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Published on: June 4, 2019
A full-parallel implementation of Self-Organizing Maps on hardware
Leonardo A Dias1, Augusto M P Damasceno2, Elena Gaura3
1Centre for Cyber Security and Privacy, School of Computer Science - University of Birmingham, Birmingham, United Kingdom.
Abstract:
Self-Organizing Maps (SOMs) are extensively used for data clustering and dimensionality reduction. However, if applications are to fully benefit from SOM based techniques, high-speed processing is demanding, given that data tends to be both highly dimensional and yet "big". Hence, a fully parallel architecture for the SOM is introduced to optimize the system's data processing time. Unlike most literature approaches, the architecture proposed here does not contain sequential steps - a common limiting factor for processing speed. The architecture was validated on FPGA and evaluated concerning hardware throughput and the use of resources. Comparisons to the state of the art show a speedup of 8.91× over a partially serial implementation, using less than 15% of hardware resources available. Thus, the method proposed here points to a hardware architecture that will not be obsolete quickly.
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