The role of latent representations for design space exploration of floorplans

Author:

Azizi Vahid1,Usman Muhammad2ORCID,Sohn Samuel S1,Schwartz Mathew3ORCID,Moon Seonghyeon1,Faloutsos Petros45,Kapadia Mubbasir1

Affiliation:

1. Department of Computer Science, Rutgers University, USA

2. Department of Information and Computer Science, King Fahd University of Petroleum and Minerals, Saudi Arabia

3. College of Architecture and Design, New Jersey Institute of Technology, USA

4. Department of Electrical Engineering and Computer Science, York University, Canada

5. Toronto Rehabilitation Institute, University Health Network, UHN Toronto Rehabilitation Institute, Canada

Abstract

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.

Funder

ISSUM

National Science Foundation

Publisher

SAGE Publications

Subject

Computer Graphics and Computer-Aided Design,Modeling and Simulation,Software

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