An Equity-Aware Recommender System for Curating Art Exhibits Based on Locally-Constrained Graph Matching
July 28, 2022 Β· Declared Dead Β· + Add venue
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Authors
Anna Haensch, Dina Deitsch
arXiv ID
2207.14367
Category
cs.IR: Information Retrieval
Cross-listed
cs.LG
Citations
0
Last Checked
4 months ago
Abstract
Public art shapes our shared spaces. Public art should speak to community and context, and yet, recent work has demonstrated numerous instances of art in prominent institutions favoring outdated cultural norms and legacy communities. Motivated by this, we develop a novel recommender system to curate public art exhibits with built-in equity objectives and a local value-based allocation of constrained resources. We develop a cost matrix by drawing on Schelling's model of segregation. Using the cost matrix as an input, the scoring function is optimized via a projected gradient descent to obtain a soft assignment matrix. Our optimization program allocates artwork to public spaces in a way that de-prioritizes "in-group" preferences, by satisfying minimum representation and exposure criteria. We draw on existing literature to develop a fairness metric for our algorithmic output, and we assess the effectiveness of our approach and discuss its potential pitfalls from both a curatorial and equity standpoint.
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