Aesthetic Text Logo Synthesis via Content-aware Layout Inferring
Yizhi Wang, Guo Pu, Wenhan Luo, Yexin Wang, Pengfei Xiong, Hongwen Kang, Zhouhui Lian
摘要
Text logo design heavily relies on the creativity and expertise of professional designers, in which arranging element layouts is one of the most important procedures. However, few attention has been paid to this task which needs to take many factors (e.g., fonts, linguistics, topics, etc.) into consideration. In this paper, we propose a content-aware layout generation network which takes glyph images and their corresponding text as input and synthesizes aesthetic layouts for them automatically. Specifically, we develop a dual-discriminator module, including a sequence discriminator and an image discriminator, to evaluate both the character placing trajectories and rendered shapes of synthesized text logos, respectively. Furthermore, we fuse the information of linguistics from texts and visual semantics from glyphs to guide layout prediction, which both play important roles in professional layout design. To train and evaluate our approach, we construct a dataset named as TextLogo3K, consisting of about 3,500 text logo images and their pixel-level annotations. Experimental studies on this dataset demonstrate the effectiveness of our approach for synthesizing visually-pleasing text logos and verify its superiority against the state of the art.
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引用它的顶会 Paper10
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它引用的顶会 Paper7
- LayoutVAE: Stochastic Scene Layout Generation From a Label SetAkash Abdu Jyothi, Thibaut Durand, Jiawei He, Leonid Sigal 等ICCV 2019 · 被引用 194 次
- LayoutTransformer: Layout Generation and Completion with Self-attentionKamal Gupta, Justin Lazarow, Alessandro Achille, Larry Davis 等ICCV 2021 · 被引用 184 次
- Vinci: An Intelligent Graphic Design System for Generating Advertising PostersShunan Guo, Zhuochen Jin, Fuling Sun, Jingwen Li 等CHI 2021 · 被引用 83 次
- Attribute2Font: creating fonts you want from attributesYizhi Wang, Yue Gao, Zhouhui LianSIGGRAPH 2020 · 被引用 54 次
- LayoutTransformer: Scene Layout Generation With Conceptual and Spatial DiversityCheng-Fu Yang, Wan-Cyuan Fan, Fu-En Yang, Yu-Chiang Frank WangCVPR 2021
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