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Automated Color Clustering for Medieval Manuscript Analysis

机译:用于中世纪手稿分析的自动彩色聚类

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Given a color image of a medieval manuscript page, we propose a simple, yet efficient algorithm for automatically estimating the number of its color-based pixel groups, K. We formulate this estimation as a minimization problem, where the objective function assesses the quality of a candidate clustering. Rather than using all the features of the given image, we carefully select a subset of features to perform clustering. The proposed algorithm was extensively evaluated on a dataset of 2198 images (1099 original images and their 1099 variants produced by modifying both spatial and spectral resolutions of the originals) from the Yale's Institute for the Preservation of Cultural Heritage (IPCH). The experimental results show that it is able to yield satisfactory estimates of K for these test images.
机译:给定中世纪稿件页面的彩色图像,我们提出了一种简单但有效的算法,用于自动估计其基于颜色的像素组的数量,K。我们将该估计作为最小化问题,其中目标函数评估质量候选聚类。我们仔细使用给定图像的所有功能,而不是使用给定图像的所有功能来选择要执行群集的功能子集。从耶鲁人的保存文化遗产(IPCH)的保护区,广泛地评估了所提出的算法(通过修改原文的空间和光谱分辨率,通过修改原文的空间和光谱分辨率)的数据集。实验结果表明,它能够为这些测试图像产生令人满意的K估计。

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