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   the particle filter and extended kalman filter methods for the structural system identification considering various uncertainties  
   
نویسنده ebrahimi mehrdad ,karami mohammadi reza ,sharafi fatemeh
منبع numerical methods in civil engineering - 2020 - دوره : 4 - شماره : 3 - صفحه:42 -58
چکیده    Structural system identification using recursive methods has been a research direction of increasing interest in recent decades. the two prominent methods, including the extended kalman filter (ekf) and the particle filter (pf), also known as the sequential monte carlo (smc), are advantageous in this field. in this study, the system identification of a shake table test of a 4-story steel structure subjected to the base excitation has been implemented using these methods by considering the modeling and material model uncertainties. implementing the 2d and 3d modelings, using the ldquo;parallelogram rdquo; and ldquo;scissors rdquo; methods for the modeling of panel zones and that of the wall panels by two methods (using beamcolumn elements and equivalent diagonal strut elements), are the assumptions of this study. using the parallelogram method has resulted in fewer errors in the 2d modeling while implementing different methods for simulation of wall panels has had no specific achievements. as illustrated in the results, more significant uncertainties were expected in systems with highly nonlinear behavior, since the equivalent linearization was used to estimate the system states in the ekf method. however, this method is less timeconsuming and gives more accurate results in comparison with the pf method, in which a lrge number of samples are required for the system identification.
کلیدواژه system identification ,extended kalman filter ,particle filter ,FE model updating ,modeling uncertainty.
آدرس k.n. toosi university of technology, department of civil engineering, iran, k.n. toosi university of technology, department of civil engineering, iran, k.n. toosi university of technology, department of civil engineering, iran
 
     
   
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