Optimal mapping of inferior olive neuron simulations on the Single-Chip Cloud Computer

Conference Paper (2014)
Author(s)

Dimitrios Rodopoulos (National Technical University of Athens)

Giorgos Chatzikonstantis (National Technical University of Athens)

Andreas Pantelopoulos (National Technical University of Athens)

Dimitrios Soudris (National Technical University of Athens)

Chris I. De Zeeuw (Erasmus MC)

Christos Strydis (Erasmus MC)

DOI related publication
https://doi.org/10.1109/SAMOS.2014.6893235 Final published version
More Info
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Publication Year
2014
Language
English
Article number
6893235
Pages (from-to)
367-374
Publisher
IEEE
ISBN (electronic)
9781479937707
Event
Downloads counter
83

Abstract

Biologically accurate neuron simulations are increasingly important in research related to brain activity. They are computationally intensive and feature data and task parallelism. In this paper, we present a case study for the mapping of a biologically accurate inferior-olive (InfOli), neural cell simulator on an many-core research platform. The Single-Chip Cloud Computer (SCC) is an experimental processor created by Intel Labs. The target neurons provide a major input to the cerebellum and are involved in motor skills and space perception. We exploit task-and data-partitioning, scaling the simulation over more than 40,000 neurons. The voltage-and frequency-scaling capabilities of the chip are explored, achieving more than 20% energy savings with negligible performance degradation. Four platform configurations are evaluated and a mapping with balanced workload and constant voltage and frequency is formally derived as optimal.