English

Adaptable phase retrieval for coherent transition radiation spectroscopy based on differentiable physics information

Accelerator Physics 2026-04-29 v1 Machine Learning

Abstract

Coherent transition radiation (CTR) spectroscopy is a critical diagnostic for characterizing the longitudinal structure of relativistic electron bunches in laser-plasma and conventional accelerators. In practice, recovering the bunch profile from a measured CTR spectrum is an ill-posed phase-retrieval problem. Traditionally, this is addressed using Gerchberg-Saxton (GS)-type iterative algorithms. However, these implementations often rely on explicit inverse propagators, making them difficult to adapt to sophisticated experimental forward models. In this work, we introduce a flexible gradient-based framework for CTR phase retrieval. By leveraging a differentiable forward model, we propose a phase-only gradient descent (GD-Phase) approach that enforces the measured spectral amplitude as a hard constraint while optimizing the Fourier phase under physical real-space priors. Using synthetic CTR spectra spanning multi-peaked and strongly modulated profiles, we benchmark GD-Phase against traditional GS and a real-space amplitude-parametrized gradient descent (GD-Amp) algorithm. Unlike traditional methods, this formulation allows for the seamless inclusion of arbitrary differentiable experimental effects into the reconstruction loop. We demonstrate that this physics-informed approach not only reproduces the fidelity of GS methods but also establishes a robust baseline for incorporating multi-diagnostic constraints and uncertainty quantification. This enables the systematic extension to higher-dimensional, multimodal, and uncertainty-aware diagnostics, facilitating fast and scalable phase retrieval in realistic experimental settings.

Keywords

Cite

@article{arxiv.2604.25489,
  title  = {Adaptable phase retrieval for coherent transition radiation spectroscopy based on differentiable physics information},
  author = {Ritz Ann Aguilar and Maxwell LaBerge and Andreas Doepp and Alexander Debus and Zewu Bi and Michael Bussmann and Arie Irman and Ulrich Schramm and Jeffrey Kelling},
  journal= {arXiv preprint arXiv:2604.25489},
  year   = {2026}
}

Comments

17 pages, 8 figures

R2 v1 2026-07-01T12:38:59.546Z