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Python Data Mining Quick Start Guide

You're reading from   Python Data Mining Quick Start Guide A beginner's guide to extracting valuable insights from your data

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Product type Paperback
Published in Apr 2019
Publisher Packt
ISBN-13 9781789800265
Length 188 pages
Edition 1st Edition
Languages
Concepts
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Author (1):
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Nathan Greeneltch Nathan Greeneltch
Author Profile Icon Nathan Greeneltch
Nathan Greeneltch
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Table of Contents (9) Chapters Close

Preface 1. Data Mining and Getting Started with Python Tools FREE CHAPTER 2. Basic Terminology and Our End-to-End Example 3. Collecting, Exploring, and Visualizing Data 4. Cleaning and Readying Data for Analysis 5. Grouping and Clustering Data 6. Prediction with Regression and Classification 7. Advanced Topics - Building a Data Processing Pipeline and Deploying It 8. Other Books You May Enjoy

Introducing prediction concepts

Predicting the output value (that is, regression) or label (that is, classification) on future unseen data is a common final step in data mining projects.

Before reading the rest of this chapter, please be sure to digest the prerequisite concepts introduced in the Basic data terminology and Basic summary statistics sections in Chapter 2, Basic Terminology and Our End-to-End Example. In particular, the content on data types, variable types, and prediction metrics will be assumed as having been pre-learned throughout the entirety of the chapter.

The main strategy is to collect a training set and build a mapping function (that is, fit a model) from the input variables (X) to the output variable (y). Let's collect our assumptions before moving on:

  • (Assumption) There is a relationship between X and y, namely that X are independent variables and...
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