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Cyclic spectroscopy of The Millisecond Pulsar, B1937+21

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arxiv 1310.3535 v1 pith:XDD45PSH submitted 2013-10-14 astro-ph.HE astro-ph.IM

classification astro-ph.HEastro-ph.IM
keywords profileb1937cyclicinterstellarpulsarsignalconcentrationsfeatures
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Cyclic spectroscopy is a signal processing technique that was originally developed for engineering applications and has recently been introduced into the field of pulsar astronomy. It is a powerful technique with many attractive features, not least of which is the explicit rendering of information about the relative phases in any filtering imposed on the signal, thus making holography a more straightforward proposition. Here we present methods for determining optimum estimates of both the filter itself and the statistics of the unfiltered signal, starting from a measured cyclic spectrum. In the context of radio pulsars these quantities tell us the impulse response of the interstellar medium and the intrinsic pulse profile. We demonstrate our techniques by application to 428 MHz Arecibo data on the millisecond pulsar B1937+21, obtaining the pulse profile free from the effects of interstellar scattering. As expected, the intrinsic profile exhibits main- and inter-pulse components that are narrower than they appear in the scattered profile; it also manifests some weak, but sharp features that are revealed for the first time at low frequency. We determine the structure of the received electric-field envelope as a function of delay and Doppler-shift. Our delay-Doppler image has a high dynamic-range and displays some pronounced, low-level power concentrations at large delays. These concentrations imply strong clumpiness in the ionized interstellar medium, on AU size-scales, which must adversely affect the timing of B1937+21.

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Cited by 2 Pith papers

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  1. Unlocking the hidden potential of pulsar astronomy

    astro-ph.IM 2025-06 conditional novelty 3.0 of 10

    This review and feasibility study shows that compact radio receivers can detect bright pulsars for navigation, timing, randomness, and space weather applications, with a 4-meter dish potentially achieving 10 km self-l...

  2. Exploring the Galactic plasma with pulsars in the SKA Era

    astro-ph.HE 2026-07 accept novelty 2.5 of 10

    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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