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stat.ML updates on arXiv.org

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Learning Interpretable Text Signals for Structured Responses
[Submitted on 24 Jun 2026] · 2026-06-25 · via stat.ML updates on arXiv.org

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Abstract:Textual data are often collected alongside structured response variables, but prediction and interpretation are commonly treated as separate tasks. This paper studies rating prediction as an initial case of interpretable text-response modelling, where the aim is to learn textual representations that are both semantically meaningful and aligned with an external response. We propose a joint non-negative matrix factorisation and binomial regression model, in which the document-topic representation is learned from both text reconstruction and rating prediction. Simulation experiments and a real-world review dataset show that the model can recover stable response-relevant textual signals and achieve competitive performance against linear and ridge regression baselines. The framework provides a practical step towards interpretable modelling of text-linked outcomes, with potential extensions to other response types beyond bounded ratings.

Submission history

From: Cixiao Jiang [view email]
[v1] Wed, 24 Jun 2026 01:08:05 UTC (4,346 KB)