Arbitrary Style Transfer via Multi-Adaptation Network
Deng, Yingying1,4; Tang, Fan4; Dong, Weiming3,4; Sun, Wen1,4; Huang, Feiyue2; Xu, Changsheng3,4
2020
会议日期2020-10
会议地点Vitual conference
英文摘要

Arbitrary style transfer is a significant topic with research value and application prospect. A desired style transfer, given a content image and referenced style painting, would render the content image with the color tone and vivid stroke patterns of the style painting while synchronously maintaining the detailed content structure information. Style transfer approaches would initially learn content and style representations of the content and style references and then generate the stylized images guided by these representations. In this paper, we propose the multi-adaptation network which involves two self-adaptation (SA) modules and one co-adaptation (CA) module: the SA modules adaptively disentangle the content and style representations, i.e., content SA module uses position-wise self-attention to enhance content representation and style SA module uses channel-wise self-attention to enhance style representation; the CA module rearranges the distribution of style representation based on content representation distribution by calculating the local similarity between the disentangled content and style features in a non-local fashion. Moreover, a new disentanglement loss function enables our network to extract main style patterns and exact content structures to adapt to various input images, respectively. Various qualitative and quantitative experiments demonstrate that the proposed multi-adaptation network leads to better results than the state-of-the-art style transfer methods.

内容类型会议论文
源URL[http://ir.ia.ac.cn/handle/173211/48626]  
专题自动化研究所_模式识别国家重点实验室_多媒体计算与图形学团队
通讯作者Tang, Fan; Sun, Wen
作者单位1.School of Artificial Intelligence, UCAS
2.Youtu Lab, Tencent
3.CASIA-LLVision Joint Lab
4.NLPR, Institute of Automation, CAS
推荐引用方式
GB/T 7714
Deng, Yingying,Tang, Fan,Dong, Weiming,et al. Arbitrary Style Transfer via Multi-Adaptation Network[C]. 见:. Vitual conference. 2020-10.
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