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In the contemporary business landscape, the integration of machine learning (ML) with business analytics has emerged as a pivotal strategy for enhancing decision-making processes. This research investigates the role of machine learning in refining business analytics, aiming to demonstrate how advanced algorithms can be harnessed to derive actionable insights and improve organizational outcomes. The study explores the theoretical foundations of machine learning and business analytics, evaluates current applications, and identifies gaps in the existing literature. Through a mixed-methods approach, incorporating both quantitative and qualitative data, the research provides a comprehensive analysis of how ML techniques can be effectively employed to address complex business challenges. The findings reveal that machine learning significantly enhances the accuracy and efficiency of business analytics, leading to more informed and strategic decision-making. The study concludes with practical recommendations for businesses seeking to leverage machine learning and outlines directions for future research in this evolving field.
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Rakibul Hasan Chowdhury (Fri,) studied this question.
www.synapsesocial.com/papers/68e5bf9fb6db643587557164 — DOI: https://doi.org/10.30574/wjaets.2024.12.2.0341
Rakibul Hasan Chowdhury
World Journal of Advanced Engineering Technology and Sciences
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