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Quantitative Dynamic Interdependency Measure and Significance Analysis for Cross-Layer Design under Uncertainty

机译:不确定性下跨层设计的定量动态相互依赖测度及意义分析

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Interdependency among system parameters may significantly affect the performance metric of interest for cross-layer design and optimization. However, it is very difficult to derive the interdependency among system parameters in a dynamic complex networking system due to uncertainty of data observation and system modeling. Furthermore, current cross-layer design normally includes many system parameters, making the multidimensional cross-layer optimization problem very difficult to solve. In this research, we will propose a new approach for dynamic interdependency measure and significance analysis in cross-layer design and optimization. The major contributions made in this paper are: 1) interdependency among system parameters under uncertainties is measured by using on-additive measure theory; 2) quantitative significance analysis is proposed for dynamically identifying what system parameters have the most significant effect on the performance metrics of interest for system objective function; and 3) we develop a new fast multidimensional optimization method for cross-layer design based on dynamic interdependency measure and significance analysis. We show the effectiveness and feasibility of the proposed approach for cross-layer design and optimization in IEEE 802.11 WLANs.
机译:系统参数之间的相互依赖性可能会严重影响跨层设计和优化所需的性能指标。但是,由于数据观察和系统建模的不确定性,在动态复杂联网系统中很难推导系统参数之间的相互依赖性。此外,当前的跨层设计通常包括许多系统参数,这使得很难解决多维跨层优化问题。在这项研究中,我们将为跨层设计和优化中的动态相互依赖性度量和重要性分析提出一种新方法。本文的主要贡献是:1)利用加性测度理论对不确定性下系统参数之间的相互依赖性进行了测度。 2)提出定量重要性分析,用于动态识别哪些系统参数对系统目标功能感兴趣的性能指标影响最大; 3)基于动态相互依赖测度和显着性分析,为跨层设计开发了一种新的快速多维优化方法。我们展示了所提出的方法在IEEE 802.11 WLAN中进行跨层设计和优化的有效性和可行性。

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    《》|2007年|900-904|共5页
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    Ci; Song; Guo; Hai-Feng;

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