Options
Regularization Methods Applied to Noisy Response from Beams under Static Loading
Author(s)
Date Issued
2020-06
Date Available
2020-12-03T13:19:43Z
Abstract
The estimation of flexural stiffness from static loading test data is the basis of many methods assessing the condition of structural elements. These methods are usually developed under the assumption of having sufficiently accurate data available. Hence, their performance deteriorates as the differences between the measured and true values of the response, often denoted as noise, increase. The proposed methodology is specifically designed to mitigate errors derived from noisy static data when estimating flexural stiffness. It relies on the linearization of the equations relating displacements to stiffness through the unit-force theorem, combined with regularization tools such as L-Curve and generalized cross-validation. The methodology is tested using theoretical simulations of the static response of a simply supported beam subjected to a 4-point flexural test for several levels of noise, two types of responses (deflections and rotations) and different levels of discretization. Recommendations for selecting the optimal regularization tool and parameter are provided. The use of rotations as inputs for predicting stiffness is shown to outperform deflections. Finally, the methodology is extended to a statically indeterminate beam.
Other Sponsorship
Spanish Government
Type of Material
Journal Article
Publisher
American Society of Civil Engineers (ASCE)
Journal
Journal of Engineering Mechanics
Volume
146
Issue
6
Start Page
04020038
Web versions
Language
English
Status of Item
Peer reviewed
ISSN
0733-9399
This item is made available under a Creative Commons License
File(s)
Loading...
Name
Casero et al_2020_Regularization methods applied to noisy response from beams under static loading.pdf
Size
2.69 MB
Format
Adobe PDF
Checksum (MD5)
152c8895278ae110387bcf2d5c3c94cf
Owning collection