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Ultrasonic fluid quantity measurement in dynamic vehicular applications: a support vector machine approach

Accurate fluid level measurement in dynamic environments can be assessed using a Support Vector Machine (SVM) approach. SVM is a supervised learning model that analyzes and recognizes patterns. It is a signal classification technique which has far greater accuracy than conventional signal averaging...

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Detalles Bibliográficos
Autores principales: Terzic, Jenny, Terzic, Edin, Nagarajah, Romesh, Alamgir, Muhammad
Lenguaje:eng
Publicado: Springer 2013
Materias:
Acceso en línea:https://dx.doi.org/10.1007/978-3-319-00633-8
http://cds.cern.ch/record/1559218
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author Terzic, Jenny
Terzic, Edin
Nagarajah, Romesh
Alamgir, Muhammad
author_facet Terzic, Jenny
Terzic, Edin
Nagarajah, Romesh
Alamgir, Muhammad
author_sort Terzic, Jenny
collection CERN
description Accurate fluid level measurement in dynamic environments can be assessed using a Support Vector Machine (SVM) approach. SVM is a supervised learning model that analyzes and recognizes patterns. It is a signal classification technique which has far greater accuracy than conventional signal averaging methods. Ultrasonic Fluid Quantity Measurement in Dynamic Vehicular Applications: A Support Vector Machine Approach describes the research and development of a fluid level measurement system for dynamic environments. The measurement system is based on a single ultrasonic sensor. A Support Vector Machines (SVM) based signal characterization and processing system has been developed to compensate for the effects of slosh and temperature variation in fluid level measurement systems used in dynamic environments including automotive applications. It has been demonstrated that a simple ν-SVM model with Radial Basis Function (RBF) Kernel with the inclusion of a Moving Median filter could be used to achieve the high levels of accuracy required for fluid level measurement in dynamic environments. Aimed toward graduate and postgraduate students, researchers, and engineers studying applications of artificial intelligence, readers will learn about a measurement system that is based on a single ultrasonic sensor which can achieve the high levels of accuracy required for fluid level measurement in dynamic environments.
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institution Organización Europea para la Investigación Nuclear
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spelling cern-15592182021-04-21T22:36:01Zdoi:10.1007/978-3-319-00633-8http://cds.cern.ch/record/1559218engTerzic, JennyTerzic, EdinNagarajah, RomeshAlamgir, MuhammadUltrasonic fluid quantity measurement in dynamic vehicular applications: a support vector machine approachEngineeringAccurate fluid level measurement in dynamic environments can be assessed using a Support Vector Machine (SVM) approach. SVM is a supervised learning model that analyzes and recognizes patterns. It is a signal classification technique which has far greater accuracy than conventional signal averaging methods. Ultrasonic Fluid Quantity Measurement in Dynamic Vehicular Applications: A Support Vector Machine Approach describes the research and development of a fluid level measurement system for dynamic environments. The measurement system is based on a single ultrasonic sensor. A Support Vector Machines (SVM) based signal characterization and processing system has been developed to compensate for the effects of slosh and temperature variation in fluid level measurement systems used in dynamic environments including automotive applications. It has been demonstrated that a simple ν-SVM model with Radial Basis Function (RBF) Kernel with the inclusion of a Moving Median filter could be used to achieve the high levels of accuracy required for fluid level measurement in dynamic environments. Aimed toward graduate and postgraduate students, researchers, and engineers studying applications of artificial intelligence, readers will learn about a measurement system that is based on a single ultrasonic sensor which can achieve the high levels of accuracy required for fluid level measurement in dynamic environments.Springeroai:cds.cern.ch:15592182013
spellingShingle Engineering
Terzic, Jenny
Terzic, Edin
Nagarajah, Romesh
Alamgir, Muhammad
Ultrasonic fluid quantity measurement in dynamic vehicular applications: a support vector machine approach
title Ultrasonic fluid quantity measurement in dynamic vehicular applications: a support vector machine approach
title_full Ultrasonic fluid quantity measurement in dynamic vehicular applications: a support vector machine approach
title_fullStr Ultrasonic fluid quantity measurement in dynamic vehicular applications: a support vector machine approach
title_full_unstemmed Ultrasonic fluid quantity measurement in dynamic vehicular applications: a support vector machine approach
title_short Ultrasonic fluid quantity measurement in dynamic vehicular applications: a support vector machine approach
title_sort ultrasonic fluid quantity measurement in dynamic vehicular applications: a support vector machine approach
topic Engineering
url https://dx.doi.org/10.1007/978-3-319-00633-8
http://cds.cern.ch/record/1559218
work_keys_str_mv AT terzicjenny ultrasonicfluidquantitymeasurementindynamicvehicularapplicationsasupportvectormachineapproach
AT terzicedin ultrasonicfluidquantitymeasurementindynamicvehicularapplicationsasupportvectormachineapproach
AT nagarajahromesh ultrasonicfluidquantitymeasurementindynamicvehicularapplicationsasupportvectormachineapproach
AT alamgirmuhammad ultrasonicfluidquantitymeasurementindynamicvehicularapplicationsasupportvectormachineapproach