Diversified Arbitrary Style Transfer via Deep Feature Perturbation
Zhizhong Wang, Lei Zhao, Haibo Chen, Lihong Qiu, Qihang Mo, Sihuan Lin, Wei Xing, Dongming Lu
摘要
Image style transfer is an underdetermined problem, where a large number of solutions can satisfy the same constraint (the content and style). Although there have been some efforts to improve the diversity of style transfer by introducing an alternative diversity loss, they have restricted generalization, limited diversity and poor scalability. In this paper, we tackle these limitations and propose a simple yet effective method for diversified arbitrary style transfer. The key idea of our method is an operation called deep feature perturbation (DFP), which uses an orthogonal random noise matrix to perturb the deep image feature maps while keeping the original style information unchanged. Our DFP operation can be easily integrated into many existing WCT (whitening and coloring transform)-based methods, and empower them to generate diverse results for arbitrary styles. Experimental results demonstrate that this learningfree and universal method can greatly increase the diversity while maintaining the quality of stylization.
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引用它的顶会 Paper21
- StyTr2: Image Style Transfer with TransformersYingying Deng, Fan Tang, Weiming Dong, Chongyang Ma 等CVPR 2022 · 被引用 345 次
- Artistic Style Transfer with Internal-external Learning and Contrastive LearningHaibo Chen, Lei Zhao, Zhizhong Wang, Huiming Zhang 等NeurIPS 2021 · 被引用 243 次
- StyleDiffusion: Controllable Disentangled Style Transfer via Diffusion ModelsZhizhong Wang, Lei Zhao, Wei XingICCV 2023 · 被引用 219 次
- Arbitrary Video Style Transfer via Multi-Channel CorrelationYingying Deng, Fan Tang, Weiming Dong, Haibin Huang 等AAAI 2021 · 被引用 197 次
- AesUST: Towards Aesthetic-Enhanced Universal Style TransferZhizhong Wang, Zhanjie Zhang, Lei Zhao, Zhiwen Zuo 等ACM MM 2022 · 被引用 70 次
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