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Machine Learning with Spark

You're reading from   Machine Learning with Spark Develop intelligent, distributed machine learning systems

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Product type Paperback
Published in Apr 2017
Publisher Packt
ISBN-13 9781785889936
Length 532 pages
Edition 2nd Edition
Languages
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Authors (2):
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Manpreet Singh Ghotra Manpreet Singh Ghotra
Author Profile Icon Manpreet Singh Ghotra
Manpreet Singh Ghotra
Rajdeep Dua Rajdeep Dua
Author Profile Icon Rajdeep Dua
Rajdeep Dua
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Toc

Table of Contents (13) Chapters Close

Preface 1. Getting Up and Running with Spark FREE CHAPTER 2. Math for Machine Learning 3. Designing a Machine Learning System 4. Obtaining, Processing, and Preparing Data with Spark 5. Building a Recommendation Engine with Spark 6. Building a Classification Model with Spark 7. Building a Regression Model with Spark 8. Building a Clustering Model with Spark 9. Dimensionality Reduction with Spark 10. Advanced Text Processing with Spark 11. Real-Time Machine Learning with Spark Streaming 12. Pipeline APIs for Spark ML

Plotting

In this segment, we will see how to use Breeze to create a simple line plot from the Breeze DenseVector.

Breeze uses most of the functionality of Scala's plotting facilities, although the API is different. In the following example, we create two vectors x1 and y with some values, and plot a line and save it to a PNG file:

package linalg.plot 
import breeze.linalg._
import breeze.plot._

object BreezePlotSampleOne {
def main(args: Array[String]): Unit = {

val f = Figure()
val p = f.subplot(0)
val x = DenseVector(0.0,0.1,0.2,0.3,0.4,0.5,0.6,0.7,0.8)
val y = DenseVector(1.1, 2.1, 0.5, 1.0,3.0, 1.1, 0.0, 0.5,2.5)
p += plot(x, y)
p.xlabel = "x axis"
p.ylabel = "y axis"
f.saveas("lines-graph.png")
}
}

The preceding code generates the following Line Plot:

Breeze also supports histogram. This is drawn for various sample sizes 100,000, and...

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