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  1. 研究報告
  2. コンピュータグラフィックスとビジュアル情報学(CG)
  3. 2024
  4. 2024-CG-194

Retrieval-Augmented Multi-Floor Building Image Generation

https://ipsj.ixsq.nii.ac.jp/records/235071
https://ipsj.ixsq.nii.ac.jp/records/235071
c1b19aca-e0fa-4f65-a9ea-596609c487d9
名前 / ファイル ライセンス アクション
IPSJ-CG24194003.pdf IPSJ-CG24194003.pdf (4.0 MB)
 2026年6月22日からダウンロード可能です。
Copyright (c) 2024 by the Information Processing Society of Japan
非会員:¥660, IPSJ:学会員:¥330, CG:会員:¥0, DLIB:会員:¥0
Item type SIG Technical Reports(1)
公開日 2024-06-22
タイトル
タイトル Retrieval-Augmented Multi-Floor Building Image Generation
タイトル
言語 en
タイトル Retrieval-Augmented Multi-Floor Building Image Generation
言語
言語 eng
キーワード
主題Scheme Other
主題 CG一般セッション
資源タイプ
資源タイプ識別子 http://purl.org/coar/resource_type/c_18gh
資源タイプ technical report
著者所属
Japan Advanced Institute of Science and Technology
著者所属
Japan Advanced Institute of Science and Technology
著者所属
Japan Advanced Institute of Science and Technology
著者所属(英)
en
Japan Advanced Institute of Science and Technology
著者所属(英)
en
Japan Advanced Institute of Science and Technology
著者所属(英)
en
Japan Advanced Institute of Science and Technology
著者名 Zhengyang, Wang

× Zhengyang, Wang

Zhengyang, Wang

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Hao, Jin

× Hao, Jin

Hao, Jin

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Haoran, Xie

× Haoran, Xie

Haoran, Xie

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著者名(英) Zhengyang, Wang

× Zhengyang, Wang

en Zhengyang, Wang

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Hao, Jin

× Hao, Jin

en Hao, Jin

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Haoran, Xie

× Haoran, Xie

en Haoran, Xie

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論文抄録
内容記述タイプ Other
内容記述 Demand for generating building images from text prompts grows, despite recent advances in diffusion models greatly enhancing image quality. The current generative models struggle with controlling the number of floors. To this end, we propose a retrieval-augmented framework for generating building images with provided floor count using a diffusion model. Initially, the text prompts with the provided floor count to retrieve the most suitable image from a building image database. Then, we adopted a multi-level structure detection algorithm to obtain a sketch from the matched image to ensure structural consistency. Finally, the building image with the desired floor count and style is generated by diffusion model, guided by the detected building sketch. Our proposed framework enables accurate control over the floor count in building image synthesis. We demonstrate the robustness and scalability of generating building images with a specific floor count from text prompts.
論文抄録(英)
内容記述タイプ Other
内容記述 Demand for generating building images from text prompts grows, despite recent advances in diffusion models greatly enhancing image quality. The current generative models struggle with controlling the number of floors. To this end, we propose a retrieval-augmented framework for generating building images with provided floor count using a diffusion model. Initially, the text prompts with the provided floor count to retrieve the most suitable image from a building image database. Then, we adopted a multi-level structure detection algorithm to obtain a sketch from the matched image to ensure structural consistency. Finally, the building image with the desired floor count and style is generated by diffusion model, guided by the detected building sketch. Our proposed framework enables accurate control over the floor count in building image synthesis. We demonstrate the robustness and scalability of generating building images with a specific floor count from text prompts.
書誌レコードID
収録物識別子タイプ NCID
収録物識別子 AN10100541
書誌情報 研究報告コンピュータグラフィックスとビジュアル情報学(CG)

巻 2024-CG-194, 号 3, p. 1-4, 発行日 2024-06-22
ISSN
収録物識別子タイプ ISSN
収録物識別子 2188-8949
Notice
SIG Technical Reports are nonrefereed and hence may later appear in any journals, conferences, symposia, etc.
出版者
言語 ja
出版者 情報処理学会
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