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Autorinnen/Autoren:
Schneider, Sinclair; Steuber, Florian; Schneider, João A.G.; Dreo Rodosek, Gabi
Dokumenttyp:
Zeitschriftenartikel / Journal Article
Titel:
Detection avoidance techniques for large language models
Zeitschrift:
Data & Policy
Jahr:
2025
Sprache:
Englisch
Abstract:
The increasing popularity of large language models has not only led to widespread use but has also brought various risks, including the potential for systematically spreading fake news. Consequently, the development of classification systems such as DetectGPT has become vital. These detectors are vulnerable to evasion techniques, as demonstrated in an experimental series: Systematic changes of the generative models’ temperature proofed shallow learning—detectors to be the least reliable (Experim...     »
ISSN:
2632-3249
DOI:
10.1017/dap.2025.6
URL zum Inhalt:
https://doi.org/10.1017/dap.2025.6
Fakultät:
Fakultät für Informatik
Institut:
INF 3 - Institut für Technische Informatik
Professorin/Professor:
Dreo Rodosek, Gabi
Forschungszentrum:
CODE
Open Access:
Ja / Yes
Open-Access-Lizenz:
CC BY 4.0
URL zur Lizenz:
https://creativecommons.org/licenses/by/4.0/
Sonstige Angaben:
Die Veröffentlichung wurde finanziell unterstützt durch die Universität der Bundeswehr München (Publish-and-Read-Vertrag).
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