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Example-Guided Style Consistent Image Synthesis from Semantic Labeling (1906.01314v2)

Published 4 Jun 2019 in cs.CV

Abstract: Example-guided image synthesis aims to synthesize an image from a semantic label map and an exemplary image indicating style. We use the term "style" in this problem to refer to implicit characteristics of images, for example: in portraits "style" includes gender, racial identity, age, hairstyle; in full body pictures it includes clothing; in street scenes, it refers to weather and time of day and such like. A semantic label map in these cases indicates facial expression, full body pose, or scene segmentation. We propose a solution to the example-guided image synthesis problem using conditional generative adversarial networks with style consistency. Our key contributions are (i) a novel style consistency discriminator to determine whether a pair of images are consistent in style; (ii) an adaptive semantic consistency loss; and (iii) a training data sampling strategy, for synthesizing style-consistent results to the exemplar.

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Authors (7)
  1. Miao Wang (36 papers)
  2. Guo-Ye Yang (5 papers)
  3. Ruilong Li (15 papers)
  4. Run-Ze Liang (1 paper)
  5. Song-Hai Zhang (41 papers)
  6. Peter. M. Hall (1 paper)
  7. Shi-Min Hu (42 papers)
Citations (84)

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