Description

Book Synopsis
Unique insights to implement big data analytics and reap big returns to your bottom line Focusing on the business and financial value of big data analytics, respected technology journalist Frank J. Ohlhorst shares his insights on the newly emerging field of big data analytics in Big Data Analytics.

Table of Contents

Preface ix

Acknowledgments xiii

Chapter 1 What Is Big Data? 1

The Arrival of Analytics 2

Where Is the Value? 3

More to Big Data Than Meets the Eye 5

Dealing with the Nuances of Big Data 6

An Open Source Brings Forth Tools 7

Caution: Obstacles Ahead 8

Chapter 2 Why Big Data Matters 11

Big Data Reaches Deep 12

Obstacles Remain 13

Data Continue to Evolve 15

Data and Data Analysis Are Getting More Complex 17

The Future Is Now 18

Chapter 3 Big Data and the Business Case 21

Realizing Value 22

The Case for Big Data 22

The Rise of Big Data Options 25

Beyond Hadoop 27

With Choice Come Decisions 28

Chapter 4 Building the Big Data Team 29

The Data Scientist 29

The Team Challenge 30

Different Teams, Different Goals 31

Don’t Forget the Data 32

Challenges Remain 32

Teams versus Culture 34

Gauging Success 35

Chapter 5 Big Data Sources .37

Hunting for Data 38

Setting the Goal 39

Big Data Sources Growing 40

Diving Deeper into Big Data Sources 42

A Wealth of Public Information 43

Getting Started with Big Data Acquisition 44

Ongoing Growth, No End in Sight 46

Chapter 6 The Nuts and Bolts of Big Data 47

The Storage Dilemma 47

Building a Platform 52

Bringing Structure to Unstructured Data 57

Processing Power 59

Choosing among In-house, Outsourced, or Hybrid Approaches 61

Chapter 7 Security, Compliance, Auditing, and Protection 63

Pragmatic Steps to Securing Big Data 64

Classifying Data 65

Protecting Big Data Analytics 66

Big Data and Compliance 67

The Intellectual Property Challenge 72

Chapter 8 The Evolution of Big Data 77

Big Data: The Modern Era 80

Today, Tomorrow, and the Next Day 84

Changing Algorithms 90

Chapter 9 Best Practices for Big Data Analytics 93

Start Small with Big Data 94

Thinking Big 95

Avoiding Worst Practices 96

Baby Steps 98

The Value of Anomalies 101

Expediency versus Accuracy 103

In-Memory Processing 104

Chapter 10 Bringing It All Together 111

The Path to Big Data 112

The Realities of Thinking Big Data 113

Hands-on Big Data 115

The Big Data Pipeline in Depth 116

Big Data Visualization 121

Big Data Privacy 122

Appendix Supporting Data 125

“The MapR Distribution for Apache Hadoop” 126

“High Availability: No Single Points of Failure” 142

About the Author 151

Index 153

Big Data Analytics

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    A Hardback by Frank J. Ohlhorst


      View other formats and editions of Big Data Analytics by Frank J. Ohlhorst

      Publisher: John Wiley & Sons Inc
      Publication Date: 08/01/2013
      ISBN13: 9781118147597, 978-1118147597
      ISBN10: 1118147596

      Description

      Book Synopsis
      Unique insights to implement big data analytics and reap big returns to your bottom line Focusing on the business and financial value of big data analytics, respected technology journalist Frank J. Ohlhorst shares his insights on the newly emerging field of big data analytics in Big Data Analytics.

      Table of Contents

      Preface ix

      Acknowledgments xiii

      Chapter 1 What Is Big Data? 1

      The Arrival of Analytics 2

      Where Is the Value? 3

      More to Big Data Than Meets the Eye 5

      Dealing with the Nuances of Big Data 6

      An Open Source Brings Forth Tools 7

      Caution: Obstacles Ahead 8

      Chapter 2 Why Big Data Matters 11

      Big Data Reaches Deep 12

      Obstacles Remain 13

      Data Continue to Evolve 15

      Data and Data Analysis Are Getting More Complex 17

      The Future Is Now 18

      Chapter 3 Big Data and the Business Case 21

      Realizing Value 22

      The Case for Big Data 22

      The Rise of Big Data Options 25

      Beyond Hadoop 27

      With Choice Come Decisions 28

      Chapter 4 Building the Big Data Team 29

      The Data Scientist 29

      The Team Challenge 30

      Different Teams, Different Goals 31

      Don’t Forget the Data 32

      Challenges Remain 32

      Teams versus Culture 34

      Gauging Success 35

      Chapter 5 Big Data Sources .37

      Hunting for Data 38

      Setting the Goal 39

      Big Data Sources Growing 40

      Diving Deeper into Big Data Sources 42

      A Wealth of Public Information 43

      Getting Started with Big Data Acquisition 44

      Ongoing Growth, No End in Sight 46

      Chapter 6 The Nuts and Bolts of Big Data 47

      The Storage Dilemma 47

      Building a Platform 52

      Bringing Structure to Unstructured Data 57

      Processing Power 59

      Choosing among In-house, Outsourced, or Hybrid Approaches 61

      Chapter 7 Security, Compliance, Auditing, and Protection 63

      Pragmatic Steps to Securing Big Data 64

      Classifying Data 65

      Protecting Big Data Analytics 66

      Big Data and Compliance 67

      The Intellectual Property Challenge 72

      Chapter 8 The Evolution of Big Data 77

      Big Data: The Modern Era 80

      Today, Tomorrow, and the Next Day 84

      Changing Algorithms 90

      Chapter 9 Best Practices for Big Data Analytics 93

      Start Small with Big Data 94

      Thinking Big 95

      Avoiding Worst Practices 96

      Baby Steps 98

      The Value of Anomalies 101

      Expediency versus Accuracy 103

      In-Memory Processing 104

      Chapter 10 Bringing It All Together 111

      The Path to Big Data 112

      The Realities of Thinking Big Data 113

      Hands-on Big Data 115

      The Big Data Pipeline in Depth 116

      Big Data Visualization 121

      Big Data Privacy 122

      Appendix Supporting Data 125

      “The MapR Distribution for Apache Hadoop” 126

      “High Availability: No Single Points of Failure” 142

      About the Author 151

      Index 153

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