Interactive Cartoonization with Controllable Perceptual Factors
Namhyuk Ahn, Patrick Kwon, Jihye Back, Kibeom Hong, Seungkwon Kim
摘要
Cartoonization is a task that renders natural photos into cartoon styles. Previous deep cartoonization methods only have focused on end-to-end translation, which may hinder editability. Instead, we propose a novel solution with editing features of texture and color based on the cartoon creation process. To do that, we design a model architecture to have separate decoders, texture and color, to decouple these attributes. In the texture decoder, we propose a texture controller, which enables a user to control stroke style and abstraction to generate diverse cartoon textures. We also introduce an HSV color augmentation to induce the networks to generate diverse and controllable color translation. To the best of our knowledge, our work is the first deep approach to control the cartoonization at inference while showing profound quality improvement over to baselines.
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引用它的顶会 Paper2
- DreamStyler: Paint by Style Inversion with Text-to-Image Diffusion ModelsNamhyuk Ahn, Junsoo Lee, Chunggi Lee, Kunhee Kim 等AAAI 2024 · 被引用 51 次
- Private Gradient Estimation is Useful for Generative ModelingBochao Liu, Pengju Wang, Weijia Guo, Yong Li 等ACM MM 2024 · 被引用 1 次
它引用的顶会 Paper3
- Learning to Cartoonize Using White-Box Cartoon RepresentationsXinrui Wang, Jinze YuCVPR 2020
- StarGAN v2: Diverse Image Synthesis for Multiple DomainsYunjey Choi, Youngjung Uh, Jaejun Yoo, Jung-Woo HaCVPR 2020
- Rethinking Style Transfer: From Pixels to Parameterized BrushstrokesDmytro Kotovenko, Matthias Wright, Arthur Heimbrecht, Björn OmmerCVPR 2021
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