Semantic-shape Adaptive Feature Modulation for Semantic Image Synthesis
Zhengyao Lv, Xiaoming Li, Zhenxing Niu, Bing Cao, Wangmeng Zuo
Abstract
Recent years have witnessed substantial progress in se-mantic image synthesis, it is still challenging in synthesizing photo-realistic images with rich details. Most previ-ous methods focus on exploiting the given semantic map, which just captures an object-level layout for an image. Obviously, a fine-grained part-level semantic layout will benefit object details generation, and it can be roughly in-ferred from an object's shape. In order to exploit the part-level layouts, we propose a Shape-aware Position Descrip-tor (SPD) to describe each pixel's positional feature, where object shape is explicitly encoded into the SP D feature. Fur-thermore, a Semantic-shape Adaptive Feature Modulation (SAFM) block is proposed to combine the given semantic map and our positional features to produce adaptively mod-ulated features. Extensive experiments demonstrate that the proposed SPD and SAFM significantly improve the gener-ation of objects with rich details. Moreover, our method performs favorably against the SOTA methods in terms of quantitative and qualitative evaluation. The source code and model are available at SAFM.
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Cited by top-tier papers8
- SemFlow: Binding Semantic Segmentation and Image Synthesis via Rectified FlowChaoyang Wang, Xiangtai Li, Lu Qi, Henghui Ding et al.NeurIPS 2024 · 25 citations
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- Edge Guided GANs with Contrastive Learning for Semantic Image SynthesisHao Tang, Xiaojuan Qi, Guolei Sun, Dan Xu et al.ICLR 2023 · 2 citations
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- Local Class-Specific and Global Image-Level Generative Adversarial Networks for Semantic-Guided Scene GenerationHao Tang, Dan Xu, Yan Yan, Philip H. S. Torr et al.CVPR 2020
- Panoptic-Based Image SynthesisAysegul Dundar, Karan Sapra, Guilin Liu, Andrew Tao et al.CVPR 2020
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