Investigating the Nature of Disagreements on Mid-Scale Ratings: A Case Study on the Abstractness-Concreteness Continuum
November 08, 2023 ยท Declared Dead ยท ๐ Conference on Computational Natural Language Learning
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Authors
Urban Knupleลก, Diego Frassinelli, Sabine Schulte im Walde
arXiv ID
2311.04563
Category
cs.CL: Computation & Language
Citations
5
Venue
Conference on Computational Natural Language Learning
Last Checked
5 months ago
Abstract
Humans tend to strongly agree on ratings on a scale for extreme cases (e.g., a CAT is judged as very concrete), but judgements on mid-scale words exhibit more disagreement. Yet, collected rating norms are heavily exploited across disciplines. Our study focuses on concreteness ratings and (i) implements correlations and supervised classification to identify salient multi-modal characteristics of mid-scale words, and (ii) applies a hard clustering to identify patterns of systematic disagreement across raters. Our results suggest to either fine-tune or filter mid-scale target words before utilising them.
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