Business Analytics By Camm Cochran Fry
- Publisher: Business & Money
- Availability: In Stock
- SKU: 52600
- Number of Pages: 800
Rs.1,530.00
Rs.2,095.00
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"Business Analytics: Descriptive, Predictive, Prescriptive" by Camm, Cochran, Fry, Ohlmann, Sweeney, and Williams is a comprehensive guide that explores the foundational concepts and applications of business analytics. It delves into the three primary types of analytics—descriptive, predictive, and prescriptive—providing readers with the tools and knowledge necessary to effectively analyze data and make informed business decisions. The book combines theoretical insights with practical examples to illustrate how businesses can leverage analytics to gain competitive advantages, optimize operations, and enhance decision-making processes.
Key Points
1. Descriptive Analytics Descriptive analytics involves summarizing historical data to identify patterns and trends. It helps businesses understand what has happened in the past by using data aggregation and data mining techniques.
2. Predictive Analytics Predictive analytics uses statistical models and machine learning techniques to forecast future events based on historical data. It enables businesses to anticipate future outcomes and trends.
3. Prescriptive Analytics Prescriptive analytics focuses on recommending actions based on predictive models. It goes beyond prediction to suggest decision options and their potential impacts.
4. Data Collection and Preparation Effective analytics begins with robust data collection and preparation. This includes gathering relevant data, cleaning it, and ensuring it is ready for analysis.
5. Data Visualization Data visualization techniques are crucial for interpreting and communicating the results of data analysis. Tools like charts, graphs, and dashboards help make complex data more understandable.
6. Statistical Methods The book covers essential statistical methods used in business analytics, such as regression analysis, hypothesis testing, and clustering, which form the backbone of data analysis.
7. Machine Learning Machine learning algorithms are integral to predictive analytics. The book explores various machine learning techniques, including classification, regression, and ensemble methods.
8. Optimization Techniques Optimization is key in prescriptive analytics. Techniques like linear programming and simulation help businesses determine the best courses of action to achieve their goals.
9. Case Studies and Applications Real-world case studies and applications illustrate how businesses have successfully implemented analytics to solve problems and drive growth.
10. Ethical Considerations The ethical use of data and analytics is emphasized, addressing concerns such as data privacy, security, and the potential for bias in analytical models.
"Business Analytics: Descriptive, Predictive, Prescriptive" provides a solid foundation for anyone looking to understand and apply business analytics in a professional setting. It balances theoretical knowledge with practical application, ensuring readers are well-equipped to leverage data for strategic decision-making.
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Writer ✤ Camm Cochran Fry & Ohlmann Sweeney Williams