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IBM

Data Visualization with Python

One of the most important skills of successful data scientists and data analysts is the ability to tell a compelling story by visualizing data and findings in an approachable and stimulating way. In this course you will learn many ways to effectively visualize both small and large-scale data. You will be able to take data that at first glance has little meaning and present that data in a form that conveys insights. This course will teach you to work with many Data Visualization tools and techniques. You will learn to create various types of basic and advanced graphs and charts like: Waffle Charts, Area Plots, Histograms, Bar Charts, Pie Charts, Scatter Plots, Word Clouds, Choropleth Maps, and many more! You will also create interactive dashboards that allow even those without any Data Science experience to better understand data, and make more effective and informed decisions. You will learn hands-on by completing numerous labs and a final project to practice and apply the many aspects and techniques of Data Visualization using Jupyter Notebooks and a Cloud-based IDE. You will use several data visualization libraries in Python, including Matplotlib, Seaborn, Folium, Plotly & Dash.

Status: Data Analysis
Status: Jupyter
IntermediateCourse20 hours

Featured reviews

HK

5.0Reviewed Apr 30, 2020

Very challenging, yet that's what make it's rewarding. Even though the course only takes 3 weeks, its difficulty is on par with the longer previous course. I enjoyed every problems on it!

AM

5.0Reviewed Aug 13, 2020

Great course, one of the best course to get hands-on learning for Data Visualization with Python. Particularly the lap exercise, it will make you think on every line of code you write. Excellent!!!

MN

4.0Reviewed May 15, 2019

More in class projects similar to final assignment where we can challenge our knowledge as we are all remote and it takes time to communicate through the available coursera forums. Thank you.

MM

5.0Reviewed Oct 3, 2020

The way of design this course is so interesting , quizes , lab session is so good ,Final assignment is great ,to increase skill on data visualization with python is best course on coursera

SL

4.0Reviewed Nov 6, 2019

The final assignment requires self-research (not included in the course material) to fully complete the required items. The course shall cover all that the assignment requires, at least touch a bit.

JG

5.0Reviewed Apr 16, 2020

This is a very helpful course. It introduces a variety of data visualization tools. The interesting practices in the lab sessions inspired me to explore different solutions for a problem.

AA

5.0Reviewed Mar 31, 2020

This course was really interesting and it was great learning experience.A big thanks to a instructor.I got to know new things like folium library (most interesting library of python according to me)

MH

4.0Reviewed Jun 7, 2020

The labs were good but the issue was the extremely rushed up videos. A lot of concepts, especially the artist layer was not covered will in the videos, which made me give this course 4 stars.

AZ

5.0Reviewed Aug 23, 2023

The course was excellent. The Labs explained concepts clearly, and hands-on exercises solidified my understanding. Real-world applications were highlighted, enhancing practical skills.

TR

4.0Reviewed Dec 24, 2020

The Course Was Good. It would have been better if some lab sections were covered in labs. As we all know understanding a code then reading might help the students grasp better faster and deeper.

RS

5.0Reviewed Jan 7, 2020

This course gives very well knowledge about different types of visualization techniques and helps to start with visualization. Coursera provided an amazing course with an amazing instructor.

SS

5.0Reviewed Nov 20, 2019

It's a really great course with proper hands on time and the assignments are great too. i got enough opportunity to explore the things which were taught in the course. Really Satisfied. Thanks :)

All reviews

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Karim Constantine Nassar
2.0
Reviewed May 29, 2019
Thomas Moran
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Reviewed Jun 4, 2019
Jake Lavrenko
1.0
Reviewed Jan 24, 2019
Nils Witznick
1.0
Reviewed Mar 26, 2019
Dan Saattrup Nielsen
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Reviewed Apr 23, 2019
steven wang
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Reviewed Apr 3, 2019
Ismael Sanchez
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Karel Hoppe
4.0
Reviewed Sep 2, 2019
Andrew Timmons
2.0
Reviewed Jul 8, 2020
Baidi Wang
1.0
Reviewed Jun 10, 2019
Roger Smith, PhD, MBA
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Reviewed Dec 29, 2018
Yuanyuan Ji
1.0
Reviewed Jan 23, 2019
Thomas Schott
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Reviewed Apr 13, 2020
Joshua Wulf
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Reviewed May 20, 2019
Clinton
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Guillermo Martínez
2.0
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Sisir Kovuri
3.0
Reviewed Apr 24, 2019
Lena Lu
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Reviewed Jun 7, 2020