DocumentCode
1680297
Title
A scalable configurable architecture for the massively parallel GCA model
Author
Jendrsczok, J. ; Ediger, P. ; Hoffmann, R.
Author_Institution
FB Inf., Tech. Univ. Darmstadt, Darmstadt
fYear
2008
Firstpage
1
Lastpage
8
Abstract
The global cellular automata model (GCA) is a massively parallel computation model which extends the classical cellular automata model (CA) with dynamic global neighbors. We present for that model a data parallel architecture which is scalable in the number of parallel pipelines and which uses application specific operators (adapted operators). The instruction set consists of control and RULE instructions. A RULE computes the next cell contents for each cell in the destination object. The machine consists of P pipelines. Each pipeline has an associated primary memory bank and has access to the global memory (real or emulated multiport memory). The diffusion of particles was used as an example in order to demonstrate the adaptive operators, the machine programming and its performance. Particles which point to each other within a defined neighborhood search space are interchanged. The pointers are modified in each generation by apseudo random function. The machine with up to 32 pipelines was synthesized for an Altera FPGA for that application.
Keywords
cellular automata; parallel architectures; RULE instructions; data parallel architecture; global cellular automata model; machine programming; massively parallel GCA model; parallel computation model; parallel pipelines; pseudo random function; scalable configurable architecture; Automata; Automatic control; Computational modeling; Computer architecture; Concurrent computing; Field programmable gate arrays; Hardware; Logic; Parallel architectures; Pipelines;
fLanguage
English
Publisher
ieee
Conference_Titel
Parallel and Distributed Processing, 2008. IPDPS 2008. IEEE International Symposium on
Conference_Location
Miami, FL
ISSN
1530-2075
Print_ISBN
978-1-4244-1693-6
Electronic_ISBN
1530-2075
Type
conf
DOI
10.1109/IPDPS.2008.4536125
Filename
4536125
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