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Photographic painting style transfer using convolutional neural networks

机译:使用卷积神经网络的摄影绘画风格转移

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摘要

We propose a novel automatic photographic painting style technique with a single example image by using Convolutional Neural Networks (CNN). The photographic painting style is a challenging problem in the research community. Even though, researchers have been trying to obtain good results on painting style, but not much has been done on photographic stylization. Portrait painting techniques are mainly designed for the graphite style and/or are based on image analogies; an example painting as well as its original unpainted version are required. This preceding issue is a motivation of our proposed methods. As a result, our method extends the limits of their domain of applicability. We present a novel multi-convolutional-learning technique that is developed for both images (NPR/PR) labeling, style transmission and elevating a particular unified CNN model per weight sharing. A new painting technique is generated that follows the example style in the example image and maintains the integrity of facial structures. We believe this novel interpretation connects these two important research fields and could enlighten future researches. Moreover, our proposed technique is not restricted to headshot images or specific styles as our method can also change the photographic painting style in the wild.
机译:我们使用卷积神经网络(CNN)提出了一种具有单个示例图像的新颖的自动摄影绘画风格技术。在研究界,摄影绘画风格是一个具有挑战性的问题。尽管研究人员一直在尝试在绘画风格上取得良好的结果,但在摄影风格上却做得很少。肖像绘画技术主要是针对石墨风格设计的和/或基于图像的类比;需要示例绘画以及其原始未绘画版本。前一个问题是我们提出的方法的动机。结果,我们的方法扩展了其适用范围的限制。我们提出了一种新颖的多卷积学习技术,该技术针对图像(NPR / PR)标签,样式传输和每个权重共享提升特定的统一CNN模型而开发。生成了一种新的绘画技术,该绘画技术遵循示例图像中的示例样式并保持面部结构的完整性。我们认为,这种新颖的解释将这两个重要的研究领域联系在一起,并且可以启发未来的研究。此外,我们提出的技术不限于爆头图像或特定样式,因为我们的方法还可以在野外改变摄影绘画风格。

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