Parameterized Sets of Dataflow Modes And Their Application to Implementation of Cognitive Radio Systems

被引:0
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作者
Shuoxin Lin
Lai-Huei Wang
Aida Vosoughi
Joseph R. Cavallaro
Markku Juntti
Jani Boutellier
Olli Silvén
Mikko Valkama
Shuvra S. Bhattacharyya
机构
[1] University of Maryland,Department of Electrical and Computer Engineering, Institute for Advanced Computer Studies
[2] Rice University,Department of Electrical and Computer Engineering
[3] University of Oulu,Department of Communications Engineering, Department of Computer Science and Engineering
[4] Tampere University of Technology,Department of Communications Engineering
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关键词
Cognitive radio; Dataflow graphs; Embedded signal processing; Heterogeneous multiprocessors; Model-based design;
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摘要
Cognitive radio networks present challenges at many levels of design, including configuration, control, and cross-layer optimization. To meet requirements of bandwidth, flexibility and reconfigurability, systematic methods to model and analyze cognitive radio designs on signal processing platforms are desired. To help address these challenges, we present in this paper a novel dataflow modeling technique, called parameterized set of modes (PSM). PSMs allow efficient representation, manipulation and application of related groups of processing configurations for functional design components in signal processing systems. PSMs lead to more concise formulations of actor behavior, and a unified modeling methodology for applying a variety of techniques for efficient implementation. We develop the formal foundations of PSM-based modeling, and demonstrate its utility through two case studies involving the mapping of reconfigurable wireless communication functionality into efficient implementations.
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页码:3 / 18
页数:15
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