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  4. Learning a latent pulse shape interface for photoinjector laser systems
 
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Learning a latent pulse shape interface for photoinjector laser systems

Publikationstyp
Preprint
Date Issued
2026-02-19
Sprache
English
Author(s)
Klemps, Alexander  orcid-logo
Data Science Foundations E-21  
Ilia, Denis  
Deutsches Elektronen-Synchrotron DESY  
Banerjee, Pradeep Kr.  
Data Science Foundations E-21  
Chen, Ye
Tünnermann, Henrik  
Ay, Nihat  
Data Science Foundations E-21  
TORE-URI
https://hdl.handle.net/11420/62290
Citation
arXiv: 2602.17263 (2026)
Publisher DOI
10.48550/arXiv.2602.17263
ArXiv ID
2602.17263
Controlling the longitudinal laser pulse shape in photoinjectors of Free-Electron Lasers is a powerful lever for optimizing electron beam quality, but systematic exploration of the vast design space is limited by the cost of brute-force pulse propagation simulations. We present a generative modeling framework based on Wasserstein Autoencoders to learn a differentiable latent interface between pulse shaping and downstream beam dynamics. Our empirical findings show that the learned latent space is continuous and interpretable while maintaining high-fidelity reconstructions. Pulse families such as higher-order Gaussians trace coherent trajectories, while standardizing the temporal pulse lengths shows a latent organization correlated with pulse energy. Analysis via principal components and Gaussian Mixture Models reveals a well behaved latent geometry, enabling smooth transitions between distinct pulse types via linear interpolation. The model generalizes from simulated data to real experimental pulse measurements, accurately reconstructing pulses and embedding them consistently into the learned manifold. Overall, the approach reduces reliance on expensive pulse-propagation simulations and facilitates downstream beam dynamics simulation and analysis.
Subjects
cs.LG
DDC Class
600: Technology
Lizenz
https://creativecommons.org/licenses/by/4.0/
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