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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
Testimonials (2)
The subject matter and the pace were perfect.
Tim - Ottawa Research and Development Center, Science Technology Branch, Agriculture and Agri-Food Canada
Course - Programming with Big Data in R
Michael the trainer is very knowledgeable and skillful about the subject of Big Data and R. He is very flexible and quickly customize the training meeting clients' need. He is also very capable to solve technical and subject matter problems on the go. Fantastic and professional training!.