Identification Methods for Structural Health Monitoring / edited by Eleni Chatzi, Costas Papadimitriou
Contributor(s): Chatzi, Eleni, editor literario
| Papadimitriou, Costas., editor literario
| SpringerLink (Online service)
Material type:
E-bookSeries: (CISM International Centre for Mechanical Sciences, Courses and Lectures, 0254-1971; 567).Publisher: Cham : Springer International Publishing, 2016Description: 1 recurso en línea (IX, 170 páginas) : 53 ilustraciones, 39 ilustraciones en color.ISBN: 9783319320779.Subject: Edificios -- Rehabilitación
| Item type | Current library | Collection | Call number | Copy number | Status | Date due | Barcode | Item holds | |
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LIBRO-E NO PRÉSTAMO
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Madrid Digital Acceso Electrónico (UEM) | Ciencias e Ingeniería | TA656.6 I346 2016 EB (Browse shelf(Opens below)) | .i11594342 | Acceso electrónico | eBOOK .i11594342 |
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| TA656.6 C365 2016 EB Wireless Sensor Networks for Structural Health Monitoring | TA656.6 ES Journal of Civil Structural Health Monitoring | TA656.6 ES Structural Health Monitoring | TA656.6 I346 2016 EB Identification Methods for Structural Health Monitoring | TA656.6 R434 2016 EB Recent Developments in Building Diagnosis Techniques | TA656.6 S778 2017 EB Structural health monitoring & damage detection. proceedings of the 35th IMAC, A Conference and Exposition on Structural Dynamics 2017 Volume 7 : | TA656.6 S778 2017 EB Structural health monitoring : an advanced signal processing perspective |
Introduction -- Parametric and non parametric identification methods: an overview -- Parametric methods for the treatment of nonlinear dynamics -- Bayesian parameter estimation -- Bayesian operational modal analysis -- Bayesian uncertainty quantification and propagation (UQ+P): state-of-the-art tools for linear and nonlinear structural dynamics models -- Efficient data fusion and practical considerations for structural identification -- Implementation of identification methodologies on large scale structures.
The papers in this volume provide an introduction to well known and established system identification methods for structural health monitoring and to more advanced, state-of-the-art tools, able to tackle the challenges associated with actual implementation. Starting with an overview on fundamental methods, introductory concepts are provided on the general framework of time and frequency domain, parametric and non-parametric methods, input-output or output only techniques. Cutting edge tools are introduced including, nonlinear system identification methods; Bayesian tools; and advanced modal identification techniques (such as the Kalman and particle filters, the fast Bayesian FFT method). Advanced computational tools for uncertainty quantification are discussed to provide a link between monitoring and structural integrity assessment. In addition, full scale applications and field deployments that illustrate the workings and effectiveness of the introduced monitoring schemes are demonstrated.
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