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Machine Learning with Swift

You're reading from   Machine Learning with Swift Artificial Intelligence for iOS

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Product type Paperback
Published in Feb 2018
Publisher Packt
ISBN-13 9781787121515
Length 378 pages
Edition 1st Edition
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Authors (3):
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Jojo Moolayil Jojo Moolayil
Author Profile Icon Jojo Moolayil
Jojo Moolayil
Oleksandr Baiev Oleksandr Baiev
Author Profile Icon Oleksandr Baiev
Oleksandr Baiev
Alexander Sosnovshchenko Alexander Sosnovshchenko
Author Profile Icon Alexander Sosnovshchenko
Alexander Sosnovshchenko
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Table of Contents (14) Chapters Close

Preface 1. Getting Started with Machine Learning FREE CHAPTER 2. Classification – Decision Tree Learning 3. K-Nearest Neighbors Classifier 4. K-Means Clustering 5. Association Rule Learning 6. Linear Regression and Gradient Descent 7. Linear Classifier and Logistic Regression 8. Neural Networks 9. Convolutional Neural Networks 10. Natural Language Processing 11. Machine Learning Libraries 12. Optimizing Neural Networks for Mobile Devices 13. Best Practices

Using association measures to assess rules

Look at these two rules:

  • {Oatmeal, corn flakes → Milk}
  • {Dog food, paperclips → Washing powder}

Intuitively, the second rule looks more unlikely than the first one, doesn't it? How can we tell that for sure, though? In this case, we need some quantitative measures that will show us how likely each rule is. What we are looking for here are association measures, as we call them in machine learning and data mining. Rule mining algorithms revolve around this notion in a similar manner to how distance-based algorithms revolve around distance metrics. In this chapter, we're going to use four association measures: support, confidence, lift, and conviction (see Table 5.1).

Note that these measures tell us nothing about how useful or interesting the rules are, but only quantify their probabilistic characteristics...

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