All-sky search for periodic gravitational waves in LIGO S4 data [Phys. Rev. D 77, 022001 (2008)] [Erratum]

B Abbott,Robert D Abbott, R Adhikari,J Agresti, P Ajith,Ben Allen,R Amin,S Anderson,W G Anderson,M A Arain, M Araya,H Armandula, M Ashley,S M Aston,P Aufmuth, C Aulbert, S Babak,S Ballmer,H Bantilan,B C Barish,Clyde F Barker,D Barker,B Barr,P Barriga,M A Barton,K Bayer,K Belczynski, J Betzwieser,P T Beyersdorf,B Bhawal,I A Bilenko,G Billingsley,Rajatsubhra Biswas,E Black,K Blackburn,L Blackburn, D G Blair,B Bland,J Bogenstahl,L Bogue,R Bork,V Boschi, S Bose,P R Brady,V B Braginsky,J Brau, M Brinkmann, A F Brooks, D A Brown,A Bullington,A Bunkowski, A Buonanno,O Burmeister,D Busby,Robert L Byer,L Cadonati,G Cagnoli, J B Camp,John K Cannizzo,K Cannon, C A Cantley,J Cao,L Cardenas,M M Casey,G Castaldi, C Cepeda,E Chalkey,P Charlton,S Chatterji,S Chelkowski,Y Chen,Francesco Chiadini,D Chin,E Chin, J Chow,Neil D Christensen,J A Clark,P Cochrane,T Cokelaer,C N Colacino,R Coldwell,R Conte,Deborah J Cook,T Corbitt, D H Coward,D G Coyne,J D E Creighton,T D Creighton,R P Croce,D R M Crooks,A M Cruise, A Cumming,John L Dalrymple,E Dambrosio,Karsten Danzmann, G Davies,D Debra,J Degallaix,M Degree,T Demma,V Dergachev,S Desai,R Desalvo,S Dhurandhar, M Diaz,James Dickson,A Di Credico,G Diederichs,A Dietz,E E Doomes, R W P Drever,J C Dumas,R J Dupuis, J G Dwyer,P Ehrens,E Espinoza,T Etzel, M Evans,T Evans,Stephen Fairhurst, Ying Fan,D Fazi, M M Fejer,Lee Samuel Finn,Vincenzo Fiumara,N Fotopoulos,A Franzen,K Y Franzen, A Freise,R Frey,T Fricke,P Fritschel,V V Frolov,M Fyffe,Vincenzo Galdi,J Garofoli,I Gholami,J A Giaime, S Giampanis,K D Giardina,K Goda,E Goetz,L M Goggin, G Gonzalez,S Gossler,A Grant,S Gras,Charles A Gray,Malcolm B Gray,J Greenhalgh,A M Gretarsson, R Grosso,H Grote,S Grunewald,M Guenther,R Gustafson, B Hage,Daniel A Hammer, Charles Hanna,J Hanson,J Harms,G M Harry,E D Harstad,T Hayler,J Heefner,I S Heng,A Heptonstall,M Heurs,M Hewitson, S Hild,E Hirose, D Hoak,D J Hosken, J Hough,E Howell,D Hoyland, S H Huttner,D R Ingram,E Innerhofer,Masaharu Ito, Yoshinori Itoh,Andrew Ivanov,D Jackrel, B M Johnson,W Johnson,D I Jones, G Jones,R W L Jones, L Ju,P I P Kalmus, V Kalogera,D Kasprzyk,E Katsavounidis,K Kawabe, Shozo Kawamura, F Kawazoe,W Kells,D G Keppel,F Ya Khalili,C Kim,P King,J S Kissel,S Klimenko, K Kokeyama,V Kondrashov,R Kopparapu,D Kozak, B Krishnan,P Kwee,Ping Koy Lam,M L Landry, Brian Thomas Lantz,A Lazzarini,B Lee,Ming Lei,J Leiner,V Leonhardt,I Leonor, K Libbrecht,P Lindquist,N A Lockerbie,M J Longo,M Lormand,M Lubinski,H Luck, B Machenschalk,M Macinnis,M Mageswaran, K Mailand,M Malec,V Mandic,S Marano,S Marka,J Markowitz,E Maros, Ismael San Mauro Martin,J N Marx, Kathy A Mason,L Matone, Vincenzo Matta, N Mavalvala,R Mccarthy,D E Mcclelland,S C Mcguire,M Mchugh, K Mckenzie,J W C Mcnabb,Sean T Mcwilliams,T Meier, A C Melissinos,G Mendell,R A Mercer,S Meshkov,E Messaritaki,C Messenger,Deborah A Meyers,Eugeniy E Mikhailov, Susweta Das Mitra,V P Mitrofanov, G Mitselmakher,R Mittleman,O Miyakawa,S Mohanty,G Moreno,K Mossavi, C Mowlowry,A Moylan, David W Mudge, Greg M Mueller,S Mukherjee,H Mullerebhardt,J Munch,P Murray,E Myers,J Myers,T Nash, G J Newton,A Nishizawa,Kenji Numata,B Oreilly,R Oshaughnessy,D J Ottaway,H Overmier, B J Owen,Y Pan,M Papa,V Parameshwaraiah,P M Patel,M Pedraza,S Penn,V Pierro,I M Pinto, M Pitkin, H J Pletsch,M V Plissi,F Postiglione,R Prix,V Quetschke,F J Raab, D S Rabeling,H Radkins,R Rahkola,N Rainer, M Rakhmanov,M Ramsunder,K Rawlins,S Raymajumder,V Re,H Rehbein, Siobhan Reid, D H Reitze,L Ribichini,R Riesen, K Riles,B Rivera,N A Robertson,C Robinson, E L Robinson,S Roddy, Antonio Guerrero Rodriguez,A M Rogan,J Rollins, J D Romano, J H Romie, R K Route,S Rowan,A Rudiger,L Ruet,P C Russell,Kevin M Ryan,Shinichi Sakata,M Samidi,L Sancho De La Jordana,V Sandberg,V Sannibale,S Saraf,P Sarin, B S Sathyaprakash,Shusei Sato,P R Saulson,Richard S Savage,P Savov,S Schediwy,Richard J Schilling,R Schnabel, R Schofield,Bernard F Schutz,P Schwinberg,S M Scott,A C Searle,Barbara B Sears,Frank Seifert,D Sellers,A S Sengupta,P Shawhan, D H Shoemaker,A Sibley,John A Sidles,X Siemens, D Sigg, Siddhartha Sinha,A M Sintes,B J J Slagmolen,J Slutsky,J R Smith,Michael R Smith, K Somiya,K A Strain,D Strom,A L Stuver,T Z Summerscales,K X Sun,M Sung,P J Sutton,H Takahashi,D B Tanner,M Tarallo,R L Taylor,J Thacker,Kip S Thorne,A Thuring,K V Tokmakov,Clivia M Sotomayor Torres,C I Torrie,G Traylor,M Trias,W Tyler, D Ugolini,C Ungarelli,K Urbanek, H Vahlbruch, M Vallisneri,C Van Den Broeck,M Varvella,S Vass, A Vecchio, J Veitch,P S Veitch,A Villar,C Vorvick,S P Vyachanin,S J Waldman,Louise M Wallace,H Ward,R L Ward,K Watts,D Webber,Alison C Weidner,M Weinert,A J R Weinstein,Robin A Weiss,Sijin Wen,K Wette,J T Whelan,D M Whitbeck,S E Whitcomb,B F Whiting,C D W Wilkinson,P A Willems, Linda S Williams, B Willke,Ian Wilmut,W Winkler, C C Wipf, Sandra S Wise,A G Wiseman,G Woan, David R Woods,R Wooley,J Worden, Wei Wu,I Yakushin,Hiroshi Yamamoto, Zhiming Yan, Shigeo Yoshida,Nicolas Yunes,M Zanolin, Jing Zhang,Liming Zhang,C Zhao, N Zotov,M E Zucker,H Zur Muhlen,J Zweizig

PHYSICAL REVIEW D(2009)

引用 8|浏览97
暂无评分
摘要
We report on an all-sky search with the LIGO detectors for periodic gravitational waves in the frequency range 50-1000 Hz and with the frequency's time derivative in the range -1.0E-8 Hz/s to zero. Data from the fourth LIGO science run (S4) have been used in this search. Three different semi-coherent methods of transforming and summing strain power from Short Fourier Transforms (SFTs) of the calibrated data have been used. The first, known as "StackSlide", averages normalized power from each SFT. A "weighted Hough" scheme is also developed and used, and which also allows for a multi-interferometer search. The third method, known as "PowerFlux", is a variant of the StackSlide method in which the power is weighted before summing. In both the weighted Hough and PowerFlux methods, the weights are chosen according to the noise and detector antenna-pattern to maximize the signal-to-noise ratio. The respective advantages and disadvantages of these methods are discussed. Observing no evidence of periodic gravitational radiation, we report upper limits; we interpret these as limits on this radiation from isolated rotating neutron stars. The best population-based upper limit with 95% confidence on the gravitational-wave strain amplitude, found for simulated sources distributed isotropically across the sky and with isotropically distributed spin-axes, is 4.28E-24 (near 140 Hz). Strict upper limits are also obtained for small patches on the sky for best-case and worst-case inclinations of the spin axes.
更多
查看译文
AI 理解论文
溯源树
样例
生成溯源树,研究论文发展脉络
Chat Paper
正在生成论文摘要