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Geometry-Based Layout Generation with Hyper-Relations AMONG Objects

Authors :
Zhang, Shao-Kui
Xie, Wei-Yu
Zhang, Song-Hai
Publication Year :
2021

Abstract

Recent studies show increasing demands and interests in automatically generating layouts, while there is still much room for improving the plausibility and robustness. In this paper, we present a data-driven layout framework without model formulation and loss term optimization. We achieve and organize priors directly based on samples from datasets instead of sampling probabilistic models. Therefore, our method enables expressing and generating mathematically inexpressible relations among three or more objects. Subsequently, a non-learning geometric algorithm attempts arranging objects plausibly considering constraints such as walls, windows, etc. Experiments would show our generated layouts outperform the state-of-art and our framework is competitive to human designers.<br />Comment: Accepted in the proceedings of Computational Visual Media Conference 2021. 10 Pages. 13 Figures

Subjects

Subjects :
Computer Science - Graphics

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.2101.02903
Document Type :
Working Paper