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A Neural Representation of Sketch Drawings

2017-04-11 · ICLR 2018 1 · David Ha, Douglas Eck

We present sketch-rnn, a recurrent neural network (RNN) able to construct stroke-based drawings of common objects. The model is trained on thousands of crude human-drawn images representing hundreds of classes. We outline a framework for conditional and unconditional sketch generation, and describe new robust training methods for generating coherent sketch drawings in a vector format.

📄 PDF Abstract BibTeX arXiv:1704.03477

Code (18)

Ar-Kareem/sketch-RNN pytorch
MarioBonse/Sketch-rnn tf
Triple-L/Wartegg_test
XDUWQ/sketch-rnn-pytorch pytorch
abel-leulseged/Quick-Draw
alexis-jacq/Pytorch-Sketch-RNN pytorch
altsoph/paranoid_transformer pytorch
city535353/sketch_rnn tf
cpmpercussion/keras-mdn-layer tf
eyalzk/sketch_rnn_keras tf
hardmaru/sketch-rnn-datasets tf
hardmaru/sketch-rnn-flowchart tf
kumnikhil/christmAIs_replica tf
labmlai/annotated_deep_learning_paper_implementations pytorch
nn210/SketchRNNIntroToML tf
thinkingmachines/christmAIs tf
tosmaster/imagevision pytorch
yurangja99/Pytorch-Sketch-RNN pytorch

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