Leveraging Natural Language Processing for Enhanced Text Analysis in Business Intelligence

Author:

Hidayatullah Ahmad Fathan1ORCID,Kalinaki Kassim2ORCID,Gul Haji3ORCID,Yusuf Rufai Zakari4ORCID,Shafik Wasswa5ORCID

Affiliation:

1. Universitas Islam Indonesia, Indonesia

2. Islamic University in Uganda, Uganda

3. Universiti Brunei Darussalam, Brunei

4. Skyline University, Nigeria

5. Dig Connectivity Research Laboratory (DCRLab), Kampala, Uganda & School of Digital Science, Universiti Brunei Darussalam, Gadong, Brunei

Abstract

Business intelligence (BI) is crucial for informed decision-making, optimizing operations, and gaining a competitive edge. The rapid growth of unstructured text data has created a need for advanced text analysis techniques in BI. Natural language processing (NLP) is essential for analyzing unstructured textual data. This chapter covers foundational NLP techniques for text analysis, the role of text analysis in BI, and challenges and opportunities in this area. Real-world applications of NLP in BI demonstrate how organizations use NLP-driven text analysis to gain insights, improve customer experience, and anticipate market trends. Future directions and emerging trends, including multimodal learning, contextualized embeddings, conversational AI, explainable AI, federated learning, and knowledge graph integration, were explored. These advancements enhance the scalability, interpretability, and privacy of NLP-driven BI systems, enabling organizations to derive deeper insights and drive innovation in data-driven business landscapes.

Publisher

IGI Global

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