421 research outputs found
Metric Assisted Stochastic Sampling (MASS) search for gravitational waves from binary black hole mergers
We present a novel gravitational wave detection algorithm that conducts amatched filter search stochastically across the compact binary parameter spacerather than relying on a fixed bank of template waveforms. This technique iscompetitive with standard template-bank-driven pipelines in both computationalcost and sensitivity. However, the complexity of the analysis is simplerallowing for easy configuration and horizontal scaling across heterogeneousgrids of computers. To demonstrate the method we analyze approximately onemonth of public LIGO data from July 27 00:00 2017 UTC - Aug 25 22:00 2017 UTCand recover eight known confident gravitational wave candidates. We also injectsimulated binary black hole (BBH) signals to demonstrate the sensitivity.<br
First narrow-band search for continuous gravitational waves from known pulsars in advanced detector data
Spinning neutron stars asymmetric with respect to their rotation axis are potential sources of
continuous gravitational waves for ground-based interferometric detectors. In the case of known pulsars a
fully coherent search, based on matched filtering, which uses the position and rotational parameters
obtained from electromagnetic observations, can be carried out. Matched filtering maximizes the signalto-
noise (SNR) ratio, but a large sensitivity loss is expected in case of even a very small mismatch
between the assumed and the true signal parameters. For this reason, narrow-band analysis methods have
been developed, allowing a fully coherent search for gravitational waves from known pulsars over a
fraction of a hertz and several spin-down values. In this paper we describe a narrow-band search of
11 pulsars using data from Advanced LIGO’s first observing run. Although we have found several initial
outliers, further studies show no significant evidence for the presence of a gravitational wave signal.
Finally, we have placed upper limits on the signal strain amplitude lower than the spin-down limit for 5 of
the 11 targets over the bands searched; in the case of J1813-1749 the spin-down limit has been beaten for
the first time. For an additional 3 targets, the median upper limit across the search bands is below the
spin-down limit. This is the most sensitive narrow-band search for continuous gravitational waves carried
out so far
From Discovery to the First Month of the Type II Supernova 2023ixf: High and Variable Mass Loss in the Final Year Before Explosion
We present the discovery of Type II supernova (SN) 2023ixf in M101, among the
closest core-collapse SNe in the last several decades, and follow-up
photometric and spectroscopic observations in the first month of its evolution.
The light curve is characterized by a rapid rise ( days) to a
luminous peak ( mag) and plateau ( mag)
extending to days with a smooth decline rate of mag
day. During the rising phase, color shows blueward evolution,
followed by redward evolution in the plateau phase. Prominent flash features of
hydrogen, helium, carbon, and nitrogen dominate the spectra up to
days after first light, with a transition to a higher ionization state in the
first days. Both the color and flash ionization states suggest
a rise in the temperature, indicative of a delayed shock-breakout inside dense
circumstellar material (CSM). From the timescales of CSM interaction, we
estimate its compact radial extent of cm. We then
construct numerical light-curve models based on both continuous and eruptive
mass-loss scenarios shortly before explosion. For the continuous mass-loss
scenario, we infer a range of mass-loss history with in the final years before explosion, with a potentially
decreasing mass loss of in
years towards the explosion. For the eruptive mass-loss scenario, we favor
eruptions releasing of the envelope at about a year before
explosion, which result in CSM with mass and extent similar to the continuous
scenario. We discuss the implications of the available multi-wavelength
constraints obtained thus far on the progenitor candidate and SN 2023ixf to our
variable CSM models.Comment: 15 pages, 5 figures, submitted to ApJ
An Early-warning System for Electromagnetic Follow-up of Gravitational-wave Events
Binary neutron stars (BNSs) will spend ≃10–15 minutes in the band of Advanced Laser Interferometer Gravitational-Wave Observatory (LIGO) and Virgo detectors at design sensitivity. Matched-filtering of gravitational-wave (GW) data could in principle accumulate enough signal-to-noise ratio (S/N) to identify a forthcoming event tens of seconds before the companions collide and merge. Here we report on the design and testing of an early-warning GW detection pipeline. Early-warning alerts can be produced for sources that are at low enough redshift so that a large enough S/N accumulates ~10–60 s before merger. We find that about 7% (49%) of the total detectable BNS mergers will be detected 60 s (10 s) before the merger. About 2% of the total detectable BNS mergers will be detected before merger and localized to within 100 deg² (90% credible interval). Coordinated observing by several wide-field telescopes could capture the event seconds before or after the merger. LIGO–Virgo detectors at design sensitivity could facilitate observing at least one event at the onset of merger
A binary tree approach to template placement for searches for gravitational waves from compact binary mergers
We demonstrate a new geometric method for fast template placement for
searches for gravitational waves from the inspiral, merger and ringdown of
compact binaries. The method is based on a binary tree decomposition of the
template bank parameter space into non-overlapping hypercubes. We use a
numerical approximation of the signal overlap metric at the center of each
hypercube to estimate the number of templates required to cover the hypercube
and determine whether to further split the hypercube. As long as the expected
number of templates in a given cube is greater than a given threshold, we split
the cube along its longest edge according to the metric. When the expected
number of templates in a given hypercube drops below this threshold, the
splitting stops and a template is placed at the center of the hypercube. Using
this method, we generate aligned-spin template banks covering the mass range
suitable for a search of Advanced LIGO data. The aligned-spin bank required ~24
CPU-hours and produced 2 million templates. In general, we find that other
methods, namely stochastic placement, produces a more strictly bounded loss in
match between waveforms, with the same minimal match between waveforms
requiring about twice as many templates with our proposed algorithm. Though we
note that the average match is higher, which would lead to a higher detection
efficiency. Our primary motivation is not to strictly minimize the number of
templates with this algorithm, but rather to produce a bank with useful
geometric properties in the physical parameter space coordinates. Such
properties are useful for population modeling and parameter estimation
An early warning system for electromagnetic follow-up of gravitational-wave events
Binary neutron stars (BNSs) will spend -- 15 minutes in the band
of Advanced LIGO and Virgo detectors at design sensitivity. Matched-filtering
of gravitational-wave (GW) data could in principle accumulate enough
signal-to-noise ratio (SNR) to identify a forthcoming event tens of seconds
before the companions collide and merge. Here we report on the design and
testing of an early warning gravitational-wave detection pipeline. Early
warning alerts can be produced for sources that are at low enough redshift so
that a large enough SNR accumulates before merger. We
find that about 7% (respectively, 49%) of the total detectable BNS mergers will
be detected () before the merger. About 2% of the
total detectable BNS mergers will be detected before merger and localized to
within (90% credible interval). Coordinated observing
by several wide-field telescopes could capture the event seconds before or
after the merger. LIGO-Virgo detectors at design sensitivity could facilitate
observing at least one event at the onset of merger.Comment: small update in numbers caused by using a more updated local BNS rate
estimat
First measurement of the Hubble Constant from a Dark Standard Siren using the Dark Energy Survey Galaxies and the LIGO/Virgo Binary–Black-hole Merger GW170814
International audienceWe present a multi-messenger measurement of the Hubble constant H 0 using the binary–black-hole merger GW170814 as a standard siren, combined with a photometric redshift catalog from the Dark Energy Survey (DES). The luminosity distance is obtained from the gravitational wave signal detected by the Laser Interferometer Gravitational-Wave Observatory (LIGO)/Virgo Collaboration (LVC) on 2017 August 14, and the redshift information is provided by the DES Year 3 data. Black hole mergers such as GW170814 are expected to lack bright electromagnetic emission to uniquely identify their host galaxies and build an object-by-object Hubble diagram. However, they are suitable for a statistical measurement, provided that a galaxy catalog of adequate depth and redshift completion is available. Here we present the first Hubble parameter measurement using a black hole merger. Our analysis results in , which is consistent with both SN Ia and cosmic microwave background measurements of the Hubble constant. The quoted 68% credible region comprises 60% of the uniform prior range [20, 140] km s−1 Mpc−1, and it depends on the assumed prior range. If we take a broader prior of [10, 220] km s−1 Mpc−1, we find (57% of the prior range). Although a weak constraint on the Hubble constant from a single event is expected using the dark siren method, a multifold increase in the LVC event rate is anticipated in the coming years and combinations of many sirens will lead to improved constraints on H 0
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