Detection, Localization and Characterization of Gravitational Wave Bursts in a Pulsar Timing Array
arXiv:1004.3499 · doi:10.1088/0004-637X/718/2/1400
Abstract
Efforts to detect gravitational waves by timing an array of pulsars have focused traditionally on stationary gravitational waves: e.g., stochastic or periodic signals. Gravitational wave bursts --- signals whose duration is much shorter than the observation period --- will also arise in the pulsar timing array waveband. Sources that give rise to detectable bursts include the formation or coalescence of supermassive black holes (SMBHs), the periapsis passage of compact objects in highly elliptic or unbound orbits about a SMBH, or cusps on cosmic strings. Here we describe how pulsar timing array data may be analyzed to detect and characterize these bursts. Our analysis addresses, in a mutually consistent manner, a hierarchy of three questions: \emph{i}) What are the odds that a dataset includes the signal from a gravitational wave burst? \emph{ii}) Assuming the presence of a burst, what is the direction to its source? and \emph{iii}) Assuming the burst propagation direction, what is the burst waveform's time dependence in each of its polarization states? Applying our analysis to synthetic data sets we find that we can \emph{detect} gravitational waves even when the radiation is too weak to either localize the source of infer the waveform, and \emph{detect} and \emph{localize} sources even when the radiation amplitude is too weak to permit the waveform to be determined. While the context of our discussion is gravitational wave detection via pulsar timing arrays, the analysis itself is directly applicable to gravitational wave detection using either ground or space-based detector data.
43 pages, 13 figures, submitted to ApJ.
References in corpus (14)
- The international pulsar timing array project: using pulsars as a gravitational wave detector
- Tempo2, a new pulsar timing package. II: The timing model and precision estimates
- Upper bounds on the low-frequency stochastic gravitational wave background from pulsar timing observations: current limits and future prospects
- Gravitational wave stochastic background from cosmic (super)strings
- Gravitational waves from resolvable massive black hole binary systems and observations with Pulsar Timing Arrays
- On measuring the gravitational-wave background using Pulsar Timing Arrays
- LISA technology and instrumentation
- Gravitational-wave memory and pulsar timing arrays
- Gravitational Waves from Broken Cosmic Strings: The Bursts and the Beads
- Triplets of supermassive black holes: Astrophysics, Gravitational Waves and Detection
- Search for Memory and Inspiral Gravitational Waves from Super-Massive Binary Black Holes with Pulsar Timing Arrays
- Observing gravitational wave bursts in pulsar timing measurements
- An Evidence Based Search Method For Gravitational Waves From Neutron Star Ring-downs
- Gravitational Wave Bursts from Cosmic Superstrings with Y-junctions
Cited by in corpus (48)
- The International Pulsar Timing Array: First Data Release
- The North American Nanohertz Observatory for Gravitational Waves
- The Astrophysics of Nanohertz Gravitational Waves
- Resonant Post-Newtonian Eccentricity Excitation in Hierarchical Three-body Systems
- Expected properties of the first gravitational wave signal detected with pulsar timing arrays
- The stochastic background: scaling laws and time to detection for pulsar timing arrays
- Gravitational wave astronomy of single sources with a pulsar timing array
- Resolving multiple supermassive black hole binaries with pulsar timing arrays
- Time-domain Implementation of the Optimal Cross-Correlation Statistic for Stochastic Gravitational-Wave Background Searches in Pulsar Timing Data
- Binary super-massive black hole environments diminish the gravitational-wave signal in the pulsar timing band
- Pulsars and Gravity
- Pulsar Timing Array Analysis for Black Hole Backgrounds
- Forecast constraints on cosmic string parameters from gravitational wave direct detection experiments
- Detection and localization of single-source gravitational waves with pulsar timing arrays
- A Bayesian analysis pipeline for continuous GW sources in the PTA band
- A Measurement Model for Precision Pulsar Timing
- Pulsar timing arrays as imaging gravitational wave telescopes: angular resolution and source (de)confusion
- Assessing Pulsar Timing Array Sensitivity to Gravitational Wave Bursts with Memory
- Forecast constraints on cosmic strings from future CMB, pulsar timing and gravitational wave direct detection experiments
- A 24-Hour Global Campaign To Assess Precision Timing of the Millisecond Pulsar J1713+0747
- Detection and localization of continuous gravitational waves with pulsar timing arrays: the role of pulsar terms
- Practical Methods for Continuous Gravitational Wave Detection using Pulsar Timing Data
- An Efficient Approximation to the Likelihood for Gravitational Wave Stochastic Background Detection Using Pulsar Timing Data
- Pulsar timing array observations of gravitational wave source timing parallax
- Optimizing Pulsar Timing Arrays to Maximize Gravitational Wave Single Source Detection: a First Cut
- Searching for gravitational wave bursts from cosmic string cusps with the Parkes Pulsar Timing Array
- The Benefits of VLBI Astrometry to Pulsar Timing Array Searches for Gravitational Radiation
- Pulsar Timing Arrays: Status and Techniques
- Secular evolution of compact binaries revolving around a spinning massive black hole
- Minimum Requirements for Detecting a Stochastic Gravitational Wave Background Using Pulsars
- Detecting nanohertz gravitational waves with pulsar timing arrays
- Weighing The Evidence For A Gravitational-Wave Background In The First International Pulsar Timing Array Data Challenge
- Gravitational Waves from Black-Hole Encounters: Prospects for Ground- and Galaxy-Based Observatories
- On using inspiralling supermassive binary black holes in the PTA frequency band as standard sirens to constrain dark energy
- Deconvolving Pulsar Signals with Cyclic Spectroscopy: A Systematic Evaluation
- Extending the frequency reach of pulsar timing array based gravitational wave search without high cadence observations
- Bayesian search for gravitational wave bursts in pulsar timing array data
- Radio pulsars: testing gravity and detecting gravitational waves
- Using Gravitational Wave Parallax to Measure the Hubble Parameter with Pulsar Timing Arrays
- On the complementarity of pulsar timing and space laser interferometry for the individual detection of supermassive black hole binaries
- Optimization of NANOGrav's Time Allocation for Maximum Sensitivity to Single Sources
- Searching for Gravitational Wave Bursts via Bayesian Nonparametric Data Analysis with Pulsar Timing Arrays
- Extending gravitational wave burst searches with pulsar timing arrays
- A Rømer time-delay determination of the gravitational-wave propagation speed
- Imprints of massive black-hole binaries on neighbouring decihertz gravitational-wave sources
- Geometrical vs wave optics under gravitational waves
- Data Analysis of Massive Gravitational Waves from Gamma Ray Bursts
- Searching for A Generic Gravitational Wave Background via Bayesian Nonparametric Analysis with Pulsar Timing Arrays