Making Absence Visible: The Roles of Reference and Prompting in Recognizing Missing Information

Fuente: arXiv
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Main Authors: Shoshan, Hagit Ben, Lanir, Joel, Goldstein, Pavel, Mokryn, Osnat
Format: Preprint
Published: 2026
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author Shoshan, Hagit Ben
Lanir, Joel
Goldstein, Pavel
Mokryn, Osnat
author_facet Shoshan, Hagit Ben
Lanir, Joel
Goldstein, Pavel
Mokryn, Osnat
contents Interactive systems that explain data, or support decision making often emphasize what is present while overlooking what is expected but missing. This presence bias limits users' ability to form complete mental models of a dataset or situation. Detecting absence depends on expectations about what should be there, yet interfaces rarely help users form such expectations. We present an experimental study examining how reference framing and prompting influence people's ability to recognize expected but missing categories in datasets. Participants compared distributions across three domains (energy, wealth, and regime) under two reference conditions: Global, presenting a unified population baseline, and Partial, showing several concrete exemplars. Results indicate that absence detection was higher with Partial reference than with Global reference, suggesting that partial, samples-based framing can support expectation formation and absence detection. When participants were prompted to look for what was missing, absence detection rose sharply. We discuss implications for interactive user interfaces and expectation-based visualization design, while considering cognitive trade-offs of reference structures and guided attention.
format Preprint
id arxiv_https___arxiv_org_abs_2601_07234
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Making Absence Visible: The Roles of Reference and Prompting in Recognizing Missing Information
Shoshan, Hagit Ben
Lanir, Joel
Goldstein, Pavel
Mokryn, Osnat
Human-Computer Interaction
Information Retrieval
Applications
Interactive systems that explain data, or support decision making often emphasize what is present while overlooking what is expected but missing. This presence bias limits users' ability to form complete mental models of a dataset or situation. Detecting absence depends on expectations about what should be there, yet interfaces rarely help users form such expectations. We present an experimental study examining how reference framing and prompting influence people's ability to recognize expected but missing categories in datasets. Participants compared distributions across three domains (energy, wealth, and regime) under two reference conditions: Global, presenting a unified population baseline, and Partial, showing several concrete exemplars. Results indicate that absence detection was higher with Partial reference than with Global reference, suggesting that partial, samples-based framing can support expectation formation and absence detection. When participants were prompted to look for what was missing, absence detection rose sharply. We discuss implications for interactive user interfaces and expectation-based visualization design, while considering cognitive trade-offs of reference structures and guided attention.
title Making Absence Visible: The Roles of Reference and Prompting in Recognizing Missing Information
topic Human-Computer Interaction
Information Retrieval
Applications
url https://arxiv.org/abs/2601.07234