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Hadoop Real-World Solutions Cookbook- Second Edition

You're reading from   Hadoop Real-World Solutions Cookbook- Second Edition Over 90 hands-on recipes to help you learn and master the intricacies of Apache Hadoop 2.X, YARN, Hive, Pig, Oozie, Flume, Sqoop, Apache Spark, and Mahout

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Product type Paperback
Published in Mar 2016
Publisher
ISBN-13 9781784395506
Length 290 pages
Edition 2nd Edition
Tools
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Author (1):
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Tanmay Deshpande Tanmay Deshpande
Author Profile Icon Tanmay Deshpande
Tanmay Deshpande
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Table of Contents (12) Chapters Close

Preface 1. Getting Started with Hadoop 2.X FREE CHAPTER 2. Exploring HDFS 3. Mastering Map Reduce Programs 4. Data Analysis Using Hive, Pig, and Hbase 5. Advanced Data Analysis Using Hive 6. Data Import/Export Using Sqoop and Flume 7. Automation of Hadoop Tasks Using Oozie 8. Machine Learning and Predictive Analytics Using Mahout and R 9. Integration with Apache Spark 10. Hadoop Use Cases Index

Map Reduce program to find the top X


In this recipe, we are going to learn how to write a map reduce program to find the top X records from the given set of values.

Getting ready

To perform this recipe, you should have a running Hadoop cluster as well as an eclipse that's similar to an IDE.

How to do it...

A lot of the time, we might need to find the top X values from the given set of values. A simple example could be to find the top 10 trending topics from a Twitter dataset. In this case, we will need to use two map reduce jobs. First of all, find out all the words that start with # and the number of times each hashtag has occurred in a given set of data. The first map reduce program is quite simple, which is pretty similar to the word count program. But for the second program, we need to use some logic. In this recipe, we'll explore how we can write a map reduce program to find the top X values from the given set. Now, though, lets try to understand the logic behind this.

As shown in the preceding...

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