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Navigating the Conceptual Multiverse

2026/04/20 by Andre Ye, Jenny Y. Huang, Alicia Guo +4 · 1 voice
Computer Science · #Multimodal Machine Learning Applications #Natural Language Processing Techniques #Topic Modeling #cs.CL #cs.CY #cs.HC

paper · pdf · doi:10.48550/arxiv.2604.17815

openalex publication_date 2026/04/20 · arxiv published 2026/04/20 · openalex created_date 2026/04/22 · arxiv updated 2026/05/02 · openalex updated_date 2026/07/28

Abstract

When language models answer open-ended problems, they implicitly make hidden decisions that shape their outputs, leaving users with uncontextualized answers rather than a working map of the problem; drawing on multiverse analysis from statistics, we build and evaluate the conceptual multiverse, an interactive system that represents conceptual decisions such as how to frame a question or what to value as a space users can transparently inspect, intervenably change, and check against principled domain reasoning; for this structure to be worth navigating rather than misleading, it must be rigorous and checkable against domain reasoning norms, so we develop a general verification framework that enforces properties of good decision structures like unambiguity and completeness calibrated by expert-level reasoning; across three domains, the conceptual multiverse helped participants develop a working map of the problem, with philosophy students rewriting essays with sharper framings and reversed theses, alignment annotators moving from surface preferences to reasoning about user intent and harm, and poets identifying compositional patterns that clarified their taste.

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