Improving pulsar-timing solutions through dynamic pulse fitting
arXiv:2304.02793 · doi:10.1093/mnras/stad1660
Abstract
Precision pulsar timing is integral to the detection of the nanohertz stochastic gravitational-wave background as well as understanding the physics of neutron stars. Conventional pulsar timing often uses fixed time and frequency-averaged templates to determine the pulse times of arrival, which can lead to reduced accuracy when the pulse profile evolves over time. We illustrate a dynamic timing method that fits each observing epoch using basis functions. By fitting each epoch separately, we allow for the evolution of the pulse shape epoch to epoch. We apply our method to PSR J11035403 and demonstrate that it undergoes mode changing, making it the fourth millisecond pulsar to exhibit such behaviour. Our method, which is able to identify and time a single mode, yields a timing solution with a root-mean-square error of 1.343 , a factor of 1.78 improvement over template fitting on both modes. In addition, the white-noise amplitude is reduced 4.3 times, suggesting that fitting the full data set causes the mode changing to be incorrectly classified as white noise. This reduction in white noise boosts the signal-to-noise ratio of a gravitational-wave background signal for this particular pulsar by 32%. We discuss the possible applications for this method of timing to study pulsar magnetospheres and further improve the sensitivity of searches for nanohertz gravitational waves.
Accepted in MNRAS, 8 pages, 8 figures
References in corpus (30)
- Shapiro delay measurement of a two solar mass neutron star
- A Massive Pulsar in a Compact Relativistic Binary
- TEMPO2, a new pulsar timing package. I: Overview
- Tests of general relativity from timing the double pulsar
- PSRCHIVE and PSRFITS An Open Approach to Radio Pulsar Data Storage and Analysis
- Tempo2, a new pulsar timing package. II: The timing model and precision estimates
- Switched magnetospheric regulation of pulsar spin-down
- The relativistic pulsar-white dwarf binary PSR J1738+0333 II. The most stringent test of scalar-tensor gravity
- A periodically active pulsar giving insight into magnetospheric physics
- The International Pulsar Timing Array second data release: Search for an isotropic Gravitational Wave Background
- On the evidence for a common-spectrum process in the search for the nanohertz gravitational-wave background with the Parkes Pulsar Timing Array
- Pulsar Nulling and Mode Changing
- Common-red-signal analysis with 24-yr high-precision timing of the European Pulsar Timing Array: Inferences in the stochastic gravitational-wave background search
- Strong-field Gravity Tests with the Double Pulsar
- The MeerKAT Telescope as a Pulsar Facility: System verification and early science results from MeerTime
- Limitations in timing precision due to single-pulse shape variability in millisecond pulsars
- Measuring pulse times of arrival from broadband pulsar observations
- An improved test of the strong equivalence principle with the pulsar in a triple star system
- Measurements of pulse jitter and single-pulse variability in millisecond pulsars using MeerKAT
- The Thousand-Pulsar-Array programme on MeerKAT III: Giant pulse characteristics of PSR J05406919
- Modelling and mitigating refractive propagation effects in precision pulsar timing observations
- Evidence for profile changes in PSR J1713+0747 using the uGMRT
- Wide-band Profile Domain Pulsar Timing Analysis
- Discovery and modelling of broad-scale plasma lensing in black-widow pulsar J20510827
- Generative pulsar timing analysis
- Relativistic spin precession in the binary PSR J11416545
- Pulsar Emission Beam Geometry of Radio Broadband Arecibo Sources
- Understanding and improving the timing of PSR J0737-3039B
- Analysis of the ionized interstellar medium and orbital dynamics of PSR~J1909-3744 using scintillation arcs
- News and views regarding PSR J1757-1854, a highly-relativistic binary pulsar