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Dataflow Computation for the J-Machine

Author(s)
Spertus, Ellen
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Abstract
The dataflow model of computation exposes and exploits parallelism in programs without requiring programmer annotation; however, instruction- level dataflow is too fine-grained to be efficient on general-purpose processors. A popular solution is to develop a "hybrid'' model of computation where regions of dataflow graphs are combined into sequential blocks of code. I have implemented such a system to allow the J-Machine to run Id programs, leaving exposed a high amount of parallelism --- such as among loop iterations. I describe this system and provide an analysis of its strengths and weaknesses and those of the J-Machine, along with ideas for improvement.
Date issued
1990-05-01
URI
http://hdl.handle.net/1721.1/7030
Other identifiers
AITR-1233
Series/Report no.
AITR-1233

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  • AI Technical Reports (1964 - 2004)

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