Classification of Pointillist paintings using colour and texture features

Kristina Georgoulaki
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Abstract

Fine art paintings classification based on artistic style is a field of growing interest. Pointillist style is one of the most easily recognized painting styles by humans, due to its characteristic tiny detached paintbrushes of pure colour. In this paper automatic discrimination of artworks belonging to the style of Pointillism is investigated. The opposite styles considered are Cubism, Purism, Naïve art and Impressionism. Several colour and texture features are considered and a feature selection procedure is employed to reveal the most relevant ones to pointillist movement. Binary classification is performed, both in supervised and unsupervised mode, to assess the features’ discriminative ability. A small number of selected features is shown, by simulations results, to be quite powerful predictors resulting in a classification accuracy of 94% for a SVM classifier, 93.5% for a KNN classifier and 87% for a k-means classifier.
使用颜色和纹理特征的点彩画分类
基于艺术风格的美术绘画分类是一个日益受到关注的领域。点彩风格是人类最容易识别的绘画风格之一,因为它的特点是微小的分离的纯色画笔。本文研究了点彩艺术作品的自动识别问题。相反的风格被认为是立体主义,纯粹主义,Naïve艺术和印象派。考虑了几种颜色和纹理特征,并采用特征选择程序来揭示与点彩画运动最相关的特征。在有监督和无监督模式下进行二值分类,以评估特征的判别能力。通过模拟结果显示,少量选择的特征是非常强大的预测因子,导致SVM分类器的分类准确率为94%,KNN分类器为93.5%,k-means分类器为87%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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