Aug

10

2020

Applied Machine Learning: Feature Engineering

supnatural 10 Aug 2020 17:45 LEARNING » e-learning - Tutorial

Applied Machine Learning: Feature Engineering
Applied Machine Learning: Feature Engineering
MP4 | Video: AVC, 1280x720 30 fps | Audio: AAC, 48 KHz, 2 Ch | Duration: 2h 26m
Skill Level: Intermediate | Genre: eLearning | Language: English + Subtitles | Size: 342 MB

The quality of the predictions coming out of your machine learning model is a direct reflection of the data you feed it during training. Feature engineering helps you extract every last bit of value out of data. This course provides the tools to take a data set, tease out the signal, and throw out the noise in order to optimize your models. The concepts generalize to nearly any kind of machine learning algorithm. Instructor Derek Jedamski provides a refresher on machine learning basics and a thorough introduction to feature engineering. He explores continuous and categorical features and shows how to clean, normalize, and alter them. Learn how to address missing values, remove outliers, transform data, create indicators, and convert features. In the final chapters, Derek explains how to prepare features for modeling and provides four variations for comparison, so you can evaluate the impact of cleaning, transforming, and creating features through the lens of model performance.

What you’ll learn
What is feature engineering?
Exploring the data
Plotting features
Cleaning existing features
Creating new features
Standardizing features
Comparing the impacts on model performance

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