Sketchformer: Transformer-Based Representation for Sketched Structure
Leo Sampaio Ferraz Ribeiro, Tu Bui, John P. Collomosse, Moacir Ponti
摘要
Sketchformer is a novel transformer-based representation for encoding free-hand sketches input in a vector form, i.e. as a sequence of strokes. Sketchformer effectively addresses multiple tasks: sketch classification, sketch based image retrieval (SBIR), and the reconstruction and interpolation of sketches. We report several variants exploring continuous and tokenized input representations, and contrast their performance. Our learned embedding, driven by a dictionary learning tokenization scheme, yields state of the art performance in classification and image retrieval tasks, when compared against baseline representations driven by LSTM sequence to sequence architectures: SketchRNN and derivatives. We show that sketch reconstruction and interpolation are improved significantly by the Sketchformer embedding for complex sketches with longer stroke sequences.
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引用它的顶会 Paper51
- DeepSVG: A Hierarchical Generative Network for Vector Graphics AnimationAlexandre Carlier, Martin Danelljan, Alexandre Alahi, Radu TimofteNeurIPS 2020 · 被引用 247 次
- CLIPasso: semantically-aware object sketchingYael Vinker, Ehsan Pajouheshgar, Jessica Y. Bo, Roman Christian Bachmann 等SIGGRAPH 2022 · 被引用 219 次
- Learning Unsupervised Metaformer for Anomaly DetectionJhih-Ciang Wu, Ding-Jie Chen, Chiou-Shann Fuh, Tyng-Luh LiuICCV 2021 · 被引用 101 次
- Free2CAD: parsing freehand drawings into CAD commandsChangjian Li, Hao Pan, Adrien Bousseau, Niloy J. MitraSIGGRAPH 2022 · 被引用 100 次
- Sketch Your Own GANSheng-Yu Wang, David Bau, Jun-Yan ZhuICCV 2021 · 被引用 82 次
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