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Julia for Data Science

You're reading from   Julia for Data Science high-performance computing simplified

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Product type Paperback
Published in Sep 2016
Publisher Packt
ISBN-13 9781785289699
Length 346 pages
Edition 1st Edition
Languages
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Author (1):
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Anshul Joshi Anshul Joshi
Author Profile Icon Anshul Joshi
Anshul Joshi
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Table of Contents (12) Chapters Close

Preface 1. The Groundwork – Julia's Environment 2. Data Munging FREE CHAPTER 3. Data Exploration 4. Deep Dive into Inferential Statistics 5. Making Sense of Data Using Visualization 6. Supervised Machine Learning 7. Unsupervised Machine Learning 8. Creating Ensemble Models 9. Time Series 10. Collaborative Filtering and Recommendation System 11. Introduction to Deep Learning

Type hierarchy in Distributions.jl


The functions provided in Distributions.jl follow a hierarchy. Let's go through it to understand the capabilities of the package.

Understanding Sampleable

Sampleable is an abstract type that includes samplers and distributions from which one can draw samples. It is defined as follows:

The kinds of samples that can be drawn are defined by the two parameter types:

  • VariateForm:

    • Univariate: Scalar number

    • Multivariate: Numeric vector

    • Matrixvariate: Numeric matrix

  • ValueSupport:

    • Discrete: Int

    • Continuous: Float64

We can extract the information about the sample that the Sampleable object generates. An array can contain multiple samples depending on the variate form. We can use various functions to get the information (let's assume sampobj is the sampleable object):

  • length(sampobj): As the name suggests, it gives the length of the sample, which is 1 when the object is Univariate

  • size(sampobj): This returns the shape of the sample

  • nsamples(sampobj, X): This returns the...

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