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Deep cartoon colorizer: An automatic approach for colorization of vintage cartoons

机译:深漫画着色器:复古漫画着色的自动方法

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Although there exist several approaches to the automatic colorization of the natural scene images and movies the problem of cartoon colorization has barely been considered. Therefore, this paper proposes a fully automatic pipeline to create a plausible colorization of vintage cartoons which is visually appealing to a human observer. Particularly, the Deep Cartoon Colorizer is proposed. The method incorporates an encoder-decoder convolutional neural network which is trained to map colors onto consecutive cartoon frames. The method was trained with 4944 images and tested on 34 vintage Disney cartoons including both the decolorized and the originally monochrome movies. In total 265388 cartoon frames were assessed including 246591 decolorized frames and 18797 originally monochrome ones. The resulting automatic colorizations were evaluated both quantitatively (by means of popular image perceptual quality measures) and qualitatively (by performing a human perception test). The resulting median values of the image quality measures range from 0.66 for Visual Information Fidelity and 0.85 for HaarPSI, through 0.94 for Structural Similarity Index, to 0.97 for Universal Image Quality Index which is a very good result. The subjective scores assigned by the human raters' on a ten-degree scale are on average equal to 6.11 and 6.63 for decolorized and monochrome frames respectively. This result also confirms that the desired effect of plausible colorization was obtained by the introduced approach.
机译:虽然存在几种方法对自然场景图像的自动彩色的方法,但电影勉强考虑了卡通色大的问题。因此,本文提出了一种全自动管道,可以创造复古卡通的合理着色,这在视觉上吸引人观察者。特别是,提出了深的卡通着色器。该方法包括编码器 - 解码器卷积神经网络,该卷积神经网络被训练以将颜色映射到连续的卡通帧上。该方法有4944张图像培训并在34个复古迪士尼漫画上进行测试,包括脱色和最初单色电影。总共评估了265388个卡通框架,包括246591脱色框架和18797年最初的单色单色。通过定量(通过流行的图像感知质量措施)和定性评估所得到的自动较色,(通过执行人类的感知测试)。由此产生的中值测量值的值范围为0.66,用于视觉信息保真度,0.85,用于结构相似指数为0.94,对于通用图像质量指数为0.97,这是一个非常好的结果。人类评分器的主观评分在十个度标度上分别平均等于6.11和6.63分别用于脱色和单色帧。该结果还证实,通过引入的方法获得了所需的合理着色效果。

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