Data Science For Business And Decision Making
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Data Science for Business and Decision Making
Author | : Luiz Paulo Fávero,Patrícia Belfiore |
Publsiher | : Academic Press |
Total Pages | : 1240 |
Release | : 2019-04-11 |
Genre | : Business & Economics |
ISBN | : 9780128112175 |
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Data Science for Business and Decision Making covers both statistics and operations research while most competing textbooks focus on one or the other. As a result, the book more clearly defines the principles of business analytics for those who want to apply quantitative methods in their work. Its emphasis reflects the importance of regression, optimization and simulation for practitioners of business analytics. Each chapter uses a didactic format that is followed by exercises and answers. Freely-accessible datasets enable students and professionals to work with Excel, Stata Statistical Software®, and IBM SPSS Statistics Software®. Combines statistics and operations research modeling to teach the principles of business analytics Written for students who want to apply statistics, optimization and multivariate modeling to gain competitive advantages in business Shows how powerful software packages, such as SPSS and Stata, can create graphical and numerical outputs
Data Science for Business
Author | : Foster Provost,Tom Fawcett |
Publsiher | : "O'Reilly Media, Inc." |
Total Pages | : 414 |
Release | : 2013-07-27 |
Genre | : Computers |
ISBN | : 9781449374280 |
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Written by renowned data science experts Foster Provost and Tom Fawcett, Data Science for Business introduces the fundamental principles of data science, and walks you through the "data-analytic thinking" necessary for extracting useful knowledge and business value from the data you collect. This guide also helps you understand the many data-mining techniques in use today. Based on an MBA course Provost has taught at New York University over the past ten years, Data Science for Business provides examples of real-world business problems to illustrate these principles. You’ll not only learn how to improve communication between business stakeholders and data scientists, but also how participate intelligently in your company’s data science projects. You’ll also discover how to think data-analytically, and fully appreciate how data science methods can support business decision-making. Understand how data science fits in your organization—and how you can use it for competitive advantage Treat data as a business asset that requires careful investment if you’re to gain real value Approach business problems data-analytically, using the data-mining process to gather good data in the most appropriate way Learn general concepts for actually extracting knowledge from data Apply data science principles when interviewing data science job candidates
Data Science for Business and Decision Making an Introductory Text for Students and Practitioners
Author | : Seyed Ali Fallahchay |
Publsiher | : Arcler Press |
Total Pages | : 135 |
Release | : 2020-11 |
Genre | : Electronic Book |
ISBN | : 1774076217 |
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This book explores the principles underpinning data science. It considers the how and why of modern data science. The book goes further than existing books by applying data to decision making. Not only is the book useful for undergraduates, but it can also help business owners in improving their decision making. Using real life examples, this book explores the possibilities and limitations of an information-based decision making framework.
Data Science and Multiple Criteria Decision Making Approaches in Finance
Author | : Gökhan Silahtaroğlu,Hasan Dinçer,Serhat Yüksel |
Publsiher | : Springer Nature |
Total Pages | : 183 |
Release | : 2021-05-29 |
Genre | : Business & Economics |
ISBN | : 9783030741761 |
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This book considers and assesses essential financial issues by utilizing data science and fuzzy multiple criteria decision making (MCDM) methods. It introduces readers to a range of data science methods, and demonstrates their application in the fields of business, health, economics, finance and engineering. In addition, it provides suggestions based on the assessment results on each topic, which can help to enhance the efficiency of the financial system and the sustainability of economic development. Given its scope, the book will help readers broaden their perspective on the assessment and evaluation of financial issues using data science and MCDM approaches.
Getting Started with Business Analytics
Author | : David Roi Hardoon,Galit Shmueli |
Publsiher | : CRC Press |
Total Pages | : 192 |
Release | : 2013-03-26 |
Genre | : Business & Economics |
ISBN | : 9781439896549 |
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Assuming no prior knowledge or technical skills, Getting Started with Business Analytics: Insightful Decision-Making explores the contents, capabilities, and applications of business analytics. It bridges the worlds of business and statistics and describes business analytics from a non-commercial standpoint. The authors demystify the main concepts
Business Analytics
Author | : S. Christian Albright,Wayne L. Winston |
Publsiher | : Unknown |
Total Pages | : 135 |
Release | : 2017 |
Genre | : Electronic Book |
ISBN | : 1337559687 |
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Customer and Business Analytics
Author | : Daniel S. Putler,Robert E. Krider |
Publsiher | : CRC Press |
Total Pages | : 315 |
Release | : 2015-09-15 |
Genre | : Business & Economics |
ISBN | : 9781498759700 |
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Customer and Business Analytics: Applied Data Mining for Business Decision Making Using R explains and demonstrates, via the accompanying open-source software, how advanced analytical tools can address various business problems. It also gives insight into some of the challenges faced when deploying these tools. Extensively classroom-tested, the text is ideal for students in customer and business analytics or applied data mining as well as professionals in small- to medium-sized organizations. The book offers an intuitive understanding of how different analytics algorithms work. Where necessary, the authors explain the underlying mathematics in an accessible manner. Each technique presented includes a detailed tutorial that enables hands-on experience with real data. The authors also discuss issues often encountered in applied data mining projects and present the CRISP-DM process model as a practical framework for organizing these projects. Showing how data mining can improve the performance of organizations, this book and its R-based software provide the skills and tools needed to successfully develop advanced analytics capabilities.
Management Decision Making Big Data and Analytics
Author | : Simone Gressel,David J. Pauleen,Nazim Taskin |
Publsiher | : SAGE |
Total Pages | : 354 |
Release | : 2020-10-12 |
Genre | : Business & Economics |
ISBN | : 9781529738285 |
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Accessible and concise, this exciting new textbook examines data analytics from a managerial and organizational perspective and looks at how they can help managers become more effective decision-makers. The book successfully combines theory with practical application, featuring case studies, examples and a ‘critical incidents’ feature that make these topics engaging and relevant for students of business and management. The book features chapters on cutting-edge topics, including: • Big data • Analytics • Managing emerging technologies and decision-making • Managing the ethics, security, privacy and legal aspects of data-driven decision-making The book is accompanied by an Instructor’s Manual, PowerPoint slides and access to journal articles. Suitable for management students studying business analytics and decision-making at undergraduate, postgraduate and MBA levels.