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Learning Path: Python: Predictive Analysis with Python

Manipulate, analyze, and visualize your data with powerful Python libraries - Pandas and scikit-learn
4.1
4.1/5
(107 reviews)
637 students
Created by

7.5

Classbaze Grade®

4.4

Freshness

8.2

Popularity

9.4

Material

Manipulate
Platform: Udemy
Video: 8h 22m
Language: English
Next start: On Demand

Best Python classes:

Classbaze Rating

Classbaze Grade®

7.5 / 10

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

Freshness

4.4 / 10
This course was last updated on 10/2017.

Course content can become outdated quite quickly.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

8.2 / 10
We analyzed factors such as the rating (4.1/5) and the ratio between the number of reviews and the number of students, which is a great signal of student commitment.

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

9.4 / 10
Video Score: 8.8 / 10
The course includes 8h 22m 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 Udemy.
Detail Score: 10.0 / 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: 9.5 / 10

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

This course contains:

0 article.
1 resources.
0 exercise.
0 test.

In this page

About the course

Predictive analytics is the process of analyzing historical data to estimate the future results. Pandas and scikit-learn are popular open source Python packages that provide fast, high performance data structures for performing efficient data manipulation and analysis. They have quickly emerged as a popular choice of tool for analysts to solve real-world analytical problems. So, if you’re familiar with the basics of the Python language and want to step into the world of data analysis, then you should surely go for this Learning Path.
Packt’s Video Learning Path is 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.
The highlights of this Learning Path are:
●        Explore and work with different kinds of data sets to analyze and visualize your data
●         Get to know how to use Pandas to make predictions using machine learning and scikit-learn
●       Take your Pandas to the next level by learning advanced techniques
To start off with your learning journey, you will begin with absolute basics such as installing and setting up of the Pandas library. You will then be introduced to fundamental data structures in Pandas and the different data types, indexing, and more. You will also learn to implement the basic functionalities of the Pandas library such as working with different kinds of data, indexing, and handling missing data. Next, you will learn to analyze and model your data, and organize the results of your analysis in the form of plots or other visualization means. Moving ahead, you will learn to perform predictive analysis on your data along with building machine learning models using scikit-learn and Pandas. Finally, you will walk through various machine learning algorithms.
By the end of this Learning Path, you will be confident to use Pandas and scikit-learn for different data science tasks and perform predictive analysis on your own.
Meet Your Expert:
We have the best works of the following esteemed authors to ensure that your learning journey is smooth:
Harish Garg is a data analyst, author, and software developer who is really passionate about data science and the Python programming language. He is a graduate from Udacity’s data analyst nanodegree program. He has 17 years of industry experience, which includes data analysis using Python, developing and testing enterprise and consumer software, managing projects and software teams, and creating training material and tutorials. Harish also worked for 11 years for Intel Security (previously McAfee, Inc.). He regularly contributes articles and tutorials on data analysis and Python. He is also active in the open data community and is a contributing member of the Data4Democracy open data initiative. He has written data analysis pieces for think tan takshashila.
Alvaro Fuentes is a data scientist with an M.S. in Quantitative Economics and a M.S. in Applied Mathematics with more than 10 years of experience in analytical roles. He worked in the Central Bank of Guatemala as an economic analyst, building models for economic and financial data. He founded Quant Company to provide consulting and training services in data science topics and has been a consultant for many projects in fields such as; business, education, psychology, and mass media. He also has taught many (online and in-site) courses to students from around the world in topics such as data science, mathematics, statistics, R programming, and Python. Predictive analytics is a topic in which he has both professional and teaching experience. Having solved practical problems in his consulting practice using the Python tools for predictive analytics and the topics of predictive analytics are part of a more general course on data science with Python that he teaches online.

What can you learn from this course?

✓ Learn to read different kinds of data into Pandas dataframes for data analysis
✓ Analyze and visualize different kinds of data using Pandas to gain real world insights
✓ Work with big data using Pandas
✓ Work with quantitative financial data and understand how to model time-series data
✓ Work with quantitative financial data and how to model time-series data
✓ Explore advanced techniques in Pandas

What you need to start the course?

• Practical knowledge on Python is assumed.

Who is this course is made for?

• This Learning Path is for budding data scientist looking to learn predictive analysis. Python developers who want to get into the field of data analysis can also take up this Learning Path. Programming knowledge on Python would be helpful to get the most out of this Learning Path.

Are there coupons or discounts for Learning Path: Python: Predictive Analysis with Python ? What is the current price?

The course costs $14.99. And currently there is a 82% discount on the original price of the course, which was $84.99. So you save $70 if you enroll the course now.
The average price is $20.1 of 1,582 Python courses. So this course is 25% cheaper than the average Python course on Udemy.

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

YES, Learning Path: Python: Predictive Analysis with Python has a 30-day money back guarantee. The 30-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: Predictive Analysis with Python course, but there is a $70 discount from the original price ($84.99). So the current price is just $14.99.

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

Packt Publishing has created 1,262 courses that got 66,758 reviews which are generally positive. Packt Publishing has taught 394,723 students and received a 3.9 average review out of 66,758 reviews. Depending on the information available, we think that Packt Publishing is an instructor that you can trust.
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7.5

Classbaze Grade®

4.4

Freshness

8.2

Popularity

9.4

Material

Platform: Udemy
Video: 8h 22m
Language: English
Next start: On Demand

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