defects of poor reconstruction effect, the SFM algorithm is used for multiview reconstruction of landscape models to realize the augmented reality fusion method of natural scenes and landscape models. After the experiments, the fusion achieved by this method works well, which proves that the method is feasible and has potential.
机译:该文提出了一种基于 3D 模型多视图重建的融合景观增强现实方法。该方法基于增强现实技术相关原理,利用图像的自然特征进行训练和提取,解决了人工标志带来的便捷性和美观性问题。通过提取和训练所采集图像不同尺度的自然特征,Harris 和 FREAK 算法用于提取特征并为实时获取的图像创建二进制描述符。对上述两个特征进行特征匹配,以估计重建模型将出现的位置。同时,针对需要相关专业知识的三维模型重建难度大和重建效果不佳的缺陷,采用SFM算法对景观模型进行多视角重建,实现自然场景与景观模型的增强现实融合方法。经过实验,该方法实现的融合效果很好,证明了该方法是可行的,并且具有潜力。

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