In today's information-rich landscape—characterized by a diverse range of digital records, high-throughput and complex experimentation, passive data collection, and real-time decision systems—the demand for novel and robust statistical modeling methodologies has never been greater. Traditional statistical modeling frameworks are being stretched to their limits by the complexity and scale of modern data, necessitating the development of novel and improved modeling frameworks that can deliver efficient, effective, and scientifically rigorous inferences. The elimination of the so-called replication crisis through effective statistical inference methodologies is a major concern. Therefore, this Special Issue seeks to bring together cutting-edge research that advances the theory of statistical modeling and explores innovative applications across a wide range of scientific and technological domains.
The Special Issue invites original research and review articles that advance the theory and practice of statistical modeling and its applications. We seek contributions that address the urgent need for innovative statistical models tailored to the evolving landscape of scientific inquiry, as well as new applications of established modeling frameworks in emerging domains. We aim to showcase cutting-edge research that achieves the following:
Topics of Interests:
We invite submissions covering, but not limited to, the following core statistical modeling approaches:
Dr. Priyantha Wijayatunga
Guest Editor
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Priyantha Wijayatunga, PhD
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Σ Statlytika – Statistical and Data Analytics
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