Pi of the Sky – preparation for GW Advance Detector Era Adam Zadrożny Wilga 2014.

Slides:



Advertisements
Similar presentations
A walk through some statistic details of LSC results.
Advertisements

Searching for Electromagnetic Counterparts of Gravitational-Wave Transients Marica Branchesi (Università di Urbino/INFN) on behalf of LIGO Scientific Collaboration.
GWDAW9 – Annecy December 15-18, 2004 A. Di Credico Syracuse University LIGO-G Z 1 Gravitational wave burst vetoes in the LIGO S2 and S3 data analyses.
Sources and Timing A variety of possible source mechanisms motivate this search. Theoretical and numerical models predict nova-like transients from double.
LIGO - Fermi Sub-Threshold Search for the 1 st Advanced LIGO Science Run Jordan Camp NASA Goddard Space Flight Center Moriond Gravitation Meeting March.
Following Up Gravitational Wave Event Candidates Roy Williams (Caltech), Peter Shawhan (U Maryland), for the LIGO Scientific Collaboration and Virgo Collaboration.
A SEARCH FOR GRAVITATIONAL WAVES FROM INSPIRALING NEUTRON STARS AND BLACK HOLES Using data taken between July 2009 and October 2010, researchers from the.
LIGO-GXX What is LIGO (LSC/GEO/Virgo/…)? Gabriela González, Louisiana State University For the LIGO Scientific Collaboration and the Virgo Collaboration.
Virgo Open Data Plans October 27, 2011 Benoit Mours (LAPP-Annecy) On behalf of the Virgo Collaboration.
R. Frey Student Visit 1 Gravitational Waves, LIGO, and UO GW Physics LIGO
Dawn of GW Astrophysics: Multi-messenger Astronomy May 7, 2015Silver Spring, MD1 Jonah Kanner LIGO Lab - Caltech LIGO-G v6.
Michał Zaczek Tutor: dr inż. Krzysztof Poźniak Data Base of Distant Universe Events Institute of Electronic Systems Group : PERG.
L ocating and O bserving O ptical C ounterparts to U nmodeled P ulses in Gravitational Waves LOOC UP LIGO-G Z Dec 16, 2007 Jonah Kanner, Peter.
LIGO-G Opening the Gravitational Wave Window Gabriela González Louisiana State University LSC spokesperson For the LIGO Scientific Collaboration.
Follow-up of LIGO-Virgo observations of gravitational waves Roy Williams (Caltech) Peter Shawhan (U. of Maryland / JSI) for the LIGO Scientific Collaboration.
Peter S. Shawhan (University of Maryland) for the LIGO Scientific Collaboration and the Virgo Collaboration together with the TAROT, QUEST and Pi of the.
LIGO- G D Status of LIGO Stan Whitcomb ACIGA Workshop 21 April 2004.
 of the Sky Innovative approach to GRB optical counterparts and other short optical transients detection Study of astrophysical phenomena with time scale.
 of the Sky Innovative approach to GRB optical counterparts detection Study of astrophysical phenomena with time scale from seconds to months
Pi of the Sky telescope contribution to the LSC-Virgo Electromagnetic Follow-up project Adam Zadrożny Spała 2014.
PI OF THE SKY AND GRAVITATIONAL WAVES SEARCHES Adam Zadrożny.
The Analysis of Binary Inspiral Signals in LIGO Data Jun-Qi Guo Sept.25, 2007 Department of Physics and Astronomy The University of Mississippi LIGO Scientific.
GRBs & VIRGO C7 run Alessandra Corsi & E. Cuoco, F. Ricci.
Prompt searches for optical signal from gravitational wave transients with Pi of the Sky Adam Zadrożny Pi of the Sky session at XXXII-th IEEE-SPIE Joint.
Searching for Gravitational Waves with LIGO Andrés C. Rodríguez Louisiana State University on behalf of the LIGO Scientific Collaboration SACNAS
LIGO-G Z April 2006 APS meeting Igor Yakushin (LLO, Caltech) Search for Gravitational Wave Bursts in LIGO’s S5 run Igor Yakushin (LLO, Caltech)
Search for neutrinos from transient sources with the ANTARES telescope and optical follow-up observations 31st International Cosmic Ray Conference Lodz.
Search for neutrinos from gamma-ray bursts with the ANTARES telescope D. Dornic for the ANTARES Collaboration.
Searches for Compact Binary Coalescences in LIGO and Virgo data Gabriela González For the LIGO Scientific Collaboration and the Virgo Collaboration APS.
LIGO-G v5 5/2/09Joshua Smith, Syracuse University1 Low-latency search for gravitational-wave transients with electromagnetic follow-up Joshua Smith,
LIGO- G D Experimental Upper Limit from LIGO on the Gravitational Waves from GRB Stan Whitcomb For the LIGO Scientific Collaboration Informal.
G Z 1 Real-time search for gravitational wave transients during S6/VSR2: Principles, thoughts and plans Erik Katsavounidis MIT for the LSC-Virgo.
LIGO-G Z The Q Pipeline search for gravitational-wave bursts with LIGO Shourov K. Chatterji for the LIGO Scientific Collaboration APS Meeting.
Gamma-Ray Bursts with the ANTARES neutrino telescope S. Escoffier CNRS/CPPM, Marseille.
Spotting the life of stars „Pi of the Sky” Project Katarzyna Kwiecińska UKSW-SNŚ on behalf of the Pi of the Sky collaboration.
LIGO-G All-Sky Burst Search in the First Year of the LSC S5 Run Laura Cadonati, UMass Amherst For the LIGO Scientific Collaboration GWDAW Meeting,
Peter Shawhan The University of Maryland & The LIGO Scientific Collaboration Penn State CGWP Seminar March 27, 2007 LIGO-G Z Reaching for Gravitational.
G Z The LIGO gravitational wave detector consists of two observatories »LIGO Hanford Observatory – 2 interferometers (4 km long arms and 2 km.
LIGO-G M Press Conference Scientific Operation of LIGO Gary H Sanders Caltech (on behalf of a large team) APS April Meeting Philadelphia 6-April-03.
A Proposed Collaboration Between LIGO-Virgo and Swift to Improve the Chances to Detect Gravitational Waves from Core Collapse Supernovae Kiranjyot (Jasmine)
GW – the first GW detection ! Is it a start of GW astronomy ? If “yes” then which ? «Счастлив, кто посетил сей мир в его минуты роковые !...» Ф.Тютчев.
Steering Astronomy Toward Gravitational Wave-Supernova Science Kiranjyot (Jasmine) Gill, 1 Dr. Michele Zanolin 1 With support from Marek Szczepanczyk 1.
Searching the LIGO data for coincidences with Gamma Ray Bursts Alexander Dietz Louisiana State University for the LIGO Scientific Collaboration LIGO-G Z.
Gravitational Wave Data Analysis  GW detectors  Signal processing: preparation  Noise spectral density  Matched filtering  Probability and statistics.
1 8 th E. Amaldi Conference, New York City, June, 2009 Anand Sengupta California Institute of Technology on behalf of the LSC and Virgo Collaborations.
The GLORIA demonstrator experiment Ariel Majcher National Centre for Nuclear Research Warsaw, Poland XXXII IEEE-SPIE Joint Symposium Wilga 2013, May 29.
LIGO-G Z Results from LIGO Observations Stephen Fairhurst University of Wisconsin - Milwaukee on behalf of the LIGO Scientific Collaboration.
GRB triggered Inspiral Searches in the fifth Science Run of LIGO Alexander Dietz Cardiff University for the LIGO Scientific Collaboration LIGO-G Z.
Online all-sky burst searches during the joint S6/VSR2 LIGO-Virgo science run Igor Yakushin LIGO Livingston Observatory, Caltech For the LIGO Scientific.
Pi of the Sky off-line experiment with GLORIA Ariel Majcher National Centre for Nuclear Research Warsaw, Poland 10th INTEGRAL/BART Workshop, April.
Ariel Majcher Gamma-ray bursts and GRB080319B XXIVth IEEE-SPIE Joint Symposium on Photonics, Web Engineering, Electronics for Astronomy and High Energy.
Data Analysis report November, 2009 Gianluca M Guidi
The Quest for Gravitational Waves: a global strategy
Brennan Hughey MIT Kavli Institute Postdoc Symposium
Electromagnetic Follow-ups of LIGO/Virgo Triggers
Low-latency Selection of Gravitational-wave Event Candidates
Follow-Ups to Gravitational-Wave Signal Candidates
 of the Sky Innovative approach to GRB optical counterparts and other short optical transients detection Study of astrophysical phenomena with time scale.
Searching for gravitational-wave transients with Advanced detectors
Advanced Virgo Detector Monitoring and Data Quality
Finding Optical Transients with LIGO and Virgo Data
Real-time Astronomy with LIGO and Virgo: Status and Prospects Erik Katsavounidis LIGO-MIT for the LIGO Scientific Collaboration and the Virgo Collaboration.
Astrophysics: 2016 highlights and the way forward
The Q Pipeline search for gravitational-wave bursts with LIGO
Igor Yakushin, LIGO Livingston Observatory
Searching for Gravitational-Wave Bursts (GWBs) associated with Gamma-Ray Bursts (GRBs) during the LIGO S5 run Isabel Leonor University of Oregon (for the.
Detection of gravitational waves from binary black hole mergers
DIRECT DETECTION OF GRAVITATIONAL WAVES FROM NEUTRON STARS
Searching for GRB-GWB coincidence during LIGO science runs
Update on Status of LIGO
Presentation transcript:

Pi of the Sky – preparation for GW Advance Detector Era Adam Zadrożny Wilga 2014

Gravitational waves Gravitational waves predicted by Einstein's theory of general relativity are still undetected. Among possible detectable sources of gravitational waves there are NS-NS mergers, NS-BH mergers and supernovae, which all could give an optical transient in the V band. If an event occurs in gravitational wave detectors and at almost the same time an optical transient is observed from the same direction that the event candidate came from then it might be a good hint that the event candidate might be a real gravitational wave signal. This paper describes methods used by Pi of the Sky for optical transient search within the Looc-Up project and a proposal of the new methods for future Looc-Up science runs.

Gravitational Waves

Binary Coalescence and Supernova Explosions Neutron star / Blackhole binaries Supernova

Detection of gravitational waves

Range of LIGO and Advanced LIGO interferometer

Pi of the Sky - Scopes 4 mounts with 4 cameras that might work in coincidence or not Each camera – FOV: 20 [deg] x 20 [deg] – Limiting brightness: 12 mag – Exposition time: 10 s 2 cameras working in coincidence Each camera – FOV: 20 [deg] x 20 [deg] – Limiting brightness: 12 mag – Exposition time: 10 s INTA (Spain)San Pedro de Atacama (Chile)

Overview of Pi of the Sky system used for Looc-Up Camera: – FOV: 20 deg x 20 deg – Exposure time: 10 s – Limiting magnitude : 12 mag – CCD: 2 K x 2 K Observation site: – Koczargi Stare near Warsaw, Poland

Looc-Up Project An observation of an astrophysical event in both gravitational and optical band might bring very significant scientific results and could be the first step toward the direct detection of gravitational waves. The main aim of the LoocUp project, initiated by LSC and Virgo collaborations and several other electromagnetic (EM) observation teams, was to try to find such a coincidence by doing an electromagnetic follow-up of the most promising GW event candidates selected by the low-latency analysis of LIGO and Virgo detector data. The first Looc-Up science run took place in Nine astronomical teams and the Swift satellite team took part in it. Scopes of those teams were placed all over the world. Methods paper was published in The was publish in 2014 in ApJS.

Locating and Observing Optical Counterparts to Unmodeled Pulses Search for an optical counterpart to a gravitational waves event – to confirm an event – to gather more information Two past science runs in

Telescopes Involved in Looc-Up Project

A Simplified Flowachart of the Online Analysis [1.]

Sky localization

Models of possible sources Long GRB – Long GRB off-axis Short GRB – Short GRB off-axis Supernovae Kilonovae Other … Pi of the Sky limitting magnitude

Pipeline For analysis we used catalog based pipeline As a seed for star catalog we used Guide Star Catalog with stars up to 11 mag For each exposition we add all recognized stars to the databases with their brightness measurements – Normalization of brightness to V magnitudes from the TYCHO catalog

Transient Search for Looc-Up Transient search using PotS nova algorithm: – Looking for new objects that fulfill quality constrains – Looking for objects that suddenly increase their brightness more than 2 mag – All transients are undergoing human inspection Objects that are suspected to be transients were cross-correlated with INTA images taken few months later

Pipeline Efficiency

Lesson Learned With Pi of the Sky system it is possible to image huge part (1200 deg^2) of the sky within less than an 15 minutes taking multiple images of each field On-line transient recognition might be helpful in next run for effective transients observation and recognition – And possibly to provide transient for other scopes

Improving efficiency for possible events Lowering constrains for events that are in most probable regions of a sky maps of gravitational event candidate Inspecting all objects that are near to galaxies that might be a source of gravitational waves (closer than 100 MPc)

Advanced Detector Era Currently Virgo and LIGO detectors are being upgraded and they should become operational in 2015 (2016) For the upcoming years, till the end of decade, detector’s sensitivity curve are planned to be improved Continuous observation of sky in gravitational wave band are planned to start from 2019+

Outline of planned science runs

Advanced Detector Era

False Alarm Rate - additional conformation might be need for low frequency burst signals

EM Follow-up EM Follow-up of GW triggers would be carried out by LSC-Virgo and astronomical partners MOUs are already been signed and about 60 teams were interested. Next call for MOU is planned in (Pi of the Sky signed MOU) After four successful detections of GW all trigger are going to be publicly available

Gravitational Wave Galaxy Catalogue

PREPARATIONS

Fast cross-correlation with GWGC The first step towards AdE would be to allow easy correlation of observed transients with GWGC All alerts could be cross-correlated with GWGC and shifter could get immediate information about correlation For data taken for EM Follow-up about 80 objects was associated with GWGC for one alert. So this data was easy for human inspection.

Enhancing On-line Algorithm Transient candidates, connected with GWGC objects, that passes very basic cuts would be considered as valid. Information about failed quality cuts would be added do results. Implementation of this algorithm is tricky to make it work in low-latency (it requires px,py -> ra,dec) – But under the assumption that for every fifth frame astrometry is done it is possible

Enhancing Off-line Algorithm Identify transients connected to GWGC objects Transients that are linked with GWGC, would be added to results with information about the cuts that their failed, if any.

Object from GWGC catalogue visible for Pi of the Sky In order to prepare for Advanced Detector Era, it would be worth to gather information about objects that are visible to PotS and estimate their brightness (min, max, median value) Estimation of brightness of GWGC objects would allow to construct better algorithms for online and offline transients search in AdE

Summary Pi of the Sky took part in LSC-Virgo EM Follow-up Project (Results are published in ApJS in 2014) and have signed MOU for AdE time The system would be most helpful in the first few runs science runs of EM Follow-up project Enhanced data analysis algorithms or methodologies might be used as well for other teams