Progressive Painterly Image Harmonization from Low-Level Styles to High-Level Styles
Li Niu, Yan Hong, Junyan Cao, Liqing Zhang
Abstract
Painterly image harmonization aims to harmonize a photographic foreground object on the painterly background. Different from previous auto-encoder based harmonization networks, we develop a progressive multi-stage harmonization network, which harmonizes the composite foreground from low-level styles (e.g., color, simple texture) to highlevel styles (e.g., complex texture). Our network has better interpretability and harmonization performance. Moreover, we design an early-exit strategy to automatically decide the proper stage to exit, which can skip the unnecessary and even harmful late stages. Extensive experiments on the benchmark dataset demonstrate the effectiveness of our progressive harmonization network. Code and model are available at https: //github.com/bcmi/ProPIH-Painterly-Image-Harmonization .
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Install the CLIlune papers fulltext 8a513a0f-fe0c-48d5-bfb3-50e7837966f2Cited by top-tier papers2
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