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Improving Pulsar Timing Precision with Single Pulses

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arxiv 1506.03527 v2 pith:TQZHMNP6 submitted 2015-06-11 astro-ph.IM

classification astro-ph.IM
keywords pulsartimingdatapulsesbasisprecisionsingletoas
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The measurement error of pulse times of arrival (TOAs) in the high S/N limit is dominated by the quasi-random variation of a pulsar's emission profile from rotation to rotation. Like measurement noise, this noise is only reduced as the square root of observing time, posing a major challenge to future pulsar timing campaigns with large aperture telescopes, e.g. the Five-hundred-metre Aperture Spherical Telescope and the Square Kilometre Array. We propose a new method of pulsar timing that attempts to approximate the pulse-to-pulse variability with a small family of 'basis' pulses. If pulsar data are integrated over many rotations, this basis can be used to measure sub-pulse structure. Or, if high-time resolution data are available, the basis can be used to 'tag' single pulses and produce an optimal timing template. With realistic simulations, we show that these applications can dramatically reduce the effect of pulse-to-pulse variability on TOAs. Using high-time resolution data taken from the bright PSR J0835-4510 (Vela), we demonstrate a 25-40% improvement in TOA precision. Crucially for pulsar timing applications, we further establish that these techniques produce TOAs with gaussian residuals. Improvements of this level halve the telescope time required to reach a desired TOA precision. Although some gains can be achieved with existing data, the greatest improvements result from the 'tagging' approach, which in turn requires online or posthoc analysis of single pulses, an important consideration for the design of future instrumentation.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. First fast radio burst search campaign at the Argentine Institute of Radio Astronomy

    astro-ph.HE 2026-08 conditional novelty 6.0 of 10

    The IAR campaign found one FRB candidate with DM 243 pc cm^-3 and S/N 8.2, backed by successful recovery of archival and injected bursts.

  2. The SKAO Pulsar Timing Array

    astro-ph.IM 2026-07 accept novelty 3.5 of 10

    An SKAO PTA with ~174 millisecond pulsars can dominate nanohertz GW sensitivity within four years and enable continuous-wave detections plus anisotropy maps of the gravitational-wave background.

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