About
Dr. Ahmad Zareie is a Researcher at the School of Computer Science, University of Sheffield, affiliated with the Natural Language Processing (NLP) research group. His work focuses on machine learning, social network analysis, and optimization algorithms, particularly in the context of information diffusion, influence maximization, and network dynamics.
His research interests include developing advanced methods for analyzing complex social networks, identifying influential users, and mitigating misinformation spread. He has contributed to areas such as temporal link prediction, fuzzy influence maximization, and rumor control strategies. His work often integrates machine learning techniques with network science to address real-world challenges in online social networks.
Dr. Zareie’s publications highlight a trend toward behavior-aware network analysis, leveraging optimization algorithms and fuzzy logic to enhance network intervention strategies. His recent work emphasizes ethical considerations in network fairness and diversity of information exposure.
While no awards or grants are explicitly listed, his research demonstrates significant contributions to foundational and applied aspects of social network analysis. He is part of the NLP research group, collaborating on projects at the intersection of language processing and network dynamics.
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