Description
Course Overview
With this Python NumPy: Scientific Computing with Python course, you'll begin with an introduction to NumPy and take a tour of NumPy's features. Then you'll move on to topics such as matrices, deviations, Eigen values, and covariance. You'll finish with a real-world project utilizing the included resource files. Get ready to learn this fundamental scientific library for Python!
Length: 1 hr
Example Video
Course Outline
This Python NumPy: Scientific Computing with Python course provides a thorough understanding of NumPy’s features and when to use them.
NumPy is mainly used in matrix computing. We’ll do a number of examples specific to matrix computing, which will allow you to see the various scenarios in which NumPy is helpful. There are a few computational computing libraries available for Python. It’s important to know when to choose one over the other. Through rigorous exercises, you’ll experience where NumPy is powerful and develop an understanding of the scenarios in which NumPy is most useful.
Course goals:
- Express fully why NumPy should be used
- Ability to install NumPy
- Understanding of how to use NumPy
- Length of Subscription: 12 Months Online On-Demand Access
- Running Time: 1 hour
- Platform: Windows & MAC OS
- Level: Beginner to Intermediate
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