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Main Authors: Wang, Jiaying, Ohland, Jonas Benjamin, Chang, Yen-Yu, Pandit, Vedhas, Bock, Stefan, Okukura, Andrew-Hiroaki, Eisenbarth, Udo, Irman, Arie, Bussmann, Michael, Schramm, Ulrich, Kelling, Jeffrey
Format: Preprint
Published: 2025
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Online Access:https://arxiv.org/abs/2510.26540
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author Wang, Jiaying
Ohland, Jonas Benjamin
Chang, Yen-Yu
Pandit, Vedhas
Bock, Stefan
Okukura, Andrew-Hiroaki
Eisenbarth, Udo
Irman, Arie
Bussmann, Michael
Schramm, Ulrich
Kelling, Jeffrey
author_facet Wang, Jiaying
Ohland, Jonas Benjamin
Chang, Yen-Yu
Pandit, Vedhas
Bock, Stefan
Okukura, Andrew-Hiroaki
Eisenbarth, Udo
Irman, Arie
Bussmann, Michael
Schramm, Ulrich
Kelling, Jeffrey
contents High-energy laser facilities such as PHELIX at GSI require excellent beam pointing stability for reproducibility and relative independence for future experiments. Beam pointing stability has been traditionally achieved using simple proportional-integral-derivative (PID) control which removes the problem of slow drift, but is limited because of the time delay in knowing the diagnosis and the inertia in the mechanical system associated with mirrors. In this work, we introduce a predictive control strategy where the forecasting of beam pointing errors is performed by a patch-based multilayer perceptron (Patch-MLP) designed to capture local temporal patterns for more robust short-term jitter prediction. The subsequent conversion of these predicted errors into correction signals is handled by a PID controller. The neural network has been trained on diagnostic time-series data to predict beam pointing error. Using the feed-forward controller compensates for system delays. Simulations with a correction mirror placed upstream of the PHELIX pre-amplifier bridge confirm that the predictive control scheme reduces residual jitter compared to conventional PID control. Over a 10-hour dataset the controller maintained stable performance without drift, while standard pointing metrics showed consistent improvements of the order of 10 to 20 percent. The predictive controller operates without drift, and therefore may improve reproducibility and operational efficiency in high energy, low repetition rate laser experiment conditions.
format Preprint
id arxiv_https___arxiv_org_abs_2510_26540
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Patch-MLP-Based Predictive Control: Simulation of Upstream Pointing Stabilization for PHELIX Laser System
Wang, Jiaying
Ohland, Jonas Benjamin
Chang, Yen-Yu
Pandit, Vedhas
Bock, Stefan
Okukura, Andrew-Hiroaki
Eisenbarth, Udo
Irman, Arie
Bussmann, Michael
Schramm, Ulrich
Kelling, Jeffrey
Computational Physics
High-energy laser facilities such as PHELIX at GSI require excellent beam pointing stability for reproducibility and relative independence for future experiments. Beam pointing stability has been traditionally achieved using simple proportional-integral-derivative (PID) control which removes the problem of slow drift, but is limited because of the time delay in knowing the diagnosis and the inertia in the mechanical system associated with mirrors. In this work, we introduce a predictive control strategy where the forecasting of beam pointing errors is performed by a patch-based multilayer perceptron (Patch-MLP) designed to capture local temporal patterns for more robust short-term jitter prediction. The subsequent conversion of these predicted errors into correction signals is handled by a PID controller. The neural network has been trained on diagnostic time-series data to predict beam pointing error. Using the feed-forward controller compensates for system delays. Simulations with a correction mirror placed upstream of the PHELIX pre-amplifier bridge confirm that the predictive control scheme reduces residual jitter compared to conventional PID control. Over a 10-hour dataset the controller maintained stable performance without drift, while standard pointing metrics showed consistent improvements of the order of 10 to 20 percent. The predictive controller operates without drift, and therefore may improve reproducibility and operational efficiency in high energy, low repetition rate laser experiment conditions.
title Patch-MLP-Based Predictive Control: Simulation of Upstream Pointing Stabilization for PHELIX Laser System
topic Computational Physics
url https://arxiv.org/abs/2510.26540