Measuring the Measuring Tools: An Automatic Evaluation of Semantic Metrics for Text Corpora

November 29, 2022 ยท Declared Dead ยท ๐Ÿ› IEEE Games Entertainment Media Conference

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Authors George Kour, Samuel Ackerman, Orna Raz, Eitan Farchi, Boaz Carmeli, Ateret Anaby-Tavor arXiv ID 2211.16259 Category cs.CL: Computation & Language Citations 13 Venue IEEE Games Entertainment Media Conference Last Checked 5 months ago
Abstract
The ability to compare the semantic similarity between text corpora is important in a variety of natural language processing applications. However, standard methods for evaluating these metrics have yet to be established. We propose a set of automatic and interpretable measures for assessing the characteristics of corpus-level semantic similarity metrics, allowing sensible comparison of their behavior. We demonstrate the effectiveness of our evaluation measures in capturing fundamental characteristics by evaluating them on a collection of classical and state-of-the-art metrics. Our measures revealed that recently-developed metrics are becoming better in identifying semantic distributional mismatch while classical metrics are more sensitive to perturbations in the surface text levels.
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