Image Cropping with Composition and Saliency Aware Aesthetic Score Map
Yi Tu, Li Niu, Weijie Zhao, Dawei Cheng, Liqing Zhang
摘要
Aesthetic image cropping is a practical but challenging task which aims at finding the best crops with the highest aesthetic quality in an image. Recently, many deep learning methods have been proposed to address this problem, but they did not reveal the intrinsic mechanism of aesthetic evaluation. In this paper, we propose an interpretable image cropping model to unveil the mystery. For each image, we use a fully convolutional network to produce an aesthetic score map, which is shared among all candidate crops during crop-level aesthetic evaluation. Then, we require the aesthetic score map to be both composition-aware and saliency-aware. In particular, the same region is assigned with different aesthetic scores based on its relative positions in different crops. Moreover, a visually salient region is supposed to have more sensitive aesthetic scores so that our network can learn to place salient objects at more proper positions. Such an aesthetic score map can be used to localize aesthetically important regions in an image, which sheds light on the composition rules learned by our model. We show the competitive performance of our model in the image cropping task on several benchmark datasets, and also demonstrate its generality in real-world applications.
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引用它的顶会 Paper16
- TransView: Inside, Outside, and Across the Cropping View BoundariesZhiyu Pan, Zhiguo Cao, Kewei Wang, Hao Lu 等ICCV 2021 · 被引用 21 次
- Rethinking Image Cropping: Exploring Diverse Compositions from Global ViewsGengyun Jia, Huaibo Huang, Chaoyou Fu, Ran HeCVPR 2022 · 被引用 19 次
- Find Beauty in the Rare: Contrastive Composition Feature Clustering for Nontrivial Cropping Box RegressionZhiyu Pan, Yinpeng Chen, Jiale Zhang, Hao Lu 等AAAI 2023 · 被引用 12 次
- Learning Subject-Aware Cropping by Outpainting Professional PhotosJames Hong, Lu Yuan, Michaël Gharbi, Matthew Fisher 等AAAI 2024 · 被引用 10 次
- PhotoFramer: Multi-modal Image Composition InstructionZhiyuan You, Ke Wang, He Zhang, Xin Cai 等CVPR 2026 · 被引用 8 次
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