Transfer Learning for Harmful Content Detection

Éditeur :

Springer

Paru le : 2025-09-26

This book provides an in-depth exploration of the effectiveness of transfer learning approaches in detecting deceptive content (i.e., fake news) and inappropriate content (i.e., hate speech). The author first addresses the issue of insufficient labeled data by reusing knowledge gained from other nat...
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À propos

Auteur

Éditeur

Collection
n.c

Parution
2025-09-26

Pages
105 pages

EAN papier
9783032008497

Auteur(s) du livre


Salar Mohtaj is a Research Scientist at the German Research Center for Artificial Intelligence (DFKI) and a postcoctoral researcher in the Speech & Language Technology group. He completed his PhD at Technische Universität Berlin, focusing on fake news and hate speech detection, and hold a Master’s degree in Information Technology from Tehran Polytechnic (Amirkabir University of Technology), specializing in natural language processing. Previously, he led the development of a Persian plagiarism detection system at ICT Research Institute of Tehran. With over 40 publications in journals and conferences, Salar has made contributions to different natural language processing tasks, notably publishing research and creating datasets across various tasks—from plagiarism detection and German text readability assessment to fake news detection.

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EAN PDF
9783032008503
Prix
147,69 €
Nombre pages copiables
1
Nombre pages imprimables
10
Taille du fichier
3656 Ko
EAN EPUB
9783032008503
Prix
147,69 €
Nombre pages copiables
1
Nombre pages imprimables
10
Taille du fichier
1260 Ko

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