© 2016 The Authors. To obtain the most accurate pulse arrival times from radio pulsars, it is necessary to correct or mitigate the effects of the propagation of radio waves through the warm and ionized interstellar medium. We examine both the strength of propagation effects associated with large-scale electron-density variations and the methodology used to estimate infinite frequency arrival times. Using simulations of two-dimensional phase-varying screens, we assess the strength and non-stationarity of timing perturbations associated with large-scale density variations.We identify additional contributions to arrival times that are stochastic in both radio frequency and time and therefore not amenable to correction solely using times of ar...
Modeling of frequency-dependent effects, contributed by the turbulence in the free electron density ...
International audienceContext. High-precision pulsar-timing experiments are affected by temporal var...
Liu K, Desvignes G, Cognard I, et al. Measuring pulse times of arrival from broad-band pulsar observ...
The dispersion measure (DM), the column density of free electrons to a pulsar, is shown to be freque...
The dispersion measure (DM), the column density of free electrons to a pulsar, is shown to be freque...
The NANOGrav collaboration aims to detect low frequency gravitational waves by measuring the arrival...
We present a robust approach to incorporating models for the time-variable broadening of the pulse p...
Free electrons in the interstellar medium cause frequency-dependent delays in pulse arrival times du...
We present simulations of scattering phenomena which are important in pulsar observations, but which...
Light travel time changes due to gravitational waves (GWs) may be detected within the next decade th...
Modern day radio telescopes make use of wideband receivers to take advantage of the broadband nature...
Signals from radio pulsars show a wavelength-dependent delay due to dispersion in the interstellar p...
Abstract Many systematic effects need to be removed in order to obtain the highest quality pulsar ti...
We demonstrate that the sensitivity of high-precision pulsar timing experiments will be ultimately l...
Observations of pulsars across the radio spectrum are revealing a dependence of the characteristic s...
Modeling of frequency-dependent effects, contributed by the turbulence in the free electron density ...
International audienceContext. High-precision pulsar-timing experiments are affected by temporal var...
Liu K, Desvignes G, Cognard I, et al. Measuring pulse times of arrival from broad-band pulsar observ...
The dispersion measure (DM), the column density of free electrons to a pulsar, is shown to be freque...
The dispersion measure (DM), the column density of free electrons to a pulsar, is shown to be freque...
The NANOGrav collaboration aims to detect low frequency gravitational waves by measuring the arrival...
We present a robust approach to incorporating models for the time-variable broadening of the pulse p...
Free electrons in the interstellar medium cause frequency-dependent delays in pulse arrival times du...
We present simulations of scattering phenomena which are important in pulsar observations, but which...
Light travel time changes due to gravitational waves (GWs) may be detected within the next decade th...
Modern day radio telescopes make use of wideband receivers to take advantage of the broadband nature...
Signals from radio pulsars show a wavelength-dependent delay due to dispersion in the interstellar p...
Abstract Many systematic effects need to be removed in order to obtain the highest quality pulsar ti...
We demonstrate that the sensitivity of high-precision pulsar timing experiments will be ultimately l...
Observations of pulsars across the radio spectrum are revealing a dependence of the characteristic s...
Modeling of frequency-dependent effects, contributed by the turbulence in the free electron density ...
International audienceContext. High-precision pulsar-timing experiments are affected by temporal var...
Liu K, Desvignes G, Cognard I, et al. Measuring pulse times of arrival from broad-band pulsar observ...