Machine Learning in Python: Iris Classification -- Part 2

Published: 15 March 2019
on channel: LucidProgramming
13,320
185

General Description:
In this video, we begin by showcasing how to build an iris classification
model, that is, a machine learning model that will allow us to classify
species of iris flowers. This application will introduce many rudimentary
features and concepts of machine learning and is a good use case for these
types of models.

Use case: Botanist wants to determine the species of an iris flower based on
characteristics of that flower. For instance attributes including petal
length, width, etc. are the "features" that determine the classification of a
given iris flower.

Part 2 Description:
We continue to analyze the iris dataset, and more specifically, we begin to
construct plots and graphs of the dataset to allow us to understand what
the data is telling us.

This video is part of a series on Machine Learning in Python. The link to the playlist may be accessed here:
http://bit.ly/lp_mlearn

Python Code:
Part 1: https://github.com/vprusso/youtube_tu...
Part 2: https://github.com/vprusso/youtube_tu...
Part 3: https://github.com/vprusso/youtube_tu...

If I've helped you, feel free to buy me a beer :)
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Do you like the development environment I'm using in this video? It's a customized version of vim that's enhanced for Python development. If you want to see how I set up my vim, I have a series on this here:
http://bit.ly/lp_vim

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