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Course Outline

Introduction to Big Data Programming with R (pbdR)

  • Configuring the environment to utilize pbdR
  • Overview of the scope and tools provided by pbdR
  • Commonly used packages that complement pbdR in Big Data contexts

Message Passing Interface (MPI)

  • Working with pbdR MPI 5
  • Implementing parallel processing
  • Managing point-to-point communication
  • Transmitting Matrices
  • Performing Matrix Summation
  • Utilizing collective communication
  • Summing Matrices using Reduce
  • Employing Scatter / Gather techniques
  • Exploring other MPI communication methods

Distributed Matrices

  • Generating a distributed diagonal matrix
  • Computing SVD of a distributed matrix
  • Constructing distributed matrices in a parallel manner

Statistical Applications

  • Monte Carlo Integration
  • Dataset ingestion
  • Reading data across all processes
  • Broadcasting data from a single process
  • Handling partitioned data
  • Executing Distributed Regression
  • Performing Distributed Bootstrap
 21 Hours

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