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Apache Spark Machine Learning Blueprints

You're reading from   Apache Spark Machine Learning Blueprints Develop a range of cutting-edge machine learning projects with Apache Spark using this actionable guide

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Product type Paperback
Published in May 2016
Publisher Packt
ISBN-13 9781785880391
Length 252 pages
Edition 1st Edition
Languages
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Author (1):
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Alex Liu Alex Liu
Author Profile Icon Alex Liu
Alex Liu
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Table of Contents (13) Chapters Close

Preface 1. Spark for Machine Learning FREE CHAPTER 2. Data Preparation for Spark ML 3. A Holistic View on Spark 4. Fraud Detection on Spark 5. Risk Scoring on Spark 6. Churn Prediction on Spark 7. Recommendations on Spark 8. Learning Analytics on Spark 9. City Analytics on Spark 10. Learning Telco Data on Spark 11. Modeling Open Data on Spark Index

Methods for fraud detection

In the previous section, we described our business use case and also prepared our Spark computing platform as well as our datasets. In this section, we need to select our analytical methods or predictive models (equations) for this fraud detection project, which is to complete a task of mapping our business use case to machine learning methods.

For fraud detection, both supervised machine learning and unsupervised machine learning are commonly used. However, for this case, we will perform a supervised machine learning because we do have good data for our target variable of fraud and also because our practical goal is to reduce frauds while continuing business transactions.

To model and predict frauds, there are many suitable models, including logistic regression and the decision tree. Selecting one among them can sometimes become extremely difficult as it depends on the data to be used. One solution is to first run all the models and then select the best ones using...

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