Diverse Multimedia Layout Generation with Multi Choice Learning
David D. Nguyen, Surya Nepal, Salil S. Kanhere
摘要
Designing visually appealing layouts for multimedia documents containing text, graphs and images requires a form of creative intelligence. Modelling the generation of layouts has recently gained attention due to its importance in aesthetics and communication style. In contrast to standard prediction tasks, there are a range of acceptable layouts which depend on user preferences. For example, a poster designer may prefer logos on the top-left while another prefers logos on the bottom-right. Both are correct choices yet existing machine learning models treat layouts as a single choice prediction problem. In such situations, these models would simply average over all possible choices given the same input forming a degenerate sample. In the above example, this would form an unacceptable layout with a logo in the centre.
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引用它的顶会 Paper5
- LayoutDiffusion: Improving Graphic Layout Generation by Discrete Diffusion Probabilistic ModelsJunyi Zhang, Jiaqi Guo, Shizhao Sun, Jian-Guang Lou 等ICCV 2023 · 被引用 58 次
- PLay: Parametrically Conditioned Layout Generation using Latent DiffusionChin-Yi Cheng, Forrest Huang, Gang Li, Yang LiICML 2023 · 被引用 45 次
- Multiple Hypothesis Dropout: Estimating the Parameters of Multi-Modal Output DistributionsDavid D. Nguyen, David Liebowitz, Salil S. Kanhere, Surya NepalAAAI 2024 · 被引用 1 次
- Multimodal Markup Document Models for Graphic Design CompletionKotaro Kikuchi, Ukyo Honda, Naoto Inoue, Mayu Otani 等ACM MM 2025 · 被引用 1 次
- LayoutFormer++: Conditional Graphic Layout Generation via Constraint Serialization and Decoding Space RestrictionZhaoyun Jiang, Jiaqi Guo, Shizhao Sun, Huayu Deng 等CVPR 2023
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