多图像变形:汇总相似古钱币图像区域的视觉信息

Stefan Hödlmoser, S. Zambanini, M. Kampel
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引用次数: 0

摘要

合成一幅图像来表示多个源图像的合并部分的过程通常被称为图像变形。在这项工作中,提出了一个将两个以上的源图像转换为一个输出图像的系统。其重点在于使用属于一种普通币种的古钱币形象。如今,这些硬币会被磨损或损坏。所提出的变形框架的目标是自动检测和汇总公共区域的视觉数据,通过这些数据可以去除像硬币磨损痕迹这样的异常值。由于图像配准是变形系统的基础,因此使用了SIFT流功能。为了找到视觉内容的最佳组合,通过马尔可夫随机场来推断可能候选区域的选择。最后,求解泊松方程对变形后的图像进行平滑处理。在评估中,该系统被应用于三个不同的数据集,以展示视觉美学的结果。第二个评估是通过调查古钱币图像的分类任务来完成的。结果表明,在分类任务中,将变形后的图像替换为训练图像,与单个图像相比,可以提高硬币类型的表示。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multi-image morphing: Summarizing visual information from similar ancient coin image regions
The process of synthetically producing an image illustrating merged parts of multiple source images is usually known as image morphing. In this work a system is presented which morphs more than two source images to one output image. Its focus lies on using ancient coin images belonging to a common coin type. Nowadays, these coins can be worn or damaged. The goal of the presented morphing framework is the automatic detection and summarization of visual data of common regions by which outliers like wear marks of coins are removed. Since image registration forms the basis of the morphing system, SIFT flow functionalities are used. The selection of possible region-candidates is inferred by means of a Markov Random Field in order to find the best combination of visual content. Finally, solving the Poisson equation smooths the morphed image. An evaluation is carried out in which the system is applied to three different data sets in order to demonstrate visually aesthetic results. A second evaluation is done by investigating a classification task of ancient coin images. It is shown that substituting a morphed image as training image in the classification task improves the representation of a coin type compared to a single image.
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