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What is Self-Organizing Maps

Pattern Recognition Applications in Engineering
Classification technique based on unsupervised-learning artificial neural networks allowing to group data into clusters.
Published in Chapter:
Strain Field Pattern Recognition for Structural Health Monitoring Applications
Julián Sierra-Pérez (Universidad Pontificia Bolivariana, Colombia) and Joham Alvarez-Montoya (Universidad Pontificia Bolivariana, Colombia)
Copyright: © 2020 |Pages: 40
DOI: 10.4018/978-1-7998-1839-7.ch001
Abstract
Strain field pattern recognition, also known as strain mapping, is a structural health monitoring approach based on strain measurements gathered through a network of sensors (i.e., strain gauges and fiber optic sensors such as FGBs or distributed sensing), data-driven modeling for feature extraction (i.e., PCA, nonlinear PCA, ANNs, etc.), and damage indices and thresholds for decision making (i.e., Q index, T2 scores, and so on). The aim is to study the correlations among strain readouts by means of machine learning techniques rooted in the artificial intelligence field in order to infer some change in the global behavior associated with a damage occurrence. Several case studies of real-world engineering structures both made of metallic and composite materials are presented including a wind turbine blade, a lattice spacecraft structure, a UAV wing section, a UAV aircraft under real flight operation, a concrete structure, and a soil profile prototype.
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More Results
Artificial Intelligence in Computer-Aided Diagnosis
Category of algorithms based on artificial neural networks that searches, by means of self-organization, to create a map of characteristics that represents the involved samples in a determined problem.
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Using Self Organizing Maps for Banking Oversight: The Case of Spanish Savings Banks
A kind of artificial neural network which attempts to mimic brain functions to provide learning and pattern recognition techniques. SOM have the ability to extract patterns from large datasets without explicitly understanding the underlying relationships. They transform nonlinear relations among high dimensional data into simple geometric connections among their image points on a low-dimensional display.
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GTM User Modeling for aIGA Weight Tuning in TTS Synthesis
Self-organizing maps (SOMs) are a data visualization technique which reduce the dimensions of data through the use of self-organizing neural networks
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A Novel Artificial Intelligence Technique for Analysis of Real-Time Electro-Cardiogram Signal for the Prediction of Early Cardiac Ailment Onset
It is a type of artificial neural network (ANN) trained using unsupervised learning for dimensionality reduction by discretized representation of the input space of the training samples called as map.
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