Description
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- Cover
- Introduction
- About This Book
- Foolish Assumptions
- Icons Used in This Book
- Beyond the Book
- Where to Go from Here
- Part 1: Getting Started with Predictive Analytics
- Chapter 1: Entering the Arena
- Exploring Predictive Analytics
- Adding Business Value
- Starting a Predictive Analytic Project
- Ongoing Predictive Analytics
- Forming Your Predictive Analytics Team
- Surveying the Marketplace
- Chapter 2: Predictive Analytics in the Wild
- Online Marketing and Retail
- Implementing a Recommender System
- Target Marketing
- Personalization
- Content and Text Analytics
- Chapter 3: Exploring Your Data Types and Associated Techniques
- Recognizing Your Data Types
- Identifying Data Categories
- Generating Predictive Analytics
- Connecting to Related Disciplines
- Chapter 4: Complexities of Data
- Finding Value in Your Data
- Constantly Changing Data
- Complexities in Searching Your Data
- Differentiating Business Intelligence from Big-Data Analytics
- Exploration of Raw Data
- Part 2: Incorporating Algorithms in Your Models
- Chapter 5: Applying Models
- Modeling Data
- Healthcare Analytics Case Studies
- Social and Marketing Analytics Case Studies
- Prognostics and its Relation to Predictive Analytics
- The Rise of Open Data
- Chapter 6: Identifying Similarities in Data
- Explaining Data Clustering
- Converting Raw Data into a Matrix
- Identifying Groups in Your Data
- Finding Associations in Data Items
- Applying Biologically Inspired Clustering Techniques
- Chapter 7: Predicting the Future Using Data Classification
- Explaining Data Classification
- Introducing Data Classification to Your Business
- Exploring the Data-Classification Process
- Using Data Classification to Predict the Future
- Ensemble Methods to Boost Prediction Accuracy
- Deep Learning
- Part 3: Developing a Roadmap
- Chapter 8: Convincing Your Management to Adopt Predictive Analytics
- Making the Business Case
- Gathering Support from Stakeholders
- Presenting Your Proposal
- Chapter 9: Preparing Data
- Listing the Business Objectives
- Processing Your Data
- Working with Features
- Structuring Your Data
- Chapter 10: Building a Predictive Model
- Getting Started
- Developing and Testing the Model
- Going Live with the Model
- Chapter 11: Visualization of Analytical Results
- Visualization as a Predictive Tool
- Evaluating Your Visualization
- Visualizing Your Model’s Analytical Results
- Novel Visualization in Predictive Analytics
- Big Data Visualization Tools
- Part 4: Programming Predictive Analytics
- Chapter 12: Creating Basic Prediction Examples
- Installing the Software Packages
- Preparing the Data
- Making Predictions Using Classification Algorithms
- Chapter 13: Creating Basic Examples of Unsupervised Predictions
- Getting the Sample Dataset
- Using Clustering Algorithms to Make Predictions
- Chapter 14: Predictive Modeling with R
- Programming in R
- Making Predictions Using R
- Chapter 15: Avoiding Analysis Traps
- Data Challenges
- Analysis Challenges
- Part 5: Executing Big Data
- Chapter 16: Targeting Big Data
- Major Technological Trends in Predictive Analytics
- Applying Open-Source Tools to Big Data
- Chapter 17: Getting Ready for Enterprise Analytics
- Analytics as a Service
- Preparing for a Proof-of-Value of Predictive Analytics Prototype
- Part 6: The Part of Tens
- Chapter 18: Ten Reasons to Implement Predictive Analytics
- Identifying Business Goals
- Knowing Your Data
- Organizing Your Data
- Satisfying Your Customers
- Reducing Operational Costs
- Increasing Returns on Investments (ROI)
- Gaining Rapid Access to Information
- Making Informed Decisions
- Gaining Competitive Edge
- Improving the Business
- Chapter 19: Ten Steps to Build a Predictive Analytic Model
- Building a Predictive Analytics Team
- Setting the Business Objectives
- Preparing Your Data
- Sampling Your Data
- Avoiding “Garbage In, Garbage Out”
- Creating Quick Victories
- Fostering Change in Your Organization
- Building Deployable Models
- Evaluating Your Model
- Updating Your Model
- About the Authors
- Connect with Dummies
- End User License Agreement
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