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Data Visualization with Python

Create an impact with meaningful data insights using interactive and engaging visuals
Buch | Softcover
368 Seiten
2019
Packt Publishing Limited (Verlag)
978-1-78995-646-7 (ISBN)
33,65 inkl. MwSt
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With so much data being continuously generated, developers with a knowledge of data analytics and data visualization are always in demand. With Data Visualization with Python, you'll learn how to use Python with NumPy, Pandas, Matplotlib, and Seaborn to create impactful data visualizations with a real world, public data.
Understand, explore, and effectively present data using the powerful data visualization techniques of Python programming.


Key Features


Study key visualization tools and techniques with real-world data

Explore industry-standard plotting libraries, including Matplotlib and Seaborn

Breathe life into your visuals with exciting widgets and animations using Bokeh


Book Description
Data Visualization with Python reviews the spectrum of data visualization and its importance. Designed for beginners, it'll help you learn about statistics by computing mean, median, and variance for certain numbers.



In the first few chapters, you'll be able to take a quick tour of key NumPy and Pandas techniques, which include indexing, slicing, iterating, filtering, and grouping. The book keeps pace with your learning needs, introducing you to various visualization libraries. As you work through chapters on Matplotlib and Seaborn, you'll discover how to create visualizations in an easier way. After a lesson on these concepts, you can then brush up on advanced visualization techniques like geoplots and interactive plots.



You'll learn how to make sense of geospatial data, create interactive visualizations that can be integrated into any webpage, and take any dataset to build beautiful visualizations. What's more? You'll study how to plot geospatial data on a map using Choropleth plot and understand the basics of Bokeh, extending plots by adding widgets and animating the display of information.



By the end of this book, you'll be able to put your learning into practice with an engaging activity, where you can work with a new dataset to create an insightful capstone visualization.


What you will learn


Understand and use various plot types with Python

Explore and work with different plotting libraries

Learn to create effective visualizations

Improve your Python data wrangling skills

Hone your skill set by using tools like Matplotlib, Seaborn, and Bokeh

Reinforce your knowledge of various data formats and representations


Who this book is for
Data Visualization with Python is designed for developers and scientists, who want to get into data science or want to use data visualizations to enrich their personal and professional projects. You do not need any prior experience in data analytics and visualization, however, it'll help you to have some knowledge of Python and familiarity with high school level mathematics. Even though this is a beginner level course on data visualization, experienced developers will be able to improve their Python skills by working with real-world data.

Mario Dobler is a Ph.D. student with focus in deep learning at the University of Stuttgart. He previously interned at the Bosch Center for Artificial Intelligence in Silicon Valley in the field of deep learning, using state-of-the-art algorithms to develop cutting-edge products. In his master thesis, he dedicated himself to apply deep learning to medical data to drive medical applications. Tim Großmann is a CS student with an interest in diverse topics, ranging from AI to IoT. He previously worked at the Bosch Center for Artificial Intelligence in Silicon Valley, in the field of big data engineering. He's highly involved in different open source projects and actively speaks at meetups and conferences about his projects and experiences.

Table of Contents


The Importance of Data Visualization and Data Exploration
All You Need to Know about Plots
A Deep Dive into Matplotlib
Simplifying Visualizations Using Seaborn
Plotting Geospatial Data
Making Things Interactive with Bokeh
Combining What We Have Learned

Erscheinungsdatum
Verlagsort Birmingham
Sprache englisch
Maße 75 x 93 mm
Themenwelt Mathematik / Informatik Informatik Datenbanken
Mathematik / Informatik Informatik Programmiersprachen / -werkzeuge
ISBN-10 1-78995-646-3 / 1789956463
ISBN-13 978-1-78995-646-7 / 9781789956467
Zustand Neuware
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