潜在表征在平面设计空间探索中的作用

IF 1.3 4区 工程技术 Q4 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS
Vahid Azizi, Muhammad Usman, Samuel S. Sohn, M. Schwartz, Seonghyeon Moon, P. Faloutsos, Mubbasir Kapadia
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引用次数: 1

摘要

平面图通常需要考虑许多因素,从布局大小到成本,数字属性(如房间大小)和其他内在属性(如可见区域之间的连接)。表达这些复杂的因素是具有挑战性的,但以一种具有代表性和有效的方式来表达这些因素可以实现新的设计探索模式。现有的基于图像和图形的平面图表示方法往往未能考虑低层空间语义、结构特征和空间利用,而这些都是分析设计布局的关键要素。我们使用门控循环单元变分自编码器(GRU-VAE)提出了平面图的潜在空间表示,其中平面图表示为属性图(用上述特征编码)。提出了两种局部搜索方法来有效地探索潜在空间,以优化和生成给定环境的新平面图。语义、结构和可见性指标分别进行评估,并作为优化的组合目标进行评估。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The role of latent representations for design space exploration of floorplans
Floorplans often require considering numerous factors, from the layout size to cost, numeric attributes such as room sizes, and other intrinsic properties such as connectivity between visible regions. Representing these complex factors is challenging, but doing so in a representative and efficient way can enable new modes of design exploration. Existing image and graph-based approaches of floorplans’ representation often failed to consider low-level space semantics, structural features, and space utilization with respect to its future inhabitants, which are all the critical elements to analyze design layouts. We present a latent-space representation of floorplans using gated recurrent unit variational autoencoder (GRU-VAE), where floorplans are represented as attributed graphs (encoded with the abovementioned features). Two local search approaches are presented to efficiently explore the latent space for optimizing and generating new floorplans for the given environment. Semantic, structural, and visibility metrics are evaluated individually and as a combined objective for optimizations.
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来源期刊
CiteScore
3.50
自引率
31.20%
发文量
60
审稿时长
3 months
期刊介绍: SIMULATION is a peer-reviewed journal, which covers subjects including the modelling and simulation of: computer networking and communications, high performance computers, real-time systems, mobile and intelligent agents, simulation software, and language design, system engineering and design, aerospace, traffic systems, microelectronics, robotics, mechatronics, and air traffic and chemistry, physics, biology, medicine, biomedicine, sociology, and cognition.
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