Business Analytics Dissertation Help: Defining and Identifying a Research Agenda

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Business Analytics Dissertation Help: Defining and Identifying a Research Agenda for an Evidence Based Management Framework Dr. Nancy Agens, Head, Technical Operations, Phdassistance info@phdassistance.com

In Brief You will find the best dissertation research areas/topics for future researchers enrolled in Engineering and Technology. In order to identify future research topics, we have reviewed the technical conventions. (recent peerreviewed studies). Business analytics refers to the systematic use of data collected from a variety of sources, quantitative and statistical analysis, predictive and explanatory models and evidence-based management to direct actions and decisions towards the appropriate stakeholders. Writing a business analytics dissertations, it is important for the researchers to have strong knowledge related to the approaches used and in the data science and machine learning which will help in writing business analytics dissertation. Keywords: Research Proposal, Academic Writing, Literature review writing, Literature review help, Dissertation writing help, dissertation writing service. I. INTRODUCTION Organizations employ business analytics to make intelligent decisions, which can be made quicker and better in order to enhance the value of the business. Until today, academicians and industrialists have focused mainly on descriptive and predictive analytics. However, prescriptive analytics is gaining huge interest in terms of research in the business analytics area as it is considered as the best course of action for future businesses. Therefore Prescriptive analytics is often considered as the next step in improving data analytics

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maturity, which further leads to augmented decision making improving business performance. Business analytics refers to the systematic use of data collected from a variety of sources, quantitative and statistical analysis, predictive and explanatory models and evidence-based management to direct actions and decisions towards the appropriate stakeholders (Davenport & Harris, 2007; Soltanpoor & Sellis, 2016). Therefore, business analytics incorporates the use of approaches such as data science, operational research, machine learning and information systems fields (Mortenson, Doherty, & Robinson, 2015). In this context, business analytics deal not only with descriptive models but also with models that can offer valuable insights and support business performance decisions. To this end, business analysis has developed beyond a simple raw data analysis on large datasets with the goal of creating a competitive advantage for organizations (Mikalef, Pappas, Krogstie, & Giannakos, 2018; Vidgen, Shaw, & Grant, 2017). Business analytics is classified into three main categories with different levels of difficulty, value and intelligence (Akerkar, 2013; Krumeich, Werth, & Loos, 2016; Šikšnys & Pedersen, 2016) (Krumeich, Christ, Julian, & Kempa-Liehr, 2016): (i) descriptive analytics, answering the questions “What has happened?”, “Why did it happen?”, but also “What is happening now?” (mainly in a streaming context); (ii) predictive analytics, answering the questions “What will happen?” and “Why will it happen?” in the future; (iii) prescriptive analytics, answering the questions “What should I do?” and “Why should I do it?” (Lepenioti, Bousdekis, Apostolou, & Mentzas, 2020).

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