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Data Analytics & Visualization All-in-One For Dummies
Jack A. Hyman (Author), Luca Massaron (Author), Paul McFedries (Author), John Paul Mueller (Author), Jonathan Reichental (Author), Joseph Schmuller (Author), Alan R. Simon (Author), Allen G. Taylor (Author)
9781394244096, Wiley
Paperback / softback, published 1 April 2024
832 pages
23.1 x 18.8 x 4.8 cm, 1.111 kg
Install data analytics into your brain with this comprehensive introduction Data Analytics & Visualization All-in-One For Dummies collects the essential information on mining, organizing, and communicating data, all in one place. Clocking in at around 850 pages, this tome of a reference delivers eight books in one, so you can build a solid foundation of knowledge in data wrangling. Data analytics professionals are highly sought after these days, and this book will put you on the path to becoming one. You’ll learn all about sources of data like data lakes, and you’ll discover how to extract data using tools like Microsoft Power BI, organize the data in Microsoft Excel, and visually present the data in a way that makes sense using a Tableau. You’ll even get an intro to the Python, R, and SQL coding needed to take your data skills to a new level. With this Dummies guide, you’ll be well on your way to becoming a priceless data jockey. New and novice data analysts will love this All-in-One reference on how to make sense of data. Get ready to watch as your career in data takes off.
Introduction 1 Book 1: Learning Data Analytics & Visualizations Foundations 7 Chapter 1: Exploring Definitions and Roles 9 Book 2: Using Power BI for Data Analytics & Visualization 107 Chapter 1: Power BI Foundations 109 Book 3: Using Tableau for Data Analytics & Visualization 265 Chapter 1: Tableau Foundations 267 Book 4: Extracting Information with SQL 443 Chapter 1: SQL Foundations 445 Book 5: Performing Statistical Data Analysis & Visualization with R Programming 605 Chapter 1: Using Open Source R for Data Science 607 Book 6: Applying Python Programming to Data Science 689 Chapter 1: Discovering the Match between Data Science and Python 691 Index 761
Chapter 2: Delving into Big Data 19
Chapter 3: Understanding Data Lakes 41
Chapter 4: Wrapping Your Head Around Data Science 51
Chapter 5: Telling Powerful Stories with Data Visualization 81
Chapter 2: The Quick Tour of Power BI 123
Chapter 3: Prepping Data for Visualization 141
Chapter 4: Tweaking Data for Primetime 167
Chapter 5: Designing and Deploying Data Models 183
Chapter 6: Tackling Visualization Basics in Power BI 203
Chapter 7: Digging into Complex Visualization and Table Data 227
Chapter 8: Sharing and Collaborating with Power BI 247
Chapter 2: Connecting Your Data 285
Chapter 3: Diving into the Tableau Prep Lifecycle 313
Chapter 4: Advanced Data Prep Approaches in Tableau 337
Chapter 5: Touring Tableau Desktop 351
Chapter 6: Storytelling Foundations in Tableau 371
Chapter 7: Visualizing Data in Tableau 391
Chapter 8: Collaborating and Publishing with Tableau Cloud 425
Chapter 2: Drilling Down to the SQL Nitty-Gritty 455
Chapter 3: Values, Variables, Functions, and Expressions 487
Chapter 4: SELECT Statements and Modifying Clauses 513
Chapter 5: Tuning Queries 539
Chapter 6: Complex Query Design 557
Chapter 7: Joining Data Together in SQL 591
Chapter 2: R: What It Does and How It Does It 623
Chapter 3: Getting Graphical 651
Chapter 4: Kicking It Up a Notch to ggplot2 671
Chapter 2: Using Python for Data Science and Visualization 703
Chapter 3: Getting a Crash Course in Matplotlib 721
Chapter 4: Visualizing the Data 739
Subject Areas: Mathematics [PB]
