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Machine Learning Automation with TPOT

Machine Learning Automation with TPOT

By : Radečić
4.6 (7)
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Machine Learning Automation with TPOT

Machine Learning Automation with TPOT

4.6 (7)
By: Radečić

Overview of this book

The automation of machine learning tasks allows developers more time to focus on the usability and reactivity of the software powered by machine learning models. TPOT is a Python automated machine learning tool used for optimizing machine learning pipelines using genetic programming. Automating machine learning with TPOT enables individuals and companies to develop production-ready machine learning models cheaper and faster than with traditional methods. With this practical guide to AutoML, developers working with Python on machine learning tasks will be able to put their knowledge to work and become productive quickly. You'll adopt a hands-on approach to learning the implementation of AutoML and associated methodologies. Complete with step-by-step explanations of essential concepts, practical examples, and self-assessment questions, this book will show you how to build automated classification and regression models and compare their performance to custom-built models. As you advance, you'll also develop state-of-the-art models using only a couple of lines of code and see how those models outperform all of your previous models on the same datasets. By the end of this book, you'll have gained the confidence to implement AutoML techniques in your organization on a production level.
Table of Contents (14 chapters)
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1
Section 1: Introducing Machine Learning and the Idea of Automation
3
Section 2: TPOT – Practical Classification and Regression
8
Section 3: Advanced Examples and Neural Networks in TPOT

Training machine learning models with TPOT and Dask

Optimizing machine learning pipelines is, before everything, a time-consuming process. We can shorten it potentially significantly by running things in parallel. Dask and TPOT work great when combined, and this section will teach you how to train TPOT models on a Dask cluster. Don't let the word "cluster" scare you, as your laptop or PC will be enough.

You'll have to install one more library to continue, and it is called dask-ml. As its name suggests, it's used to perform machine learning with Dask. Execute the following from the Terminal to install it:

pipenv install dask-ml

Once that's done, you can open up Jupyter Lab or your favorite Python code editor and start coding. Let's get started:

  1. Let's start with library imports. We'll also make a dataset decision here. This time, we won't spend any time on data cleaning, preparation, or examination. The goal is to have...
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