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Characterizing Linguistic Shifts in Croatian News via Diachronic Word Embeddings

Characterizing Linguistic Shifts in Croatian News via Diachronic Word Embeddings

来源:Arxiv_logoArxiv
英文摘要

Measuring how semantics of words change over time improves our understanding of how cultures and perspectives change. Diachronic word embeddings help us quantify this shift, although previous studies leveraged substantial temporally annotated corpora. In this work, we use a corpus of 9.5 million Croatian news articles spanning the past 25 years and quantify semantic change using skip-gram word embeddings trained on five-year periods. Our analysis finds that word embeddings capture linguistic shifts of terms pertaining to major topics in this timespan (COVID-19, Croatia joining the European Union, technological advancements). We also find evidence that embeddings from post-2020 encode increased positivity in sentiment analysis tasks, contrasting studies reporting a decline in mental health over the same period.

David Duki?、Ana Bari?、Marko ?uljak、Josip Juki?、Martin Tutek

语言学印欧语系

David Duki?,Ana Bari?,Marko ?uljak,Josip Juki?,Martin Tutek.Characterizing Linguistic Shifts in Croatian News via Diachronic Word Embeddings[EB/OL].(2025-06-16)[2025-06-30].https://arxiv.org/abs/2506.13569.点此复制

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