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: http://lib.mexmat.ru/books/77391
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Электронная библиотека Попечительского совета механико-математического факультета Московского государственного университета
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Название: Identification of Continuous-time Models from Sampled Data
Авторы: Garnier H. (Editor), Liuping Wang (Editor)
Аннотация:
System identification is an established field in the area of system analysis and control. It aims to determine particular models for dynamical systems based on observed inputs and outputs. Although dynamical systems in the physical world are naturally described in the continuous-time domain, most system identification schemes have been based on discrete-time models without concern for the merits of natural continuous-time model descriptions. The continuous-time nature of physical laws, the persistent popularity of predominantly continuous-time proportional-integral-derivative control and the more direct nature of continuous-time fault diagnosis methods make continuous-time modeling of ongoing importance.