Udemy Principal Component Analysis (PCA) and Factor Analysis Udemy
Price: USD 20

    Course details

    The course explains one of the important aspect of machine learning - Principal component analysis and factor analysis in a very easy to understand manner. It explains theory as well as demonstrates how to use SAS and R for the purpose. 

    The course provides entire course content available to download in PDF format, data set and code files. The detail course content is as follows.

    • Intuitive Understanding of PCA 2D Case
      1. what is the variance in the data in different dimensions?
      2. what is principal component?
    • Formal definition of PCs
      1. Understand the formal definition of PCA
    • Properties of Principal Components
      1. Understanding principal component analysis (PCA) definition using a 3D image
    • Properties of Principal Components
      1. Summarize PCA concepts
      2. Understand why first eigen value is bigger than second, second is bigger than third and so on
    • Data Treatment for conducting PCA
      1. How to treat ordinal variables?
      2. How to treat numeric variables?
    • Conduct PCA using SAS: Understand
      1. Correlation Matrix
      2. Eigen value table
      3. Scree plot
      4. How many pricipal components one should keep?
      5. How is principal components getting derived?
    • Conduct PCA using R
    • Introduction to Factor Analysis
      1. Introduction to factor analysis
      2. Factor analysis vs PCA side by side
    • Factor Analysis Using R
    • Factor Analysis Using SAS
    • Theory for using PCA for Variable Selection
    • Demo of using PCA for Variable Selection
    Updated on 14 February, 2018
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