Artographer: a Curatorial Interface for Art Space Exploration

Fuente: arXiv
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Bibliographic Details
Main Authors: Almeda, Shm Garanganao, Chung, John Joon Young, Liu, Sophia, Halperin, Brett, Lu, Yuwen, Hartmann, Bjoern, Kreminski, Max
Format: Preprint
Published: 2025
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author Almeda, Shm Garanganao
Chung, John Joon Young
Liu, Sophia
Halperin, Brett
Lu, Yuwen
Hartmann, Bjoern
Kreminski, Max
author_facet Almeda, Shm Garanganao
Chung, John Joon Young
Liu, Sophia
Halperin, Brett
Lu, Yuwen
Hartmann, Bjoern
Kreminski, Max
contents Relating a piece to previously established works is crucial in creating and engaging with art, but AI interfaces tend to obscure such relationships, rather than helping users explore them. Embedding models present new opportunities to support spatially exploring and relating artwork. We built Artographer, an art-exploration system featuring a zoomable 2-D map, constructed from similarity-clustered embeddings of ~16,000 historical artworks. We used Artographer as a design probe to explore how alternative artwork distribution interface design can shape media engagement: we invited 20 participants, including 9 art history scholars, to traverse the map, collecting artworks for a goal-driven task and while freely exploring. We identify values enacted in spatial art discovery (Visibility, Agency, Serendipity, Friction) and consider how these values challenge dominant design paradigms -- in particular, the recommendation systems governing contemporary media distribution platforms. We reimagine a curatorial approach to media distribution, within digital ecosystems where history and culture can thrive.
format Preprint
id arxiv_https___arxiv_org_abs_2512_02288
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Artographer: a Curatorial Interface for Art Space Exploration
Almeda, Shm Garanganao
Chung, John Joon Young
Liu, Sophia
Halperin, Brett
Lu, Yuwen
Hartmann, Bjoern
Kreminski, Max
Human-Computer Interaction
Relating a piece to previously established works is crucial in creating and engaging with art, but AI interfaces tend to obscure such relationships, rather than helping users explore them. Embedding models present new opportunities to support spatially exploring and relating artwork. We built Artographer, an art-exploration system featuring a zoomable 2-D map, constructed from similarity-clustered embeddings of ~16,000 historical artworks. We used Artographer as a design probe to explore how alternative artwork distribution interface design can shape media engagement: we invited 20 participants, including 9 art history scholars, to traverse the map, collecting artworks for a goal-driven task and while freely exploring. We identify values enacted in spatial art discovery (Visibility, Agency, Serendipity, Friction) and consider how these values challenge dominant design paradigms -- in particular, the recommendation systems governing contemporary media distribution platforms. We reimagine a curatorial approach to media distribution, within digital ecosystems where history and culture can thrive.
title Artographer: a Curatorial Interface for Art Space Exploration
topic Human-Computer Interaction
url https://arxiv.org/abs/2512.02288