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OpenCOLE: Towards Reproducible Automatic Graphic Design Generation

About

Automatic generation of graphic designs has recently received considerable attention. However, the state-of-the-art approaches are complex and rely on proprietary datasets, which creates reproducibility barriers. In this paper, we propose an open framework for automatic graphic design called OpenCOLE, where we build a modified version of the pioneering COLE and train our model exclusively on publicly available datasets. Based on GPT4V evaluations, our model shows promising performance comparable to the original COLE. We release the pipeline and training results to encourage open development.

Naoto Inoue, Kento Masui, Wataru Shimoda, Kota Yamaguchi• 2024

Related benchmarks

TaskDatasetResultRank
Intention-to-DocumentDocHTML (test)
Layout Score7.91
13
Graphic Layout GenerationDESIGNERINTENTION (test)
Char-F73.08
12
Graphic DesignGraphic Design
Quality Score5.12
12
Graphic Layout GenerationTextLayout (test)
Char-F21.47
12
Graphic Layout GenerationCrello (test)
Char-F64.11
12
Poster GenerationPoster Generation
LAS3.6768
11
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