Recognizing the Style of Artistic Painting via Information Entropy for Smart City Construction

Xiaojie Du, Wenhao Wang
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引用次数: 1

Abstract

Digitalization is conducive to the protection and inheritance of culture and civilization. The artistic painting recognition is an essential part in digitalization and plays an important role in smart city construction. This paper proposes a novel framework to recognize Chinese painting style by using information entropy. First, the authors choose the ink painting, pyrography, mural, and splash ink painting as the known artistic styles. Then, this article uses the information entropy to represent the paintings. The information entropy includes color entropy, block entropy, and contour entropy. The color entropy is obtained by a weighted function of Channel A and B in the lab color space. The block entropy is the average information entropy of blocks which are a small part of the image. The contour entropy is obtained from the contour information which is obtained by contourlet transform. The information entropy is input into an oracle to determine the style. The oracle includes a one-class classifier and a classical classifier. The effectiveness is verified on the real painting set.
基于信息熵的智慧城市建设艺术绘画风格识别
数字化有利于文化和文明的保护和传承。艺术绘画识别是数字化的重要组成部分,在智慧城市建设中发挥着重要作用。本文提出了一种基于信息熵的中国画风格识别框架。首先,笔者选取了已知的水墨画、版画、壁画、泼墨等艺术风格。然后,本文利用信息熵对画作进行表征。信息熵包括颜色熵、块熵和轮廓熵。颜色熵由实验室色彩空间中通道a和通道B的加权函数得到。块熵是图像中一小部分块的平均信息熵。轮廓熵由轮廓波变换得到的轮廓信息得到。将信息熵输入到oracle中以确定样式。oracle包括一个单类分类器和一个经典分类器。在真实的绘画集上验证了该方法的有效性。
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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