Introduction To Business Analytics And Operational Research Solution Methods - Statswork

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Introduction to Business Analytics and Operational Research Solution Methods, Including Decision Analysis, Linear Programming, Inventory Control, Simulation and Markov Chains Dr. Nancy Agens, Head, Technical Operations, Statswork

info@statswork.com I. INTRODUCTION In modern years, there is a growing demand in the field of business analytics. It actually means that what outcome we should get in business from the data to make better decisions. This is often sound like relating a business problem to an operation research problem. However, there is often a question arise in connecting the business analytics to the operation research problem. In this blog, I will explain you the meaning of business analytics and how it is related and useful in the operation research methods or decision making including linear programming, inventory management, simulation and II. MARKOV CHAINS Analytics are used to identify (i) what has happened? (ii) What should happen? And (iii) what will happen? In the business. These three forms of question are categorized into Descriptive, Prescriptive and Predictive analytics respectively. However, business analytics is the study of data via statistical techniques, constructing predictive models, implementing the optimizing rule and draw a valid inference according to the business needs. Thus, business analytics uses a huge amount of data or simply big data to make a profitable conclusion. There is a different approach to business analytics, which in turn delivers profitable benefits (Budnick et al., 1994). I will list out a few uses of business analytics for the betterment of the business.

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If a business company wants to identify the pattern of the sales of a product or to find a new pattern to promote the growth of the business, then business analytics is used to implement the data mining techniques such as classification, regression analysis, clustering analysis, etc., and to understand the complex data using neural networks, deep learning and machine learning techniques.  Business analytics is used to do quantitative statistical analysis or solving a mathematical model to deliver justifications for the occurrence of the problem  It can be used as a supporting tool for conducting any multivariate testing and A/B testing to find the relationship or test the relationship with past decisions.  It can be used for predictive modelling to improve business standards. Apart from the benefits and uses of business analytics, the main goal of business analytics is to identify which dataset will be useful and how it can be taken forward to solve the business problems and increase the profit, productivity, and efficiency. So far, I explained to you about the meaning and benefits of business analytics. However, in recent years, business analytics in operational practice has become a great interest among researchers. With the growth of technologies, and with the large amount of data at hand, it is important to make use of analytics and the operation research approach to solve many complex business problems (Choi et al., 2017; Hillier & Lieberman, 2015). Thus, in the coming

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