Data-driven Interior Plan Generation for Residential Buildings

被引:193
作者
Wu, Wenming [1 ]
Fu, Xiao-Ming [1 ]
Tang, Rui [2 ]
Wang, Yuhan [2 ]
Qi, Yu-Hao [1 ]
Liu, Ligang [1 ]
机构
[1] Univ Sci & Technol China, Hefei, Anhui, Peoples R China
[2] Kujiale, Hangzhou, Zhejiang, Peoples R China
来源
ACM TRANSACTIONS ON GRAPHICS | 2019年 / 38卷 / 06期
基金
中国国家自然科学基金;
关键词
floor plan generation; interior layout; data-driven approach; neural network; deep learning; SPACE ALLOCATION PROBLEM; LAYOUT DESIGN; ARCHITECTURE;
D O I
10.1145/3355089.3356556
中图分类号
TP31 [计算机软件];
学科分类号
081202 ; 0835 ;
摘要
We propose a novel data-driven technique for automatically and efficiently generating floor plans for residential buildings with given boundaries. Central to this method is a two-stage approach that imitates the human design process by locating rooms first and then walls while adapting to the input building boundary. Based on observations of the presence of the living room in almost all floor plans, our designed learning network begins with positioning a living room and continues by iteratively generating other rooms. Then, walls are first determined by an encoder-decoder network, and then they are refined to vector representations using dedicated rules. To effectively train our networks, we construct RPLAN - a manually collected large-scale densely annotated dataset of floor plans from real residential buildings. Intensive experiments, including formative user studies and comparisons, are conducted to illustrate the feasibility and efficacy of our proposed approach. By comparing the plausibility of different floor plans, we have observed that our method substantially outperforms existing methods, and in many cases our floor plans are comparable to human-created ones.
引用
收藏
页数:12
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