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Multimodal Transfer: A Hierarchical Deep Convolutional Neural Network for Fast Artistic Style Transfer

机译:多峰传输:快速艺术风格转换的分层深度卷积神经网络

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Transferring artistic styles onto everyday photographs has become an extremely popular task in both academia and industry. Recently, offline training has replaced online iterative optimization, enabling nearly real-time stylization. When those stylization networks are applied directly to high-resolution images, however, the style of localized regions often appears less similar to the desired artistic style. This is because the transfer process fails to capture small, intricate textures and maintain correct texture scales of the artworks. Here we propose a multimodal convolutional neural network that takes into consideration faithful representations of both color and luminance channels, and performs stylization hierarchically with multiple losses of increasing scales. Compared to state-of-the-art networks, our network can also perform style transfer in nearly real-time by performing much more sophisticated training offline. By properly handling style and texture cues at multiple scales using several modalities, we can transfer not just large-scale, obvious style cues but also subtle, exquisite ones. That is, our scheme can generate results that are visually pleasing and more similar to multiple desired artistic styles with color and texture cues at multiple scales.
机译:将艺术风格转换为日常照片已成为学术界和工业界极为普遍的任务。最近,离线培训已经取代了在线迭代优化,从而实现了几乎实时的样式化。但是,当这些样式化网络直接应用于高分辨率图像时,局部区域的样式通常看起来与所需的艺术样式不太相似。这是因为转移过程无法捕获小而复杂的纹理,并且无法保持艺术品的正确纹理比例。在这里,我们提出了一种多模态卷积神经网络,该网络考虑了颜色和亮度通道的忠实表示,并在规模越来越大的情况下进行了分层的样式化。与最新的网络相比,我们的网络还可以通过脱机执行更复杂的培训来几乎实时地进行样式转换。通过使用几种方式在多个尺度上正确处理样式和纹理提示,我们不仅可以传递大规模,明显的样式提示,还可以传递微妙,精致的提示。也就是说,我们的方案可以产生视觉上令人愉悦的结果,并且与具有多种比例的颜色和纹理提示的多种所需的艺术风格更加相似。

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