Spatiotemporal statistics of the turbulent piston-removed phase and Zernike coefficients for two distinct beams
C\'edric Plantet, Giulia Carl\`a, Guido Agapito, Lorenzo Busoni

TL;DR
This paper develops a comprehensive framework for analyzing the combined spatial and temporal statistics of turbulent phases in adaptive optics systems, applicable to various telescope configurations and aiding in system performance assessment.
Contribution
It introduces general formulas for the temporal cross power spectral densities of turbulent phases in two distinct beams, considering both phase and Zernike mode decompositions, covering diverse optical configurations.
Findings
Wavefront residuals are overestimated when neglecting temporal filtering.
The framework applies to single and interferometric telescopes with different aperture sizes.
Demonstrates the importance of temporal considerations in turbulence statistics.
Abstract
In the context of adaptive optics for astronomy, one can rely on the statistics of the turbulent phase to assess a part of the system's performance. Temporal statistics with one source and spatial statistics with two sources are well-known and are widely used for classical adaptive optics systems. A more general framework, including both spatial and temporal statistics, can be useful for the analysis of the existing systems and to support the design of the future ones. In this paper, we propose an expression of the temporal cross power spectral densities of the turbulent phases in two distinct beams, that is from two different sources to two different apertures. We either consider the phase as it is, without piston, or as its decomposition on Zernike modes. The general formulas allow to cover a wide variety of configurations, from single-aperture to interferometric telescopes equipped…
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