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Structural identifiability of linear compartmental systems

机译:线性隔室系统的结构可识别性

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In biology and mathematics compartmental systems are frequently used. System identification of systems based on physical laws often involves parameter estimation. Before parameter estimation can take place, we have to examine whether the parameters are structurally identifiable. In this paper tests for the structural identifiability of linear compartmental systems are proposed. The method is based on the similarity transformation approach. New contributions in the theory are the conditions for structural identifiability of structured positive linear systems. In addition, structural identifiability from the Markov parameters is extended to structural identifiability from the input-output data, in which the initial condition is (partially) unknown and nonnegligible. Finally, conditions are presented for structural identifiability of a sampled continuous-time linear dynamic system.
机译:在生物学和数学中,经常使用隔离系统。基于物理定律的系统的系统识别通常涉及参数估计。在进行参数估计之前,我们必须检查参数在结构上是否可识别。在本文中,提出了对线性隔室系统的结构识别性的测试。该方法基于相似度转换方法。该理论的新贡献是结构化正线性系统的结构可识别性条件。另外,根据马尔可夫参数的结构可识别性扩展到根据输入-输出数据的结构可识别性,其中初始条件是(部分)未知且不可忽略的。最后,给出了用于采样连续时间线性动力系统的结构可识别性的条件。

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