Large-scale Text-to-Image Generation Models for Visual Artists’ Creative Works
Крупномасштабные модели генерации изображений по тексту для творческой работы визуальных художников
2023-03-27
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creative supportintelligent user interfacessystematic literature reviewtext-to-image generation modelsvisual artists
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Abstract (AI)
Large-scale Text-to-image Generation Models (LTGMs) (e.g., DALL-E), self-supervised deep learning models trained on a huge dataset, have demonstrated the capacity for generating high-quality open-domain images from multi-modal input. Although they can even produce anthropomorphized versions of objects and animals, combine irrelevant concepts in reasonable ways, and give variation to any user-provided images, we witnessed such rapid technological advancement left many visual artists disoriented in leveraging LTGMs more actively in their creative works. Our goal in this work is to understand how visual artists would adopt LTGMs to support their creative works. To this end, we conducted an interview study as well as a systematic literature review of 72 system/application papers for a thorough examination. A total of 28 visual artists covering 35 distinct visual art domains acknowledged LTGMs’ versatile roles with high usability to support creative works in automating the creation process (i.e., automation), expanding their ideas (i.e., exploration), and facilitating or arbitrating in communication (i.e., mediation). We conclude by providing four design guidelines that future researchers can refer to in making intelligent user interfaces using LTGMs.
Key Findings
1
Artists identified three versatile roles for these models: automating creation processes, expanding creative ideas through exploration, and facilitating or arbitrating communication through mediation.
2
Interviews with 28 visual artists across 35 distinct art domains, combined with a review of 72 system and application papers, provide the evidence base.
3
The findings indicate that artists perceive these models as highly usable across diverse creative activities despite reported disorientation caused by rapid technological advancement.
4
The study concludes with four design guidelines for developing intelligent user interfaces that integrate large-scale text-to-image generation models.
5
The study examines how visual artists can adopt large-scale text-to-image generation models to support creative work.
Research Object
Large-scale text-to-image generation models (LTGMs) used by visual artists
Research Subject
Visual artists’ adoption of LTGMs to support creative works, including automation, idea exploration, and communication mediation
Publication Details
Publication Date
2023-03-27
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