Title :
Simulation of three-dimensional supersonic flow on IBM Cell processor based emulated digital Cellular Neural Networks
Author :
Furedi, L. ; Nagy, Z.
Author_Institution :
Dept. Inf. Technol., Pazmany Peter Catholic Univ., Budapest, Hungary
Abstract :
The IBM Cell Broadband Engine (Cell BE or informally Cell) heterogeneous multi-core architecture provides high computing performance however its efficient programming is a challenging task. The IBM Cell architecture can be very efficiently used to emulate Cellular Neural Network (CNN) dynamics. Using a similar approach during the simulation of two-dimensional supersonic flows significant speedup was achieved compared to conventional multi-core architectures. To solve real life flow problems three-dimensional mesh is required for the simulation. In the paper the implementation possibilities of a three-dimensional supersonic flow simulator on Body Fitted Mesh geometry on the Cell is described. Significantly more local memory is required to generate the three-dimensional neighborhood of the grid points compared to the two-dimensional case. In the paper different partitioning methods will be described and compared in terms of computing performance, local memory and bandwidth requirements.
Keywords :
IBM computers; cellular neural nets; computational fluid dynamics; flow simulation; mesh generation; neural chips; parallel architectures; supersonic flow; IBM cell architecture; IBM cell broadband engine; IBM cell processor; body fitted mesh geometry; cell BE; emulated digital cellular neural network; flow simulation; heterogeneous multicore architecture; high computing performance; three-dimensional mesh; three-dimensional supersonic flow; Application software; Bandwidth; Cellular networks; Cellular neural networks; Computational modeling; Computer architecture; Engines; Equations; High performance computing; Power engineering computing;
Conference_Titel :
Cellular Nanoscale Networks and Their Applications (CNNA), 2010 12th International Workshop on
Conference_Location :
Berkeley, CA
Print_ISBN :
978-1-4244-6679-5
DOI :
10.1109/CNNA.2010.5430315