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Course Outline
Introduction to Big Data Programming with R (bpdR)
- Configuring your environment to utilize pbdR
- Understanding the scope and available tools within pbdR
- Identifying common packages that complement pbdR in Big Data workflows
Message Passing Interface (MPI)
- Implementing pbdR MPI 5
- Executing parallel processing tasks
- Managing point-to-point communication
- Transmitting Matrices
- Calculating Matrix Sums
- Facilitating collective communication
- Aggregating Matrix Sums using Reduce
- Utilizing Scatter and Gather operations
- Exploring other MPI communication methods
Distributed Matrices
- Constructing a distributed diagonal matrix
- Performing SVD on distributed matrices
- Building distributed matrices through parallel processing
Statistical Applications
- Applying Monte Carlo Integration
- Ingesting Datasets
- Reading data across all processes
- Broadcasting information from a single process
- Processing partitioned data
- Conducting Distributed Regression
- Implementing 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!.