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Informing policy with text mining: technological change and social challenges

Autor
Nawaro, Łukasz
Paliński, Michał
Gyódi, Kristóf
Wilamowski, Maciej
Data publikacji
2022
Abstrakt (EN)

This study presents an innovative text mining methodology that supports policy analysts with problem recognition, definition and selection. The empirical analysis is based on four years of online news articles published in the period 2016–2019. Using a combination of text mining methods (analysis of term-frequencies, co-occurrence and sentiment analysis), we identify trending terms and explore selected regulatory issues. The analysis demon- strates that while each text mining algorithm provides insightful results, their combination yields more detailed and robust overview of regulatory problems. The results present early signals and trends, the connections between trending topics, and the changing public atti- tudes towards them.

Słowa kluczowe EN
Technological policy
Online news
Text mining
Sentiment analysis
Dyscyplina PBN
ekonomia i finanse
Czasopismo
Quality and Quantity
ISSN
0033-5177
Data udostępnienia w otwartym dostępie
2022-04-16
Licencja otwartego dostępu
Uznanie autorstwa