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Data-Driven Design of Fault Detection and Isolation Systems Subject to Hammerstein Nonlinearity

机译:数据驱动的故障检测和隔离系统的设计,受到Hammersein非线性的影响

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This paper is concerned with data-driven design of fault detection and isolation (FDI) systems subject to Hammerstein nonlinearity, a static nonlinearity in the front of inputs. Specifically, the design of residual generation is then formulated as to solve a convex optimization problem by combining ideas from the over-parameterization and least squares support vector machines (LS-SVMs), and thus provides residual signals directly from process data. To solve the multiply-outputs (MOs) problem, a modified approach is proposed by means of the so-called mixed block Hankel matrices. Sufficient conditions for the existence of a parity space are established and proved. A benchmark example is given to show the effectiveness of the proposed approach.
机译:本文涉及经篡改非线性的故障检测和隔离(FDI)系统的数据驱动设计,输入中的静态非线性。具体地,然后将剩余生成的设计配制为通过组合来自过参数化和最小二乘支持向量机(LS-SVM)的思路来解决凸优化问题,因此直接提供来自处理数据的残差信号。为了解决乘以输出(MOS)问题,通过所谓的混合块Hankel矩阵提出了一种修改的方法。建立并证明了存在奇偶校验空间的充分条件。提供基准示例来显示所提出的方法的有效性。

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