134 research outputs found
Burial and seed survival in Brassica napus subsp. oleifera and Sinapis arvensis including a comparison of transgenic and non-transgenic lines of the crop
- Publication venue
- 'The Royal Society'
- Publication date
- 22/01/1997
- Field of study
The creation of transgenic plants through genetic engineering has focused interest on how the fitness of a plant species may be altered by small changes in its genome. This study concentrates on a key component of fitness: persistence of seeds overwinter. Seeds of three lines of oilseed rape (Brassica napus subsp. oleifera DC Metzger) and of charlock (Sinapis arvensis L.) were buried in nylon mesh bags at two depths in four habitats in each of three geographically separated sites: Cornwall, Berkshire and Sutherland. Seeds were recovered after 12 and 24 months. Charlock exhibited much greater seed survival (average 60 per cent surviving the first year and 32.5 per cent surviving the second year) than oilseed rape (1.5 per cent surviving the first year and 0.2 per cent surviving the second) at all sites. Charlock showed higher survival at 15 cm burial than 2 cm burial at certain sites, but oilseed rape showed no depth effect. Different genetic lines of oilseed rape displayed different rates of seed survival; non-transgenic rape showed greater survival (2 per cent) than the two transgenic lines, one developed for tolerance to the antibiotic kanamycin (0.3 per cent) and one for tolerance to both kanamycin and the herbicide glufosinate (0.25 per cent). The absolute and relative performances of the different genetic lines of oilseed rape were context specific, illustrating the need to test hypotheses in a wide range of ecological settings
Edge-control and surface-smoothness in sub-aperture polishing of mirror segments
- Author
- Publication venue
- 'SPIE-Intl Soc Optical Eng'
- Publication date
- 01/01/2012
- Field of study
This paper addresses two challenges in establishing a new process chain for polishing hexagonal segments for extremely large telescopes:- i) control of edge and corner profiles in small-tool polishing of hexagons, and ii) achieving the required smoothness of the bulk aspheric form. We briefly describe the performance of a CNC-grinding process used to create the off-axis asphere, which established the input-quality for subsequent processing. We then summarize processes for smoothing ground mid-spatials and pre- and corrective polishing using Zeeko CNC machines. The impact of two cases is considered; i) all processing stages are performed after the segment is cut hexagonal, and ii) final rectification of a hexagon after cutting from an aspherised roundel, as an alternative to ionfiguring. We then report on experimental results on witness samples demonstrating edges and corners close to the EELT segment specification, and results on a full-aperture spherical segment showing excellent surface smoothness. Ă© 2012 SPIE
Simulations of galactic dynamos
- Author
- A. Brandenburg
- A. Brandenburg
- A. Brandenburg
- A. Brandenburg
- A. Brandenburg
- A. Brandenburg
- A. Brandenburg
- A. Brandenburg
- A. Brandenburg
- A. Brandenburg
- A. Brandenburg
- A. Brandenburg
- A. Hubbard
- A. Hubbard
- A. Hubbard
- A. Neronov
- A. Pouquet
- A. Shukurov
- A. Shukurov
- A.A. Ruzmaikin
- A.A. Ruzmaikin
- A.G. Tevzadze
- A.P. Snodin
- A.V. Gruzinov
- B.J. Burn
- C. Gissinger
- D. Biskamp
- D. Layzer
- D. Mitra
- D. Moss
- D. Moss
- D. Moss
- D. Moss
- D.D. Sokoloff
- E. Knobloch
- E.G. Blackman
- E.G. Blackman
- E.G. Blackman
- E.N. Parker
- E.N. Parker
- E.N. Parker
- E.T. Vishniac
- F. Cattaneo
- F. Krause
- F. Sordo Del
- F. Sordo Del
- F.A. Gent
- F.A. Gent
- H.K. Moffatt
- J. Warnecke
- J.H. Piddington
- K. FerriĂšre
- K. FerriĂšre
- K. Kemel
- K. Kulpa-DybeĆ
- K. Subramanian
- K. Subramanian
- K. Subramanian
- K.-H. RĂ€dler
- K.-H. RĂ€dler
- K.J. Donner
- L. Chamandy
- L. Chamandy
- L. Mestel
- M. Christensson
- M. Hanasz
- M. Hanasz
- M. Rheinhardt
- M. Rheinhardt
- M. Schrinner
- M. Schrinner
- M. Steenbeck
- M. Steenbeck
- M. Thomasson
- M.A. Brentjens
- M.J. Korpi
- M.J. Korpi
- M.J. Rees
- M.S. Turner
- N.I. Kleeorin
- O. Gressel
- O. Gressel
- O. Gressel
- P. Bhat
- P. Frick
- R. Banerjee
- R. Beck
- R. Beck
- R. Beck
- R. Durrer
- R. GieĂĂŒbel
- R. Jansson
- S. Candelaresi
- S. Sur
- S.I. Vainshtein
- S.I. Vainshtein
- T. Kahniashvili
- T. Vachaspati
- T. Vachaspati
- T.A. Yousef
- T.G. Arshakian
- Y. Sofue
- Publication venue
- 'Springer Science and Business Media LLC'
- Publication date
- 02/02/2014
- Field of study
We review our current understanding of galactic dynamo theory, paying
particular attention to numerical simulations both of the mean-field equations
and the original three-dimensional equations relevant to describing the
magnetic field evolution for a turbulent flow. We emphasize the theoretical
difficulties in explaining non-axisymmetric magnetic fields in galaxies and
discuss the observational basis for such results in terms of rotation measure
analysis. Next, we discuss nonlinear theory, the role of magnetic helicity
conservation and magnetic helicity fluxes. This leads to the possibility that
galactic magnetic fields may be bi-helical, with opposite signs of helicity and
large and small length scales. We discuss their observational signatures and
close by discussing the possibilities of explaining the origin of primordial
magnetic fields.Comment: 28 pages, 15 figure, to appear in Lecture Notes in Physics "Magnetic
fields in diffuse media", Eds. E. de Gouveia Dal Pino and A. Lazaria
Search for Gravitational Waves Associated with Gamma-Ray Bursts Detected by Fermi and Swift during the LIGO-Virgo Run O3b
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- Abbott R.
- Abbott T.D.
- Acernese F.
- Ackley K.
- Adams C.
- Adhikari N.
- Adhikari R.X.
- Adya V.B.
- Affeldt C.
- Agarwal D.
- Agathos M.
- Agatsuma K.
- Aggarwal N.
- Aguiar O.D.
- Aiello L.
- Ain A.
- Ajith P.
- Akutsu T.
- Albanesi S.
- Allocca A.
- Altin P.A.
- Amato A.
- Anand C.
- Anand S.
- Ananyeva A.
- Anderson S.B.
- Anderson W.G.
- Ando M.
- Andrade T.
- Andres N.
- AndriÄ T.
- Angelova S.V.
- Ansoldi S.
- Antelis J.M.
- Antier S.
- Appert S.
- Arai Koji
- Arai Koya
- Arai Y.
- Araki S.
- Araya A.
- Araya M.C.
- Areeda J.S.
- Arellano F. E. Peña
- Aritomi N.
- Arnaud N.
- Aronson S.M.
- Arun K.G.
- ArĂšne M.
- Asada H.
- Asali Y.
- Ashton G.
- Aso Y.
- Assiduo M.
- Aston S.M.
- Astone P.
- Aubin F.
- Austin C.
- Babak S.
- Badaracco F.
- Bader M.K.M.
- Badger C.
- Bae S.
- Bae Y.
- Baer A.M.
- Bagnasco S.
- Bai Y.
- Baiotti L.
- Baird J.
- Bajpai R.
- Ball M.
- Ballardin G.
- Ballmer S.W.
- Balsamo A.
- Baltus G.
- Banagiri S.
- Bankar D.
- Barayoga J.C.
- Barbieri C.
- Barish B.C.
- Barker D.
- Barneo P.
- Barone F.
- Barr B.
- Barsotti L.
- Barsuglia M.
- Barta D.
- Bartlett J.
- Barton M.A.
- Bartos I.
- Bassiri R.
- Basti A.
- Bawaj M.
- Bayley J.C.
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- Bazzan M.
- Bedakihale V.M.
- Bejger M.
- Belahcene I.
- Benedetto V.
- Beniwal D.
- Bennett T.F.
- Bentley J.D.
- Benyaala M.
- Bergamin F.
- Berger B.K.
- Bernuzzi S.
- Berry C.P.L.
- Bersanetti D.
- Bertolini A.
- Betzwieser J.
- Beveridge D.
- Bhandare R.
- Bhardwaj U.
- Bhattacharjee D.
- Bhaumik S.
- Bilenko I.A.
- Billingsley G.
- Bini S.
- Birney R.
- Birnholtz O.
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- Bischi M.
- Biscoveanu S.
- Bisht A.
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- Bonavena L.D.
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- Boom B.A.
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- Boschi V.
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- Bossilkov V.
- Boudart V.
- Bouffanais Y.
- Bozzi A.
- Bradaschia C.
- Brady P.R.
- Bramley A.
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- Brau J.E.
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- Briggs J.H.
- Brillet A.
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- Camp J.B.
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- Chatterjee C.
- Chatterjee Debarati
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- Chaturvedi M.
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- Figura P.
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- Giorgio C. Di
- Giovanni F. Di
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- Godwin P.
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- Xu W.-R.
- Yamada T.
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- Yamamoto Kazuhiro
- Yamamoto Kohei
- Yamamoto T.
- Yamashita K.
- Yamazaki R.
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- Yang Yang
- Yang Z.
- Yap M.J.
- Yeeles D.W.
- Yelikar A.B.
- Ying M.
- Yokogawa K.
- Yokoyama J.
- Yokozawa T.
- Yoo J.
- Yoshioka T.
- Yu Hang
- Yu Haocun
- Yuzurihara H.
- Zadrzny A.
- Zanolin M.
- Zeidler S.
- Zelenova T.
- Zendri J.-P.
- Zevin M.
- Zhan M.
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- Zhao C.
- Zhao G.
- Zhao Y.
- Zhao Yue
- Zheng Y.
- Zhou R.
- Zhou Z.
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- Zhu Z.-H.
- Zimmerman A.B.
- Zucker M.E.
- Zweizig J.
- Publication venue
- London : Institute of Physics Publ.
- Publication date
- 01/01/2022
- Field of study
We search for gravitational-wave signals associated with gamma-ray bursts (GRBs) detected by the Fermi and Swift satellites during the second half of the third observing run of Advanced LIGO and Advanced Virgo (2019 November 1 15:00 UTC-2020 March 27 17:00 UTC). We conduct two independent searches: A generic gravitational-wave transients search to analyze 86 GRBs and an analysis to target binary mergers with at least one neutron star as short GRB progenitors for 17 events. We find no significant evidence for gravitational-wave signals associated with any of these GRBs. A weighted binomial test of the combined results finds no evidence for subthreshold gravitational-wave signals associated with this GRB ensemble either. We use several source types and signal morphologies during the searches, resulting in lower bounds on the estimated distance to each GRB. Finally, we constrain the population of low-luminosity short GRBs using results from the first to the third observing runs of Advanced LIGO and Advanced Virgo. The resulting population is in accordance with the local binary neutron star merger rate. © 2022. The Author(s). Published by the American Astronomical Society
Narrowband Searches for Continuous and Long-duration Transient Gravitational Waves from Known Pulsars in the LIGO-Virgo Third Observing Run
- Author
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- Abbott T.D.
- Acernese F.
- Ackley K.
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- Publication venue
- London : Institute of Physics Publ.
- Publication date
- 01/01/2022
- Field of study
Isolated neutron stars that are asymmetric with respect to their spin axis are possible sources of detectable continuous gravitational waves. This paper presents a fully coherent search for such signals from eighteen pulsars in data from LIGO and Virgo's third observing run (O3). For known pulsars, efficient and sensitive matched-filter searches can be carried out if one assumes the gravitational radiation is phase-locked to the electromagnetic emission. In the search presented here, we relax this assumption and allow both the frequency and the time derivative of the frequency of the gravitational waves to vary in a small range around those inferred from electromagnetic observations. We find no evidence for continuous gravitational waves, and set upper limits on the strain amplitude for each target. These limits are more constraining for seven of the targets than the spin-down limit defined by ascribing all rotational energy loss to gravitational radiation. In an additional search, we look in O3 data for long-duration (hours-months) transient gravitational waves in the aftermath of pulsar glitches for six targets with a total of nine glitches. We report two marginal outliers from this search, but find no clear evidence for such emission either. The resulting duration-dependent strain upper limits do not surpass indirect energy constraints for any of these targets. © 2022. The Author(s). Published by the American Astronomical Society
Evolution of pseudo-arrhenotoky
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- Wei-Lan Ma
- Publication venue
- 'Springer Science and Business Media LLC'
- Publication date
- Field of study
The Psychological Science Acceleratorâs COVID-19 rapid-response dataset
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- 'Springer Science and Business Media LLC'
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- 11/02/2023
- Field of study
In response to the COVID-19 pandemic, the Psychological Science Accelerator coordinated three large-scale psychological studies to examine the effects of loss-gain framing, cognitive reappraisals, and autonomy framing manipulations on behavioral intentions and affective measures. The data collected (April to October 2020) included specific measures for each experimental study, a general questionnaire examining health prevention behaviors and COVID-19 experience, geographical and cultural context characterization, and demographic information for each participant. Each participant started the study with the same general questions and then was randomized to complete either one longer experiment or two shorter experiments. Data were provided by 73,223 participants with varying completion rates. Participants completed the survey from 111 geopolitical regions in 44 unique languages/dialects. The anonymized dataset described here is provided in both raw and processed formats to facilitate re-use and further analyses. The dataset offers secondary analytic opportunities to explore coping, framing, and self-determination across a diverse, global sample obtained at the onset of the COVID-19 pandemic, which can be merged with other time-sampled or geographic data
The Psychological Science Acceleratorâs COVID-19 rapid-response dataset
- Author
- Aberson C.L.
- Aczel B.
- Adamkovic M.
- Adamus S.
- Adetula A.
- Adetula G.A.
- AdıgĂŒzel A.
- Adoric V.C.
- Afhami R.
- Agadullina E.
- AGESIN B.E.
- Ahlgren L.P.
- Ahmed A.
- Akkas H.
- Albayrak-Aydemir N.
- Allred T.B.
- Almeida I.A.T.
- Alvarez D.S.
- Alves S.G.
- Anjum G.
- Anne M.
- Antazo B.G.
- Antfolk J.
- Anton-Boicuk L.
- Arinze A.I.
- Arinze N.C.
- Arriaga P.
- Aruta J.J.B.R.
- Arvanitis A.
- Askelund A.D.
- Azevedo F.
- Azouaghe S.
- Bai H.
- Baklanova E.
- Balci B.B.
- Ballantyne T.
- BanĂk G.
- Barzykowski K.
- Baskin E.
- Batres C.
- Bavolar J.
- Beaudry J.L.
- Becker M.
- Behzadnia B.
- Beitner J.
- Belaus A.
- Berkessel J.B.
- Beshears J.E.
- Bialobrzeska O.
- BiaĆek M.
- Bijlstra G.
- Bokkour A.
- Boudesseul J.
- Bran A.
- Buchanan E.M.
- Bundt C.
- Butt M.M.
- Calin-Jageman R.J.
- Capizzi M.
- Carpentier J.
- Cellini N.
- Chartier C.R.
- Charyate A.
- Chen Z.
- Chiu F.
- Chopik W.J.
- Chou W.
- Chuan-Peng H.
- Cohen N.
- Coles N.A.
- Collins W.M.
- Corral-Frias N.S.
- Cyrus-Lai W.
- Czamanski-Cohen J.
- Czarnek G.
- CĂĄrcamo R.A.
- Daches S.
- Dalgar I.
- Davis W.E.
- de Holanda Coelho G.L.
- de la Rosa-GĂłmez A.
- DeBruine L.M.
- del Carmen Tejada R M.
- Dixson B.J.W.
- Djamai I.
- Domurat A.
- Dorison C.A.
- Drexler S.M.
- Du H.
- Dubrov D.
- Esteban-Serna C.
- Eudave L.
- Fedotov M.
- Feldman G.
- Ferreira A.
- Filip K.
- Findor A.
- Forbes P.A.G.
- Foroni F.
- Forscher P.S.
- Frias-Armenta M.
- Fu C.H.Y.
- Galindo-Caballero O.J.
- Geiger S.J.
- Gibbs N.
- Gill B.P.
- Gill T.
- Gjoneska B.
- Godbersen H.
- Goldenberg A.
- Gourdon-Kanhukamwe A.
- Grano C.
- Grigoryev D.
- Gross J.J.
- Groyecka-Bernard A.
- Hajdu N.
- Hanel P.H.P.
- Hartanto A.
- Harutyunyan M.
- Heller B.
- Holford D.L.
- Hostler T.J.
- Hoyer K.
- Hricova M.
- Hristova E.
- HruĆĄka M.
- Hubena B.
- Ihaya K.
- IJzerman H.
- Isager P.M.
- Ishii T.
- Jaeger B.
- Janak A.P.
- Janssen S.M.J.
- Jaremka L.M.
- JernsÀther T.
- Jiang X.
- Jiménez-Leal W.
- Johannes N.
- Joy-Gaba J.A.
- Kaliska L.
- Kamburidis J.A.
- Kaminski G.
- Kappes H.B.
- Karaarslan C.
- Karababa A.
- Karekla M.
- Kassianos A.P.
- KaÄmĂĄr P.
- Khaoudi A.
- Khosla M.
- KieliĆska J.
- Kiselnikova N.
- Kocalar H.E.
- Koehn M.A.
- Koptjevskaja-Tamm M.
- Korbmacher M.
- Korobova T.
- Kossowska M.
- Kowal M.
- Kozma L.
- Krafnick A.J.
- KrupiÄ D.
- KrupiÄ D.
- Kung F.Y.H.
- Kunisato Y.
- Kunst J.R.
- Kurfalı M.
- Kushnir E.
- Kuzminska A.O.
- KĂĄcha O.
- Lamm C.
- Lazarevic L.B.
- Legate N.
- Levitan C.A.
- Lewis D.M.G.
- Lewis S.C.
- Li R.
- Lima T.J.S.
- Lins S.
- Luis E.O.
- Macapagal P.M.L.
- Majeed N.M.
- Mallik P.R.
- Manavalan M.
- Manunta E.
- Marcu G.-M.
- MartonÄik M.
- Massoni S.
- Maturan P.L.G.
- McCarthy R.
- McFall J.P.
- Mensink M.C.
- Metin-Orta I.
- Miller J.K.
- Mioni G.
- Misiak M.
- Mokady A.
- Monteiro R.P.
- Morales-Izquierdo S.
- Moreau D.
- Mosannenzadeh F.
- Moshontz H.
- Muchembled F.
- Muda R.
- Musser E.D.
- Ndukaihe I.L.G.
- Nedelcheva-Datsova M.
- Nilsonne G.
- Nock N.L.
- Noone C.
- Ogbonnaya C.E.
- Oliveira R.
- Olofsson J.K.
- Onie S.
- Ostermann T.
- Overkott C.
- OÄovaj S.B.
- Paltrow T.E.
- Pantazi M.
- Papadatou-Pastou M.
- Paris B.
- Paruzel-Czachura M.
- Parzuchowski M.
- Pavlacic J.M.
- Perillo J.T.
- Pfuhl G.
- Pit I.L.
- Pourafshari R.
- Primbs M.A.
- Pronizius E.
- Pöntinen S.J.
- Rachev N.R.
- Radtke T.
- Rahal R.-M.
- Reeck C.
- Rees V.W.
- Reggev N.
- Reips U.-D.
- Ren D.
- Ribeiro M.F.F.
- Ribeiro R.R.
- Roczniewska M.
- Ropovik I.
- Rosa A.D.
- Ross R.M.
- Rothman A.J.
- Ruiz-Fernandez S.
- Ryan R.M.
- Röer J.P.
- Santos A.C.
- Say N.
- Saçaklı A.
- Schei V.
- Schmidt K.
- Schmidt N.-D.
- Schrötter J.
- Seehuus M.
- Sharifian M.
- Silan M.A.A.
- Silva J.R.
- Sirota M.
- Solorzano C.S.
- Sorokowska A.
- Sorokowski P.
- Soto J.A.
- Sousa D.
- Staniaszek K.
- Stephen I.D.
- Stieger S.
- Storage D.S.
- Studzinska A.
- Suchow J.W.
- Sunami N.
- Suter L.
- Sutherland C.A.M.
- Sverdrup T.E.
- Szala A.
- Szaszi B.
- Szwed P.
- Tamnes C.K.
- Tatachari S.
- Thi Nguyen T.-V.
- Thomas A.G.
- Todsen A.L.
- Torres A.J.O.
- Tran U.S.
- Travaglino G.A.
- Tullett A.M.
- TĂŒmer M.
- Urban J.
- Urooj A.
- Uttley J.
- Vaidis D.C.
- Vally Z.
- Van Doren N.
- van Schie K.
- Vasilev M.R.
- Vaughn L.A.
- Vdovic M.
- Vega D.
- Venegas M.C.T.
- Verbruggen F.
- Verharen J.P.H.
- Vezirian K.
- Vieira L.
- Vilar R.
- Vilares I.
- Vilsmeier J.K.
- Vintr J.
- Volz L.
- von Bastian C.C.
- Voracek M.
- Vranka M.A.
- Walczak R.B.
- Wang K.
- Warmelink L.
- Westerlund M.
- Westgate E.C.
- Wichman A.L.
- Willis M.L.
- Wolfe K.
- Xiao Q.
- Yamada Y.
- Yeung S.K.
- Yu K.
- Zakharov I.
- Zambrano D.
- Zdybek P.M.
- Ziano I.
- Zickfeld J.H.
- Zorjan S.
- Zsido A.N.
- Ăoksan S.
- ĂzdoÄru A.A.
- Äadek M.
- ÄorÄeviÄ J.M.
- Ć akan D.D.
- Ć trukelj E.
- Ćœuro B.
- Publication venue
- 'Springer Science and Business Media LLC'
- Publication date
- 11/02/2023
- Field of study
In response to the COVID-19 pandemic, the Psychological Science Accelerator coordinated three large-scale psychological studies to examine the effects of loss-gain framing, cognitive reappraisals, and autonomy framing manipulations on behavioral intentions and affective measures. The data collected (April to October 2020) included specific measures for each experimental study, a general questionnaire examining health prevention behaviors and COVID-19 experience, geographical and cultural context characterization, and demographic information for each participant. Each participant started the study with the same general questions and then was randomized to complete either one longer experiment or two shorter experiments. Data were provided by 73,223 participants with varying completion rates. Participants completed the survey from 111 geopolitical regions in 44 unique languages/dialects. The anonymized dataset described here is provided in both raw and processed formats to facilitate re-use and further analyses. The dataset offers secondary analytic opportunities to explore coping, framing, and self-determination across a diverse, global sample obtained at the onset of the COVID-19 pandemic, which can be merged with other time-sampled or geographic data
Search for gravitational-wave transients associated with magnetar bursts in advanced LIGO and advanced Virgo data from the third observing run
- Author
- Abbott R
- Abe H
- Acernese F
- Ackley K
- Adhikari N
- Adhikari R.X
- Adkins V.K
- Adya V.B
- Affeldt C
- Agarwal D
- Agathos M
- Agatsuma K
- Aggarwal N
- Aguiar O.D
- Aiello L
- Ain A
- Ajith P
- Akutsu T
- Albanesi S
- Alfaidi R.A
- Allocca A
- Altin P.A
- Amato A
- Anand C
- Anand S
- Ananyeva A
- Anderson S.B
- Anderson W.G
- Ando M
- Andrade T
- Andres N
- AndriÄ T
- Andrés-Carcasona M
- Angelova S.V
- Ansoldi S
- Antelis J.M
- Antier S
- Apostolatos T
- Appavuravther E.Z
- Appert S
- Apple S.K
- Arai K
- Araya A
- Araya M.C
- Areeda J.S
- Arellano F.E. Peña
- Aritomi N
- Arnaud N
- Arogeti M
- Aronson S.M
- ArĂšne M
- Asada H
- Asali Y
- Ashton G
- Aso Y
- Assiduo M
- Aston S.M
- Astone P
- Aubin F
- Aultoneal K
- Austin C
- Babak S
- Badaracco F
- Bader M.K. M
- Badger C
- Bae S
- Bae Y
- Baer A.M
- Bagnasco S
- Bai Y
- Baird J
- Bajpai R
- Baka T
- Ball M
- Ballardin G
- Ballmer S.W
- Balsamo A
- Baltus G
- Banagiri S
- Banerjee B
- Bankar D
- Barayoga J.C
- Barbieri C
- Barish B.C
- Barker D
- Barneo P
- Barone F
- Barr B
- Barsotti L
- Barsuglia M
- Barta D
- Bartlett J
- Barton M.A
- Bartos I
- Basak S
- Bassiri R
- Basti A
- Bawaj M
- Bayley J.C
- Bazzan M
- Becher B.R
- Bedakihale V.M
- Beirnaert F
- Bejger M
- Belahcene I
- Benedetto V
- Beniwal D
- Benjamin M.G
- Bennett T.F
- Bentley J.D
- Benyaala M
- Bera S
- Berbel M
- Bergamin F
- Berger B.K
- Bernuzzi S
- Bersanetti D
- Bertolini A
- Betzwieser J
- Beveridge D
- Bhandare R
- Bhandari A.V
- Bhardwaj U
- Bhatt R
- Bhattacharjee D
- Bhaumik S
- Bianchi A
- Bilenko I.A
- Billingsley G
- Bini S
- Birney R
- Birnholtz O
- Biscans S
- Bischi M
- Biscoveanu S
- Bisht A
- Biswas B
- Bitossi M
- Bizouard M.-A
- Blackburn J.K
- Blair C.D
- Blair D.G
- Blair R.M
- Bobba F
- Bode N
- Bogaert G
- Boldrini M
- Bolingbroke G.N
- Bonavena L.D
- Bondu F
- Bonilla E
- Bonnand R
- Booker P
- Boom B.A
- Bork R
- Boschi V
- Bose N
- Bose S
- Bossilkov V
- Boudart V
- Bouffanais Y
- Bozzi A
- Boër M
- Bradaschia C
- Brady P.R
- Bramley A
- Branch A
- Branchesi M
- Brau J.E
- Breschi M
- Briant T
- Briggs J.H
- Brillet A
- Brinkmann M
- Brockill P
- Brooks A.F
- Brooks J
- Brown D.D
- Brunett S
- Bruno G
- Bruntz R
- Bryant J
- Bucci F
- Bulik T
- Bulten H.J
- Buonanno A
- Burtnyk K
- Buscicchio R
- Buskulic D
- Buy C
- Byer R.L
- BĂ©csy B
- Cabourn Davies G.S
- Cabras G
- Cabrita R
- Cadonati L
- Caesar M
- Cagnoli G
- Cahillane C
- CalderĂłn Bustillo J
- Callaghan J.D
- Callister T.A
- Calloni E
- Cameron J
- Camp J.B
- Canepa M
- Canevarolo S
- Cannavacciuolo M
- Cannon K.C
- Cao H
- Cao Z
- Capocasa E
- Capote E
- Carapella G
- Carbognani F
- Carlassara M
- Carlin J.B
- Carney M.F
- Carpinelli M
- Carrillo G
- Carullo G
- Carver T.L
- Casentini C
- Castaldi G
- Caudill S
- CavagliĂ M
- Cavalier F
- Cavalieri R
- Cella G
- CerdĂĄ-DurĂĄn P
- Cesarini E
- Chaibi W
- Champion E
- Chan C
- Chan C.-H
- Chan C.L
- Chan K
- Chan M
- Chandra K
- Chang I.P
- Chanial P
- Chao S
- Chapman-Bird C
- Charlton P
- Chase E.A
- Chassande-Mottin E
- Chatterjee C
- Chatterjee Debarati
- Chatterjee Deep
- Chaturvedi M
- Chaty S
- Chen C
- Chen D
- Chen H.Y
- Chen J
- Chen K
- Chen X
- Chen Y.-B
- Chen Y.-R
- Chen Z
- Cheng H
- Cheong C.K
- Cheung H.Y
- Chia H.Y
- Chiadini F
- Chiang C-Y
- Chiarini G
- Chierici R
- Chincarini A
- Chiofalo M.L
- Chiummo A
- Choudhary R.K
- Choudhary S
- Christensen N
- Chu Q
- Chu Y-K
- Chua S.S. Y
- Chung K.W
- Ciani G
- Ciecielag P
- CieĆlar M
- Cifaldi M
- Ciobanu A.A
- Ciolfi R
- Cipriano F
- Clara F
- Clark J.A
- Clearwater P
- Clesse S
- Cleva F
- Coccia E
- Codazzo E
- Cohadon P.-F
- Cohen D.E
- Colleoni M
- Collette C.G
- Colombo A
- Colpi M
- Compton C.M
- Constancio M
- Conti L
- Cooper S.J
- Corban P
- Corbitt T.R
- Cordero-CarriĂłn I
- Corezzi S
- Corley K.R
- Cornish N.J
- Corre D
- Corsi A
- Cortese S
- Costa C.A
- Cotesta R
- Cottingham R
- Coughlin M.W
- Coulon J.-P
- Countryman S.T
- Cousins B
- Couvares P
- Coward D.M
- Cowart M.J
- Coyne D.C
- Coyne R
- Creighton J.D. E
- Creighton T.D
- Criswell A.W
- Croquette M
- Crowder S.G
- Cudell J.R
- Cullen T.J
- Cumming A
- Cummings R
- Cunningham L
- Cuoco E
- CuryĆo M
- d'Angelo B
- d'Antonio S
- d'Emilio V
- d'Onofrio L
- d'Urso D
- Dabadie P
- Dal Canton T
- Dall'Osso S
- Dana A
- Danilishin S
- Danzmann K
- Darsow-Fromm C
- Dasgupta A
- Datrier L.E. H
- Datta Sayak
- Datta Sayantani
- Dattilo V
- Dave I
- Davier M
- Davis D
- Davis M.C
- Daw E.J
- de Laurentis M
- de Lillo F
- de Lillo N
- de Matteis F
- de Pietri R
- De Rosa R
- de Rossi C
- de Simone R
- Dean R
- Debra D
- Deenadayalan M
- Degallaix J
- del Favero V
- del Pozzo W
- Dell'Aquila D
- Deléglise S
- Demarchi L.M
- Demos N
- Dent T
- Depasse A
- Desalvo R
- Dhurandhar S
- Di Fiore L
- Di Fronzo C
- Di Giorgio C
- Di Giovanni F
- Di Giovanni M
- Di Girolamo T
- Di Lieto A
- Di Michele A
- Di Pace S
- Di Palma I
- Di Renzo F
- Diaz J. Casanueva
- Didio N.A
- Dietrich T
- Ding B
- Divakarla A.K
- Dmitriev A
- Doctor Z
- Donahue L
- Donovan F
- Dooley K.L
- Doravari S
- Drago M
- Driggers J.C
- Drori Y
- Ducoin J.-G
- Dupej P
- Dupletsa U
- Durante O
- Duverne P.-A
- Dwyer S.E
- DĂĄlya G
- DĂaz M.C
- Eassa C
- Easter P.J
- Ebersold M
- Eckhardt T
- Eddolls G
- Edelman B
- Edo T.B
- Edy O
- Effler A
- Eguchi S
- Eichholz J
- Eikenberry S.S
- Eisenmann M
- Eisenstein R.A
- Ejlli A
- Engelby E
- Enomoto Y
- Errico L
- Essick R.C
- Estellés H
- Estevez D
- Etienne Z
- Etzel T
- Evans M
- Evans T.M
- Evstafyeva T
- Ewing B.E
- Fabrizi F
- Faedi F
- Fafone V
- Fair H
- Fairhurst S
- Fan P.C
- Farah A.M
- Farinon S
- Farr B
- Farr W.M
- Fauchon-Jones E.J
- Favaro G
- Favata M
- Fays M
- Fazio M
- Feicht J
- Fejer M.M
- Fenyvesi E
- Ferguson D.L
- Fernandez-Galiana A
- Ferrante I
- Ferreira T.A
- Fidecaro F
- Figura P
- Fiori A
- Fiori I
- Fishbach M
- Fisher R.P
- Fittipaldi R
- Fiumara V
- Flaminio R
- Floden E
- Fong H.K
- Font J.A
- Fornal B
- Forsyth P.W. F
- Franke A
- Frasca S
- Frasconi F
- Freed J.P
- Frei Z
- Freise A
- Freitas O
- Frey R
- Fritschel P
- Frolov V.V
- Fronzé G.G
- Fujii Y
- Fujikawa Y
- Fujimoto Y
- Fulda P
- Fyffe M
- Gabbard H.A
- Gabella W.E
- Gadre B.U
- Gair J.R
- Gais J
- Galaudage S
- Gamba R
- Ganapathy D
- Ganguly A
- Gao D
- Gaonkar S.G
- Garaventa B
- GarcĂa-QuirĂłs C
- Garufi F
- Gateley B
- Gayathri V
- Ge G.-G
- Gemme G
- Gennai A
- George J
- Gerberding O
- Gergely L
- Gewecke P
- Ghonge S
- Ghosh Abhirup
- Ghosh Archisman
- Ghosh Shaon
- Ghosh Shrobana
- Ghosh Tathagata
- Giacomazzo B
- Giacoppo L
- Giaime J.A
- Giardina K.D
- Gibson D.R
- Gier C
- Giesler M
- Giri P
- Gissi F
- Gkaitatzis S
- Glanzer J
- Gleckl A.E
- Godwin P
- Goetz E
- Goetz R
- Gohlke N
- Golomb J
- Goncharov B
- GonzĂĄlez G
- Gosselin M
- Gouaty R
- Gould D.W
- Goyal S
- Grace B
- Grado A
- Graham V
- Granata M
- Granata V
- Grant A
- Gras S
- Grassia P
- Gray C
- Gray R
- Greco G
- Green A.C
- Green R
- Gretarsson A.M
- Gretarsson E.M
- Griffith D
- Griffiths W.L
- Griggs H.L
- Grignani G
- Grimaldi A
- Grimes E
- Grimm S.J
- Grote H
- Grunewald S
- Gruning P
- Gruson A.S
- Guerra D
- Guidi G.M
- Guimaraes A.R
- Guixé G
- Gulati H.K
- Gunny A.M
- Guo H.-K
- Guo Y
- Gupta Anchal
- Gupta Anuradha
- Gupta I.M
- Gupta P
- Gupta S.K
- Gustafson R
- Guzman F
- Ha S
- Hadiputrawan I.P. W
- Haegel L
- Haino S
- Halim O
- Hall E.D
- Hamilton E.Z
- Hammond G
- Han W.-B
- Haney M
- Hanks J
- Hanna C
- Hannam M.D
- Hannuksela O
- Hansen H
- Hansen T.J
- Hanson J
- Harder T
- Haris K
- Harms J
- Harry G.M
- Harry I.W
- Hartwig D
- Hasegawa K
- Haskell B
- Haster C.-J
- Hathaway J.S
- Hattori K
- Haughian K
- Hayakawa H
- Hayama K
- Hayes F.J
- Healy J
- Heidmann A
- Heidt A
- Heintze M.C
- Heinze J
- Heinzel J
- Heitmann H
- Hellman F
- Hello P
- Helmling-Cornell A.F
- Hemming G
- Hendry M
- Heng I.S
- Hennes E
- Hennig J
- Hennig M.H
- Henshaw C
- Hernandez A.G
- Hernandez I. Magaña
- Heurs M
- Hewitt A.L
- Higginbotham S
- Hild S
- Hill P
- Himemoto Y
- Hines A.S
- Hirata N
- Hirose C
- Ho T-C
- Hochheim S
- Hofman D
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- Holcomb D.G
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- Yeh S.-W
- Yelikar A.B
- Ying M
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- Yokozawa T
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- Zhu Z.-H
- Zucker M.E
- Zweizig J
- Publication venue
- American Astronomical Society
- Publication date
- 01/01/2024
- Field of study
Gravitational waves are expected to be produced from neutron star oscillations associated with magnetar giant f lares and short bursts. We present the results of a search for short-duration (milliseconds to seconds) and longduration (âŒ100 s) transient gravitational waves from 13 magnetar short bursts observed during Advanced LIGO, Advanced Virgo, and KAGRAâs third observation run. These 13 bursts come from two magnetars, SGR1935 +2154 and SwiftJ1818.0â1607. We also include three other electromagnetic burst events detected by FermiGBM which were identified as likely coming from one or more magnetars, but they have no association with a known magnetar. No magnetar giant flares were detected during the analysis period. We find no evidence of gravitational waves associated with any of these 16 bursts. We place upper limits on the rms of the integrated incident gravitational-wave strain that reach 3.6 Ă 10âÂČÂł Hz at 100 Hz for the short-duration search and 1.1 Ă10âÂČÂČ Hz at 450 Hz for the long-duration search. For a ringdown signal at 1590 Hz targeted by the short-duration search the limit is set to 2.3 Ă 10âÂČÂČ Hz. Using the estimated distance to each magnetar, we derive upper limits upper limits on the emitted gravitational-wave energy of 1.5 Ă 1044 erg (1.0 Ă 1044 erg) for SGR 1935+2154 and 9.4 Ă 10^43 erg (1.3 Ă 1044 erg) for Swift J1818.0â1607, for the short-duration (long-duration) search. Assuming isotropic emission of electromagnetic radiation of the burst ïŹuences, we constrain the ratio of gravitational-wave energy to electromagnetic energy for bursts from SGR 1935+2154 with the available ïŹuence information. The lowest of these ratios is 4.5 Ă 103
A joint Fermi-GBM and Swift-BAT analysis of gravitational-wave candidates from the third gravitational-wave observing run
- Author
- Abbott R.
- Abe H.
- Acernese F.
- Ackley K.
- Adhikari N.
- Adhikari R.X.
- Adkins V.K.
- Adya V.B.
- Affeldt C.
- Agarwal D.
- Agathos M.
- Agatsuma K.
- Aggarwal N.
- Aguiar O.D.
- Aiello L.
- Ain A.
- Ajith P.
- Akutsu T.
- Albanesi S.
- Alfaidi R.A.
- Allocca A.
- Altin P.A.
- Amato A.
- Anand C.
- Anand S.
- Ananyeva A.
- Anderson S.B.
- Anderson W.G.
- Ando M.
- Andrade T.
- Andres N.
- AndriÄ T.
- Andrés-Carcasona M.
- Angelova S.V.
- Ansoldi S.
- Antelis J.M.
- Antier S.
- Apostolatos T.
- Appavuravther E.Z.
- Appert S.
- Apple S.K.
- Arai K.
- Araya A.
- Araya M.C.
- Areeda J.S.
- Arellano F.E.P.
- Aritomi N.
- Arnaud N.
- Arogeti M.
- Aronson S.M.
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- Zweizig J.
- Publication venue
- American Astronomical Society
- Publication date
- 01/04/2024
- Field of study
We present Fermi Gamma-ray Burst Monitor (Fermi-GBM) and Swift Burst Alert Telescope (Swift-BAT) searches for gamma-ray/X-ray counterparts to gravitational-wave (GW) candidate events identified during the third observing run of the Advanced LIGO and Advanced Virgo detectors. Using Fermi-GBM onboard triggers and subthreshold gamma-ray burst (GRB) candidates found in the Fermi-GBM ground analyses, the Targeted Search and the Untargeted Search, we investigate whether there are any coincident GRBs associated with the GWs. We also search the Swift-BAT rate data around the GW times to determine whether a GRB counterpart is present. No counterparts are found. Using both the Fermi-GBM Targeted Search and the Swift-BAT search, we calculate flux upper limits and present joint upper limits on the gamma-ray luminosity of each GW. Given these limits, we constrain theoretical models for the emission of gamma rays from binary black hole mergers
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