A Learned Representation for Scalable Vector Graphics
Raphael Gontijo Lopes, David Ha, Douglas Eck, Jonathon Shlens
摘要
Dramatic advances in generative models have resulted in near photographic quality for artificially rendered faces, animals and other objects in the natural world. In spite of such advances, a higher level understanding of vision and imagery does not arise from exhaustively modeling an object, but instead identifying higher-level attributes that best summarize the aspects of an object. In this work we attempt to model the drawing process of fonts by building sequential generative models of vector graphics. This model has the benefit of providing a scale-invariant representation for imagery whose latent representation may be systematically manipulated and exploited to perform style propagation. We demonstrate these results on a large dataset of fonts and highlight how such a model captures the statistical dependencies and richness of this dataset. We envision that our model can find use as a tool for graphic designers to facilitate font design. * Work done as a member of the Google AI Residency Program (g. co/airesidency)
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引用它的顶会 Paper63
- DeepSVG: A Hierarchical Generative Network for Vector Graphics AnimationAlexandre Carlier, Martin Danelljan, Alexandre Alahi, Radu TimofteNeurIPS 2020 · 被引用 247 次
- SketchGen: Generating Constrained CAD SketchesWamiq Reyaz Para, Shariq Farooq Bhat, Paul Guerrero, Tom Kelly 等NeurIPS 2021 · 被引用 114 次
- CanvasVAE: Learning to Generate Vector Graphic DocumentsKota YamaguchiICCV 2021 · 被引用 103 次
- OmniSVG: A Unified Scalable Vector Graphics Generation ModelYiying Yang, Wei Cheng, Sijin Chen, Xianfang Zeng 等NeurIPS 2025 · 被引用 90 次
- Word-As-Image for Semantic TypographyShir Iluz, Yael Vinker, Amir Hertz, Daniel Berio 等SIGGRAPH 2023 · 被引用 67 次
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