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Learning Path: Python: Effective Data Analysis Using Python

To ensure that you get the best of the learning experience, in this Learning Path we combine the works of some of the leading authors in the business.
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8.8

Classbaze Grade®

9.5

Freshness

N/A

Popularity

7.6

Material

Platform: Simpliv Learning
Video: 11h1m
Language: English
Next start: On Demand

Best Python classes:

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Classbaze Grade®

8.8 / 10

CourseMarks Score® helps students to find the best classes. We aggregate 18 factors, including freshness, student feedback and content diversity.

Freshness

9.5 / 10
This course was last updated on 11/2020.

Course content can become outdated quite quickly. After analysing 71,530 courses, we found that the highest rated courses are updated every year. If a course has not been updated for more than 2 years, you should carefully evaluate the course before enrolling.

Popularity

We analyzed factors such as the rating and the ratio between the number of reviews and the number of students, which is a great signal of student commitment. If a course does not yet have a rating, we exclude Feedback Score from the overall CourseMarks Score.

New courses are hard to evaluate because there are no or just a few student ratings, but Student Feedback Score helps you find great courses even with fewer reviews.

Material

7.6 / 10
Video Score: 7.6 / 10
The course includes 11h1m video content. Courses with more videos usually have a higher average rating. We have found that the sweet spot is 16 hours of video, which is long enough to teach a topic comprehensively, but not overwhelming. Courses over 16 hours of video gets the maximum score.
The average video length is 7 hours 31 minutes of 1,582 Python courses on Simpliv Learning.
Detail Score: 9.7 / 10

The top online course contains a detailed description of the course, what you will learn and also a detailed description about the instructor.

Extra Content Score: 1.0 / 10

Tests, exercises, articles and other resources help students to better understand and deepen their understanding of the topic.

This course contains:

0 article.
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In this page

About the course

Use Python’s tools and libraries effectively for extracting data from the web and creating attractive and informative visualizations.

Over the years, almost every organization has understood the importance of analyzing data.

In fact, it would not be an overstatement to say that “No organization will be able to survive today’s cut-throat competition if it does not analyze data.”

Data analysis as we know it is the process of taking the source data, refining it to get useful information, and then making useful predictions from it.

In this Learning Path, we will learn how to analyze data using the powerful toolset provided by Python.

Packt’s Video Learning Paths are a series of individual video products put together in a logical and stepwise manner such that each video builds on the skills learned in the video before it.

Python features numerous numerical and mathematical toolkits such as Numpy, Scipy, Scikit learn, and SciKit, all used for data analysis and machine learning. With the aid of all of these, Python has become the language of choice of data scientists for data analysis, visualization, and machine learning.

We will have a general look at data analysis and then discuss the web scraping tools and techniques in detail. We will show a rich collection of recipes that will come in handy when you are scraping a website using Python, addressing your usual and unusual problems while scraping websites by diving deep into the capabilities of Python’s web scraping tools such as Selenium, BeautifulSoup, and urllib2.

We will then discuss the visualization best practices. Effective visualization helps you get better insights from your data, and help you make better and more informed business decisions.

After completing this Learning Path, you will be well-equipped to extract data even from dynamic and complex websites by using Python web scraping tools, and get a better understanding of the data visualization concepts. You will also learn how to apply these concepts and overcome any challenge while implementing them.

To ensure that you get the best of the learning experience, in this Learning Path we combine the works of some of the leading authors in the business.

Benjamin Hoff

Ben spent 3 years working as a software engineer and team leader doing graphics processing, desktop application development, and scientific facility simulation using a mixture of C++ and Python. This sparked a passion for software development and developmental programming and led him to explore state-of-the art projects in natural language processing, facial detection/recognition, and machine learning.
Charles Clayton

Charles Clayton is a sole proprietor of crclayton technologies co, and an independent web developer. He is an experienced developer and Python specialist in Python web scraping solutions and tools such as Selenium, BeautifulSoup, and urllib2. He also has worked as a Reliability Engineer with West frazweer.
Dimitry Foures

Dimitry is a data scientist with a background in applied mathematics and theoretical physics. After completing his physics undergraduate studies in ENS Lyon (France), he studied fluid mechanics at École Polytechnique in Paris where he obtained first class in Master’s degree. He holds a PhD in applied mathematics from the University of Cambridge. He currently works as a data scientist for a smart energy startup in Cambridge, in close collaboration with the university.
Giuseppe Vettigli

Giuseppe Vettigli is a data scientist who has worked in the research industry and academia for many years. His work is focused on the development of machine learning models and applications to use information from structured and unstructured data. He also writes about scientific computing and data visualization in Python in his blogs.
Igor Milovanović

Igor Milovanović is an experienced developer, with strong background in Linux system knowledge and software engineering education. He is skilled in building scalable data-driven distributed software rich systems.

What can you learn from this course?

Scrape the Twitter stream to collect real-time data
✓ Predictive methods that can forecast and predict future trends based on current data
✓ Use the Selenium module and scrape with Selenium
✓ Discover how to perform parsing with BeautifulSoup
✓ Make 3D visualizations mainly using mplot3d

What you need to start the course?

• Anyone opting for this course should be well-versed with the basics of Python

Who is this course is made for?

• This course is ideal for those who are new to data analysis and for those who are already into data analytics and want to enhance their data extraction and visualization skills.

Are there coupons or discounts for Learning Path: Python: Effective Data Analysis Using Python ? What is the current price?

The course costs $39.99. And currently there is a 80% discount on the original price of the course, which was $199.99. So you save $160 if you enroll the course now.
The average price is $20.1 of 1,582 Python courses. So this course is 99% more expensive than the average Python course on Simpliv Learning.

Will I be refunded if I'm not satisfied with the Learning Path: Python: Effective Data Analysis Using Python course?

YES, Learning Path: Python: Effective Data Analysis Using Python has a 20-day money back guarantee. The 20-day refund policy is designed to allow students to study without risk.

Are there any financial aid for this course?

Currently we could not find a scholarship for the Learning Path: Python: Effective Data Analysis Using Python course, but there is a $160 discount from the original price ($199.99). So the current price is just $39.99.

Who will teach this course? Can I trust Packt Publishing?

Packt Publishing has created 2059 courses that got 58,562 reviews which are generally positive. Packt Publishing has taught 402,947 students and received a 4.0 average review out of 58,562 reviews. Depending on the information available, we think that Packt Publishing is an instructor that you can trust.
Browse all courses by on Classbaze.

8.8

Classbaze Grade®

9.5

Freshness

N/A

Popularity

7.6

Material

Platform: Simpliv Learning
Video: 11h1m
Language: English
Next start: On Demand

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