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Quantitative Assessment Method of Image Stitching Performance Based on Estimation of Planar Parallax

机译:基于平面视差估计的图像拼接性能的定量评估方法

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摘要

While parallax-tolerant image stitching is a relatively mature field, the performances of image stitching methods have been assessed subjectively and qualitatively. These methods primarily provide the stitched image itself to demonstrate the performance, rather than quantitative data. Although several objective assessment methods have been proposed for quantifying the quality of stitched images, only the stitched output images have been analyzed, without considering the parallax level in each input image. We propose a method for quantifying the parallax level of the input images and clustering them accordingly. This facilitates a quantitative assessment of the various stitching methods for each parallax level. The parallax levels of the images are grouped based on the magnitude and variation in the planar parallax, as estimated with the proposed metric using matching errors and patch similarity. The existing image stitching methods are compared experimentally in terms of the residual misalignment errors, based on 73 pairs of different levels of parallax images originally classified in this study. Among the existing methods, the elastic local alignment method exhibits the least error. The shape-preserving half-projective method produces a larger misalignment error, but creates a natural panorama with less geometric distortion. We introduce a quantitative assessment method for considering the parallax of input images in image stitching methods. It can aid in specifying their performances, and in finding an appropriate method depending on the parallax level of the input images.
机译:虽然视差耐图像缝合是相对成熟的领域,但是主观和定性地评估了图像拼接方法的性能。这些方法主要提供缝合图像本身来展示性能,而不是定量数据。尽管已经提出了用于量化缝合图像的质量的几种客观评估方法,但是只分析了缝合的输出图像,而不考虑每个输入图像中的视差水平。我们提出了一种用于量化输入图像的视差水平并相应地聚类方法的方法。这有助于对每个视差水平的各种缝合方法进行定量评估。根据平面视差中的幅度和变化来分组图像的视差级别,如使用匹配的错误和补丁相似性的所提出的指标估计。基于本研究最初分类的73对不同程度的不同视差图像,实验地,在残留的未对准误差方面进行实验比较现有的图像缝合方法。在现有方法中,弹性局部对准方法表现出最不误差。形状保留的半射程方法产生更大的错位误差,但创造了具有较少几何失真的自然全景。我们介绍了一种定量评估方法,用于考虑图像拼接方法中的输入图像的视差。它可以帮助指定它们的性能,并根据输入图像的视差水平找到适当的方法。

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