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Title: | A Dilemma-Based Learning-to-Rank Approach for Generative Design in Urban Architectural Regeneration | Authors: | Kavouras, Ioannis Rallis, Ioannis Zouli, Dimitra Sardis, Emmanuel Protopapadakis, Eftychios Doulamis, Anastasios Doulamis, Nikolaos |
Author Department Affiliations: | Department of Applied Informatics | Author School Affiliations: | School of Information Sciences | Subjects: | FRASCATI__Natural sciences__Computer and information sciences FRASCATI__Engineering and technology__Civil engineering |
Keywords: | architectural and urban design artificial intelligence-generated images generative design system learning-to-rank algorithms pairwise classification |
Issue Date: | 23-Nov-2024 | Journal: | Algorithms | ISSN: | 1999-4893 | Volume: | 17 | Issue: | 12 | Start page: | 538 | Abstract: | Continuous urbanization and climate change degrade urban living conditions. Nature-based solutions in architectural and urban design offer promising remedies but are often hindered by time, cost, and early design phase challenges. To address this, we present a Generative Design System framework utilizing AI-generated images and learning-to-rank algorithms. This system generates numerous image solutions to inspire architects and urban planners, significantly accelerating early design stages. To manage the overwhelming volume of images, we introduce a dilemma-based learning approach that employs learning-to-rank and smart bubble sorting algorithms to prioritize images based on user preference. A case study demonstrates the framework’s potential, providing valuable insights into its application, benefits, and limitations in urban design. |
URI: | https://ruomoplus.lib.uom.gr/handle/8000/1937 | DOI: | 10.3390/a17120538 | Rights: | CC0 1.0 Παγκόσμια Attribution-NonCommercial-NoDerivatives 4.0 Διεθνές |
Corresponding Item Departments: | Department of Applied Informatics |
Appears in Collections: | Articles |
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Journ 2024 ADilemma-Based Learning-to-Rank Approach.pdf | 738,49 kB | Adobe PDF | View/Open |
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