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author:

Rosso, M.M. (Rosso, M.M..) [1] | Aloisio, A. (Aloisio, A..) [2] | Cirrincione, G. (Cirrincione, G..) [3] | Marano, G.C. (Marano, G.C..) [4]

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Scopus

Abstract:

The late opportunities prompted by artificial intelligence have motivated the current research about structural damage detection strategies based on damage-sensitive subspace-based indicators (DI). Precisely, three different methodologies (A), (B), and (C) are discussed for multiclass damage classification with a multi-layer perceptron (MLP) network. Specifically, the network's inputs combine vibration response statistics with subspace-based features. Method (A) relies on statistical features only, whereas method (B) also considers the most informative subspace-based DI, retrieved from an empirical sensitivity analysis. Finally, method (C) provides a new perspective by overcoming the arbitrary choice of parameters affecting the subspace-based DIs computation. These three methods are tested on a numerical benchmark problem, and the results emphasize the last approach as the most promising methodology. For the sake of further validation purposes, the three methods have been finally tested on an experimental steel I-beam setup, evidencing the effectiveness of informative subspace-based DIs. © 2023 Institution of Structural Engineers

Keyword:

Deep learning Multi layer perceptron Operational modal analysis Structural health monitoring Subspace-based damage indicators

Community:

  • [ 1 ] [Rosso M.M.]Politecnico di Torino, DISEG, Department of Structural, Geotechnical and Building Engineering, Corso Duca Degli Abruzzi, 24, Turin, 10128, Italy
  • [ 2 ] [Aloisio A.]Civil Environmental and Architectural Engineering Department, Università degli Studi dell'Aquila, via Giovanni Gronchi n.18, L'Aquila, 67100, Italy
  • [ 3 ] [Cirrincione G.]University of Picardie Jules Verne, Lab. LTI, Le Bailly, Amiens, Amiens, 80025, France
  • [ 4 ] [Marano G.C.]Politecnico di Torino, DISEG, Department of Structural, Geotechnical and Building Engineering, Corso Duca Degli Abruzzi, 24, Turin, 10128, Italy
  • [ 5 ] [Marano G.C.]Fuzhou University, College of Civil Engineering, Fuzhou, 350108, China

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Source :

Structures

ISSN: 2352-0124

Year: 2023

Volume: 56

3 . 9

JCR@2023

3 . 9 0 0

JCR@2023

ESI HC Threshold:35

JCR Journal Grade:1

CAS Journal Grade:2

Cited Count:

WoS CC Cited Count:

SCOPUS Cited Count:

ESI Highly Cited Papers on the List: 0 Unfold All

WanFang Cited Count:

Chinese Cited Count:

30 Days PV: 1

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