Introduction to Artificial Intelligence and Machine Learning, with eBook Access Code - R Kelly Rainer
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Présentation Introduction To Artificial Intelligence And Machine Learning, With Ebook Access Code de R Kelly Rainer Format Broché
- Livre Informatique
Résumé : Helps students unlock the power of AI and Machine Learning to achieve business success and future-proof their careers Artificial intelligence and machine learning are transforming the modern workplace, making AI literacy a critical skill for business professionals. Introduction to Artificial Intelligence and Machine Learning equips students with essential AI/ML knowledge and practical skills, enabling them to leverage cutting-edge technology in today's data-driven world. With an engaging and accessible approach, this textbook ensures that students-regardless of technical background-gain a working knowledge of AI/ML systems. Concise, easy-to-digest chapters blend foundational concepts with real-world applications to help students develop the expertise needed to implement AI/ML solutions across industries. For instructors, the textbook offers flexible teaching methodologies, whether focusing on conceptual discussions, light technology applications, or full AI/ML projects. With a clear business perspective and a strong emphasis on AI governance and deployment, the textbook prepares students to navigate the future of AI in the workplace with confidence. Helping students build a solid foundation in key concepts while exploring strategic implementation and ethical considerations, Introduction to Artificial Intelligence and Machine Learning is ideal for undergraduate and graduate students in business, engineering, and healthcare programs taking courses such as Business Analytics, Information Systems, and AI Strategy. WILEY ADVANTAGE AN INTERACTIVE, MULTIMEDIA LEARNING EXPERIENCE This textbook includes access to an interactive, multimedia e-text. Icons throughout the print book signal corresponding digital content in the e-text. Video Clips created by the author complement the text and engage students more deeply with AI/ML concepts and applications. Interactive Questions appear in each chapter of the enhanced e-text, providing students with immediate feedback to strengthen learning....
Biographie: R. Kelly Rainer is the George Phillips Privet Professor in the Department of Business Analytics and Information Systems at Auburn University. He has published in leading journals such as MIS Quarterly, Journal of Management Information Systems, and Decision Sciences. A recognized expert in information systems and business analytics, Rainer is a member of the Decision Sciences Institute and the Association for Information Systems....
Sommaire: Preface vii 1 Artificial Intelligence and Machine Learning and You 1 4.2 Characteristics of Problems Suitable for AI/ML Solutions 93 4.3 The AI/ML Deployment Process 96 4.4 What's in AI/ML for Me? 104 1.1 The Modern Business Environment 4 1.2 A Brief History of Artificial Intelligence and Machine Learning 6 1.3 Definitions 8 1.4 Why You Should Learn About AI and ml 11 1.5 Organizational Roles in AI/ML Projects 13 1.6 What's in AI/ML for Me? 19 2 Fundamentals of Artificial Intelligence and Machine Learning 31 Introduction 33 2.1 Conventional Programming Versus AI/ML 33 2.2 The Basics of AI/ML Systems 38 2.3 Advantages of AI/ML Systems 40 2.4 Disadvantages of AI/ML Systems 42 2.5 What's in AI/ML for Me? 48 3 Strategic Considerations for AI/ML Development 54 3.1 AI/ML Maturity Levels for Organizations 56 3.2 Align AI/ML Projects with Organizational Strategy 59 3.3 Major Strategic Models for AI/ML Implementation 62 3.4 Link Model Metrics to Organizational KPIs 68 3.5 Change Management in AI/ML Adoption 70 3.6 AI/ML Governance 73 3.7 What's in AI/ML for Me? 77 4 The Business Problem 84 Introduction 85 4.1 Understand and Define the Business Problem 86 5 Data Management 108 Introduction 110 5.1 Fundamentals of Data 110 5.2 Data Sources 112 5.3 Feature Engineering 116 5.4 Data Cleaning and Preprocessing 120 5.5 Select Independent Variables and Dependent Variables and Split the Data 124 5.6 What's in AI/ML for Me? 127 6 AI/ML Model Training 135 Introduction 135 6.1 Supervised Machine Learning Algorithms: Regression 136 6.2 Supervised Machine Learning Algorithms: Classification 139 6.3 Unsupervised Machine Learning Algorithms 159 6.4 Challenges in Model Training 161 6.5 Strategies for Model Improvement 165 6.6 What's in AI/ML for Me? 167 7 Neural Networks and Monitoring and Maintaining AI/ML Models 177 7.1 Introduction to Neural Networks 177 7.2 AI/ML Model Monitoring 186 7.3 AI/ML Model Maintenance 191 7.4 What's in AI/ML for Me? 194 8 Generative Machine Learning (Generative AI) 200 Introduction 201 8.1 Foundation Models 202 8.2 Introduction to Generative AI and Its Business Applications 207 8.3 Limitations of Generative AI Models 213 8.4 Prompt Engineering 219 8.5 What's in AI/ML for Me? 223 Appendix 229 Index 307
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