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H-FISTA: A hierarchical algorithm for phase retrieval with application to pulsar dynamic spectra

1 Pith paper cite this work, alongside 6 external citations. Polarity classification is still indexing.

1 Pith paper citing it
6 external citations · Pith
abstract

A pulsar dynamic spectrum is an inline digital hologram of the interstellar medium; it encodes information on the propagation paths by which signals have travelled from source to telescope. To decode the hologram it is necessary to "retrieve" the phases of the wavefield from intensity measurements, which directly gauge only the field modulus, by imposing additional constraints on the model. We present a new method for phase retrieval in the context of pulsar spectroscopy. Our method makes use of the Fast Iterative Shrinkage Thresholding Algorithm (FISTA) to obtain sparse models of the wavefield in a hierarchical approach with progressively increasing depth. Once the tail of the noise distribution is reached the hierarchy terminates with a final, unregularised optimisation. The result is a fully dense model of the complex wavefield that permits the discovery of faint signals by appropriate averaging. We illustrate the performance of our method on synthetic test cases and on real data. Our algorithm, which we call H-FISTA, is implemented in the Python programming language and is freely available.

fields

astro-ph.HE 1

years

2026 1

verdicts

ACCEPT 1

representative citing papers

Exploring the Galactic plasma with pulsars in the SKA Era

astro-ph.HE · 2026-07-02 · accept · novelty 2.5

Pulsars map Galactic, solar-wind, and ionospheric plasma via DM, RM, scintillation, and scattering; SKA-Low/Mid AA4 will push DM precision to ~10^{-8} pc cm^{-3} and transform IISM models.

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Showing 1 of 1 citing paper.

  • Exploring the Galactic plasma with pulsars in the SKA Era astro-ph.HE · 2026-07-02 · accept · none · ref 12 · internal anchor

    Pulsars map Galactic, solar-wind, and ionospheric plasma via DM, RM, scintillation, and scattering; SKA-Low/Mid AA4 will push DM precision to ~10^{-8} pc cm^{-3} and transform IISM models.