Binding Algorithm for Power Optimization Based on Network Flow Method

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We propose an efficient binding algorithm for power optimization in behavioral synthesis. In prior work, it has been shown that several binding problems for low-power can be formulated as multi-commodity flow problems (due to an iterative execution of data flow graph) and be solved optimally. However, since the multi-commodity flow problem is NP-hard, the application is limited to a class of small sized problems. To overcome the limitation, we address the problem of how we can effectively make use of the property of efficient flow computations in a network so that it is extensively applicable to practical designs while producing close-to-optimal results. To this end, we propose a two-step procedure, which (1) determines a feasible binding solution by partially utilizing the computation steps for finding a maximum flow of minimum cost in a network and then (2) refines it iteratively. Experiments with a set of benchmark examples show that the proposed algorithm saves the run time significantly while maintaining close-to-optimal bindings in most practical designs.
Publisher
World Scientific Publ Co Pte Ltd
Issue Date
2002-06
Article Type
Article
Citation

JOURNAL OF CIRCUITS SYSTEMS AND COMPUTERS, v.11, no.3, pp.259 - 273

ISSN
0218-1266
URI
http://hdl.handle.net/10203/80459
Appears in Collection
RIMS Journal Papers
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