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Advanced Analytics with R and Tableau

You're reading from   Advanced Analytics with R and Tableau Advanced analytics using data classification, unsupervised learning and data visualization

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Product type Paperback
Published in Aug 2017
Publisher Packt
ISBN-13 9781786460110
Length 178 pages
Edition 1st Edition
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Authors (3):
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Roberto Rösler Roberto Rösler
Author Profile Icon Roberto Rösler
Roberto Rösler
Ruben Oliva Ramos Ruben Oliva Ramos
Author Profile Icon Ruben Oliva Ramos
Ruben Oliva Ramos
Jen Stirrup Jen Stirrup
Author Profile Icon Jen Stirrup
Jen Stirrup
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Table of Contents (10) Chapters Close

Preface 1. Advanced Analytics with R and Tableau FREE CHAPTER 2. The Power of R 3. A Methodology for Advanced Analytics Using Tableau and R 4. Prediction with R and Tableau Using Regression 5. Classifying Data with Tableau 6. Advanced Analytics Using Clustering 7. Advanced Analytics with Unsupervised Learning 8. Interpreting Your Results for Your Audience Index

Evaluating a neural network model


Another fundamental phase of the CRISP-DM methodology is the evaluation phase, which focuses on the quality of the model, and its ability to meet the overall business objectives. If the model can't meet the objectives, then it's important to understand if there is a business reason why the model doesn't meet the objectives, in addition to technical possibilities that might account for failure. It's also a good time to pause and consider the testing results that you have generated thus far. This is a crucial stage because it can reveal challenges that didn't appear before. That said, it is an interesting phase because you can find new and interesting things for future research directions. Therefore, it's important not to skip it!

Fortunately, we can visualize the results using Tableau so that the neural networks are easier to understand. There are several performance measures for neural networks, and we will explore these in more detail along with a discussion...

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