CVPR 2023 – SIEDOB: Semantic Image Editing by Disentangling Object and Background


In this episode we discuss SIEDOB: Semantic Image Editing by Disentangling Object and Background
by Wuyang Luo, Su Yang, Xinjian Zhang, Weishan Zhang. The paper presents a new method for semantic image editing called Semantic Image Editing by Disentangling Object and Background (SIEDOB). This method separates objects and backgrounds into separate subnetworks for more efficient processing by first decomposing the input into background regions and instance-level objects, which are then fed into dedicated generators. The paper also introduces innovative designs to produce high-quality edited images and outperforms existing methods in synthesizing realistic and diverse objects and texture-consistent backgrounds.


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