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FOCUSING ON OUT-OF-FOCUS: ASSESSING DEFOCUS ESTIMATION ALGORITHMS FOR THE BENEFIT OF AUTOMATED IMAGE MASKING

机译:专注于焦点:评估散焦估计算法,以实现自动图像掩蔽的益处

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摘要

Acquiring photographs as input for an image-based modelling pipeline is less trivial than often assumed. Photographs should be correctly exposed, cover the subject sufficiently from all possible angles, have the required spatial resolution, be devoid of any motion blur, exhibit accurate focus and feature an adequate depth of field. The last four characteristics all determine the “sharpness” of an image and the photogrammetric, computer vision and hybrid photogrammetric computer vision communities all assume that the object to be modelled is depicted “acceptably” sharp throughout the whole image collection. Although none of these three fields has ever properly quantified “acceptably sharp”, it is more or less standard practice to mask those image portions that appear to be unsharp due to the limited depth of field around the plane of focus (whether this means blurry object parts or completely out-of-focus backgrounds). This paper will assess how well- or ill-suited defocus estimating algorithms are for automatically masking a series of photographs, since this could speed up modelling pipelines with many hundreds or thousands of photographs. To that end, the paper uses five different real-world datasets and compares the output of three state-of-the-art edge-based defocus estimators. Afterwards, critical comments and plans for the future finalise this paper.
机译:获取照片作为基于图像的建模流水线的输入不太平凡,而不是经常假设。照片应正确曝光,从所有可能的角度都足够覆盖受试者,具有所需的空间分辨率,没有任何运动模糊,表现出精确的焦点并具有足够的景深。最后四个特征全部确定图像的“清晰度”,摄影测量,电脑视觉和混合摄影测量电脑视觉社区都假设要建模的对象被描绘在整个图像集中的“可接受”尖锐。虽然这三个领域都没有完全量化“可接受的尖锐”,但是要掩盖由于焦点平面周围的场景周围有限的景深(这意味着模糊物体)的景深有限(这意味着模糊物体)零件或完全超焦的背景)。本文将评估差分或缺乏污染估计算法的估算算法是如何用于自动掩蚀的一系列照片,因为这可以加速许多数百或数千张照片的建模管道。为此,本文使用五个不同的现实数据集,并比较了三个基于边缘的散焦估计器的输出。之后,将来的批判性评论和计划最终确定了本文。

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    G. J. Verhoeven;

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  • 年度 2018
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  • 原文格式 PDF
  • 正文语种 eng
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