首页> 外文期刊>IFAC PapersOnLine >Comparison of Tensor Decomposition Methods for Simulation of Multilinear Time-Invariant Systems with the MTI Toolbox * * This work was partly supported by the project OBSERVE of the Federal Ministry for Economic Affairs and Energy Germany (Grant-No.: 03ET1225B).
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Comparison of Tensor Decomposition Methods for Simulation of Multilinear Time-Invariant Systems with the MTI Toolbox * * This work was partly supported by the project OBSERVE of the Federal Ministry for Economic Affairs and Energy Germany (Grant-No.: 03ET1225B).

机译:使用MTI工具箱模拟多线性时不变系统的Tensor分解方法的比较 * * 联邦经济和能源部德国观察计划(授权号:03ET1225B)。

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Several tools are available for linear state space models. But linear models may fail for applications where nonlinear effects are essential. Multilinear time-invariant (MTI) systems extend this class of systems and can be represented in a tensor framework. Tensor decomposition techniques reduce the storage effort for MTI systems and allow an efficient computation, e.g. during simulation. The paper proposes the application of four different decomposition techniques, canonic polyadic, Tucker, Tensor Train and Hierarchical Tucker decomposition to MTI systems. The methods are compared according to the application to a complex HVAC system example. The introduced MTI Toolbox implements methods for representation, simulation or linearization of MTI systems with MATLAB.
机译:有几种工具可用于线性状态空间模型。但是,对于需要非线性影响的应用,线性模型可能会失败。多线性时不变(MTI)系统扩展了此类系统,并且可以在张量框架中表示。张量分解技术减少了MTI系统的存储工作,并允许进行有效的计算,例如在模拟过程中。本文提出了四种不同的分解技术:经典多态,塔克,张量训练和分层塔克分解在MTI系统中的应用。根据应用将这些方法与一个复杂的HVAC系统示例进行比较。引入的MTI工具箱使用MATLAB实现了表示,仿真或线性化MTI系统的方法。

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