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  2. System identification - Wikipedia

    en.wikipedia.org/wiki/System_identification

    One of the many possible applications of system identification is in control systems. For example, it is the basis for modern data-driven control systems, in which concepts of system identification are integrated into the controller design, and lay the foundations for formal controller optimality proofs.

  3. Nonlinear system identification - Wikipedia

    en.wikipedia.org/.../Nonlinear_system_identification

    System identification is a method of identifying or measuring the mathematical model of a system from measurements of the system inputs and outputs. The applications of system identification include any system where the inputs and outputs can be measured and include industrial processes, control systems, economic data, biology and the life sciences, medicine, social systems and many more.

  4. Data-driven control system - Wikipedia

    en.wikipedia.org/wiki/Data-driven_control_system

    The standard approach to control systems design is organized in two-steps: . Model identification aims at estimating a nominal model of the system ^ = (; ^), where is the unit-delay operator (for discrete-time transfer functions representation) and ^ is the vector of parameters of identified on a set of data.

  5. Sparse identification of non-linear dynamics - Wikipedia

    en.wikipedia.org/wiki/Sparse_identification_of...

    Sparse identification of nonlinear dynamics (SINDy) is a data-driven algorithm for obtaining dynamical systems from data. [1] Given a series of snapshots of a dynamical system and its corresponding time derivatives, SINDy performs a sparsity-promoting regression (such as LASSO) on a library of nonlinear candidate functions of the snapshots against the derivatives to find the governing equations.

  6. Structural identifiability - Wikipedia

    en.wikipedia.org/wiki/Structural_identifiability

    In the area of system identification, a dynamical system is structurally identifiable if it is possible to infer its unknown parameters by measuring its output over time. . This problem arises in many branch of applied mathematics, since dynamical systems (such as the ones described by ordinary differential equations) are commonly utilized to model physical processes and these models contain ...

  7. Subspace identification method - Wikipedia

    en.wikipedia.org/wiki/Subspace_identification_method

    In the 1960s the work of Kronecker inspired a number of researchers in the area of Systems and Control, like Ho and Kalman, Silverman and Youla and Tissi, to store the Markov parameters of an LTI system into a finite dimensional Hankel matrix and derive from this matrix an (A,B,C) realization of the LTI system. The key observation was that when ...

  8. Intelligent control - Wikipedia

    en.wikipedia.org/wiki/Intelligent_control

    Recurrent networks have also been used for system identification. Given, a set of input-output data pairs, system identification aims to form a mapping among these data pairs. Such a network is supposed to capture the dynamics of a system. For the control part, deep reinforcement learning has shown its ability to control complex systems.

  9. Identity and access management - Wikipedia

    en.wikipedia.org/wiki/Identity_management

    Identity management (ID management) – or identity and access management (IAM) – is the organizational and technical processes for first registering and authorizing access rights in the configuration phase, and then in the operation phase for identifying, authenticating and controlling individuals or groups of people to have access to applications, systems or networks based on previously ...

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