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Authors:
Häffner, Sonja; Hofer, Martin; Nagl, Maximilian; Walterskirchen, Julian 
Document type:
Zeitschriftenartikel / Journal Article 
Title:
Introducing an interpretable deep learning approach to domain-specific dictionary creation 
Subtitle:
a use case for conflict prediction 
Journal:
Political Analysis 
Volume:
31 
Issue:
Year:
2023 
Pages from - to:
481-499 
Language:
Englisch 
Keywords:
natural language processing ; objective dictionaries ; deep learning ; transformers ; conflict dynamics 
Abstract:
Recent advancements in natural language processing (NLP) methods have significantly improved their performance. However, more complex NLP models are more difficult to interpret and computationally expensive. Therefore, we propose an approach to dictionary creation that carefully balances the trade-off between complexity and interpretability. This approach combines a deep neural network architecture with techniques to improve model explainability to automatically build a domain-specific dictionar...    »
 
ISSN:
1476-4989 ; 1047-1987 
Research Hub UniBw M:
CISS 
Open Access yes or no?:
Ja / Yes 
Type of OA license:
CC BY 4.0 Deed 
Miscellaneous:
Die Veröffentlichung wurde finanziell unterstützt durch die Universität der Bundeswehr München (Publish-and-Read-Vertrag) 
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