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StyleBabel: Artistic Style Tagging and Captioning

Authors :
Ruta, Dan
Gilbert, Andrew
Aggarwal, Pranav
Marri, Naveen
Kale, Ajinkya
Briggs, Jo
Speed, Chris
Jin, Hailin
Faieta, Baldo
Filipkowski, Alex
Lin, Zhe
Collomosse, John
Publication Year :
2022

Abstract

We present StyleBabel, a unique open access dataset of natural language captions and free-form tags describing the artistic style of over 135K digital artworks, collected via a novel participatory method from experts studying at specialist art and design schools. StyleBabel was collected via an iterative method, inspired by `Grounded Theory': a qualitative approach that enables annotation while co-evolving a shared language for fine-grained artistic style attribute description. We demonstrate several downstream tasks for StyleBabel, adapting the recent ALADIN architecture for fine-grained style similarity, to train cross-modal embeddings for: 1) free-form tag generation; 2) natural language description of artistic style; 3) fine-grained text search of style. To do so, we extend ALADIN with recent advances in Visual Transformer (ViT) and cross-modal representation learning, achieving a state of the art accuracy in fine-grained style retrieval.

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.2203.05321
Document Type :
Working Paper