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Adaptive Filtering Method for Dynamic BOTDA Sensing Based on a Closed-Circuit Configuration
by
Rossi, Leonardo
, Bolognini, Gabriele
in
Analysis
/ Brillouin optical time domain analysis
/ Brillouin Scattering
/ Control systems
/ distributed optical fiber sensors
/ dynamic temperature measurement
/ Evaluation
/ Kalman filters
/ Measurement techniques
/ Methods
/ Numerical analysis
/ optical fiber sensors
/ Simulation methods
/ strain and temperature measurement
2026
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Adaptive Filtering Method for Dynamic BOTDA Sensing Based on a Closed-Circuit Configuration
by
Rossi, Leonardo
, Bolognini, Gabriele
in
Analysis
/ Brillouin optical time domain analysis
/ Brillouin Scattering
/ Control systems
/ distributed optical fiber sensors
/ dynamic temperature measurement
/ Evaluation
/ Kalman filters
/ Measurement techniques
/ Methods
/ Numerical analysis
/ optical fiber sensors
/ Simulation methods
/ strain and temperature measurement
2026
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Do you wish to request the book?
Adaptive Filtering Method for Dynamic BOTDA Sensing Based on a Closed-Circuit Configuration
by
Rossi, Leonardo
, Bolognini, Gabriele
in
Analysis
/ Brillouin optical time domain analysis
/ Brillouin Scattering
/ Control systems
/ distributed optical fiber sensors
/ dynamic temperature measurement
/ Evaluation
/ Kalman filters
/ Measurement techniques
/ Methods
/ Numerical analysis
/ optical fiber sensors
/ Simulation methods
/ strain and temperature measurement
2026
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Adaptive Filtering Method for Dynamic BOTDA Sensing Based on a Closed-Circuit Configuration
Journal Article
Adaptive Filtering Method for Dynamic BOTDA Sensing Based on a Closed-Circuit Configuration
2026
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Overview
A dynamic filtering system that can choose in real time between two different noise filters depending on the dynamics of the measured environment is presented. Unlike other adaptive filters approaches, this system does not require prior knowledge of the environment beyond noise characteristics. We implemented this system into a Brillouin optical time-domain analysis (BOTDA) sensing scheme using a closed-circuit control system for dynamic tracking of the Brillouin Frequency Shift (BFS) along the sensing fiber using a Proportional-Integral-Derivative (PID) controller. Through experiments and numerical simulations, we compare this method to the filtering capabilities of P and PI controllers chosen as optimal in a previous work for closed-circuit BOTDA (CC-BOTDA). Results show that the adaptive noise filter provides a dynamic response comparable to the other controllers, while increasing noise suppression by a factor between 30% and beyond 100%, showing how an adaptive system can improve suppression with only knowledge of the measurement noise.
Publisher
MDPI AG,Multidisciplinary Digital Publishing Institute (MDPI)
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