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Schemex: Discovering Structural Abstractions from Examples

2 Pith papers cite this work. Polarity classification is still indexing.

2 Pith papers citing it
abstract

Creative and communicative work is often underpinned by implicit structures, such as the Hero's Journey in storytelling, design patterns in software, or chord progressions in music. People often learn these structures from examples - a process known as schema induction. However, because schemas are abstract and implicit, they are difficult to discover: shared structural patterns are obscured by surface-level variation, and balancing generality with specificity is challenging. We present Schemex, an interactive AI workflow that systematically supports schema induction by decomposing it into three tractable stages: clustering examples, abstracting candidate schemas, and contrastively refining them by generating new instances and comparing against originals. Studies show that Schemex produces more actionable schemas than a frontier baseline without sacrificing generalizability, with participants uncovering deep and nuanced structural patterns. We also discuss design implications for the cognitive role of interactive process in structure discovery.

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cs.HC 2

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2026 2

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UNVERDICTED 2

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Showing 2 of 2 citing papers.

  • Discovery-Oriented Faceting: From Coverage to Blind-Spot Discovery cs.HC · 2026-05-13 · unverdicted · none · ref 26 · internal anchor

    DOF ranks document categories by distinctiveness instead of size to promote blind-spot discovery, surfacing different content than coverage-based methods across four domains.

  • Narrix: Remixing Narrative Strategies from Examples for Story Writing cs.HC · 2026-04-08 · unverdicted · none · ref 94 · internal anchor

    Narrix helps novices identify and reuse narrative strategies from examples through visualization and strategy-steered generation, improving retention, confidence, and adaptation over chat interfaces in a 12-person study.