具有大量端口的线性网络的分散模型降阶

Boyuan Yan, Lingfei Zhou, S. Tan, Jie Chen, B. McGaughy
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引用次数: 11

摘要

模型降阶是一种有效的降低系统复杂性的技术,同时可以很好地近似输入-输出行为。然而,随着端口数量的增加,还原效率降低,这是一个长期存在的问题。退化的原因是现有的方法是基于一个集中的框架,其中每个输入-输出对被隐式地假设为相等的相互作用,并且矩阵值传递函数必须被假设为完全填充。本文提出了一种分散模型降阶方案,该方案将多输入多输出(MIMO)系统解耦为多个子系统,每个子系统对应一个输出和多个主导输入。解耦过程基于相对增益阵列(RGA),它测量每个输入输出对的相互作用程度。我们在许多互连电路上的实验结果表明,大多数输入-输出相互作用通常是微不足道的,这可能导致即使对于具有大量端口的系统也会产生极其紧凑的模型。由于每个解耦的子系统都可以独立地进行约简,因此该约简方案非常适合并行计算。
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DeMOR: Decentralized model order reduction of linear networks with massive ports
Model order reduction is an efficient technique to reduce the system complexity while producing a good approximation of the input-output behavior. However, the efficiency of reduction degrades as the number of ports increases, which remains a long-standing problem. The reason for the degradation is that existing approaches are based on a centralized framework, where each input-output pair is implicitly assumed to be equally interacted and the matrix-valued transfer function has to be assumed to be fully populated. In this paper, a decentralized model order reduction scheme is proposed, where a multi-input multi-output (MIMO) system is decoupled into a number of subsystems and each subsystem corresponds to one output and several dominant inputs. The decoupling process is based on the relative gain array (RGA), which measures the degree of interaction of each input-output pair. Our experimental results on a number of interconnect circuits show that most of the input- output interactions are usually insignificant, which can lead to extremely compact models even for systems with massive ports. The reduction scheme is very amenable for parallel computing as each decoupled subsystem can be reduced independently.
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