Discovery of a second outbursting hyperluminous X-ray source
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[1] A. Ferrara,et al. Initial mass function of intermediate-mass black hole seeds , 2014, 1406.6685.
[2] Hua Feng,et al. Ultraluminous X-ray sources in the Chandra and XMM-Newton era , 2011, 1109.1610.
[3] Simon F. Portegies Zwart,et al. The Runaway Growth of Intermediate-Mass Black Holes in Dense Star Clusters , 2002, astro-ph/0201055.
[4] K. Wiersema,et al. OPTICAL VARIABILITY OF THE ACCRETION DISK AROUND THE INTERMEDIATE-MASS BLACK HOLE ESO 243-49 HLX-1 DURING THE 2012 OUTBURST , 2013, 1311.6912.
[5] T. Roberts,et al. The powerful jet of an off-nuclear intermediate-mass black hole in the spiral galaxy NGC 2276 , 2015, 1501.04897.
[6] Toshikazu Ebisuzaki,et al. UvA-DARE ( Digital Academic Repository ) Missing Link Found ? The " Runaway " Path to Supermassive Black Holes , 2001 .
[7] K. Abazajian,et al. THE SEVENTH DATA RELEASE OF THE SLOAN DIGITAL SKY SURVEY , 2008, 0812.0649.
[8] T. Roberts,et al. The ultraluminous state revisited: fractional variability and spectral shape as diagnostics of super-Eddington accretion , 2013, 1307.8044.
[9] J. Bregman,et al. Puzzling accretion onto a black hole in the ultraluminous X-ray source M 101 ULX-1 , 2013, Nature.
[10] E. Dalessandro,et al. THE VELOCITY DISPERSION PROFILE OF NGC 6388 FROM RESOLVED-STAR SPECTROSCOPY: NO EVIDENCE OF A CENTRAL CUSP AND NEW CONSTRAINTS ON THE BLACK HOLE MASS , 2013, 1304.2953.
[11] Tod E. Strohmayer,et al. Discovery of X-Ray Quasi-periodic Oscillations from an Ultraluminous X-Ray Source in M82: Evidence against Beaming , 2003, astro-ph/0303665.
[12] M. Servillat,et al. X-RAY VARIABILITY AND HARDNESS OF ESO 243–49 HLX-1: CLEAR EVIDENCE FOR SPECTRAL STATE TRANSITIONS , 2011, 1108.4405.
[13] Andrew E. Dolphin,et al. WFPC2 Stellar Photometry with HSTphot , 2000, astro-ph/0006217.
[14] P. Martini,et al. Coevolution of Black Holes and Galaxies , 2004 .
[15] A. Fabian,et al. A bright off-nuclear X-ray source: A bright off-nuclear X-ray source: a type IIn supernova, a bright ULX or a recoiling super-massive black hole in CXO J122518.6+144545 , 2010, 1004.5379.
[16] N. Gehrels,et al. THE ORIGIN OF VARIABILITY OF THE INTERMEDIATE-MASS BLACK-HOLE ULX SYSTEM HLX-1 IN ESO 243-49 , 2011, 1102.4336.
[17] A. King,et al. HLX-1 may be an SS433 system , 2014, 1407.0557.
[18] L. Infante,et al. THE ACS FORNAX CLUSTER SURVEY. VIII. THE LUMINOSITY FUNCTION OF GLOBULAR CLUSTERS IN VIRGO AND FORNAX EARLY-TYPE GALAXIES AND ITS USE AS A DISTANCE INDICATOR , 2010, 1004.2883.
[19] M. Servillat,et al. CHANDRA AND SWIFT FOLLOW-UP OBSERVATIONS OF THE INTERMEDIATE-MASS BLACK HOLE IN ESO 243-49 , 2010, 1002.3625.
[20] C. Heinke,et al. THE DISCOVERY OF A VERY FAINT X-RAY TRANSIENT IN THE GLOBULAR CLUSTER M15 , 2008, 0810.3909.
[21] D. Burrows,et al. Determination of Confidence Limits for Experiments with Low Numbers of Counts , 1991 .
[22] N. Gehrels. Confidence limits for small numbers of events in astrophysical data , 1986 .
[23] The Low-Mass X-Ray Binary and Globular Cluster Connection in Virgo Cluster Early-Type Galaxies: Optical Properties , 2006, astro-ph/0611237.
[24] A. King,et al. X-RAY TRANSIENTS: HYPER- OR HYPO-LUMINOUS? , 2015, 1502.00103.
[25] Jay Anderson,et al. A DEEP CHANDRA X-RAY LIMIT ON THE PUTATIVE IMBH IN OMEGA CENTAURI , 2013, 1307.6217.
[26] M. Raddick,et al. The Fifth Data Release of the Sloan Digital Sky Survey , 2007, 0707.3380.
[27] J. Lombardi,et al. IMPLICATIONS OF THE DELAYED 2013 OUTBURST OF ESO 243-49 HLX-1 , 2014, 1408.1819.
[28] Martin J. Rees,et al. Formation of supermassive black holes by direct collapse in pre-galactic haloes , 2006, astro-ph/0602363.
[29] K. Gebhardt,et al. Kinematic signature of an intermediate-mass black hole in the globular cluster NGC 6388 , 2011, 1107.4243.
[30] T. P. Roberts,et al. The Ultraluminous State , 2009, 0905.4076.
[31] N. Gehrels,et al. FIRST EVIDENCE FOR SPECTRAL STATE TRANSITIONS IN THE ESO 243-49 HYPERLUMINOUS X-RAY SOURCE HLX-1 , 2009, 0909.4458.
[32] W. Cash,et al. Parameter estimation in astronomy through application of the likelihood ratio. [satellite data analysis techniques , 1979 .
[33] Martin J. Rees,et al. ApJ, in press Preprint typeset using L ATEX style emulateapj v. 04/03/99 MASSIVE BLACK HOLES AS POPULATION III REMNANTS , 2001 .
[34] P. Kaaret,et al. A MAJOR X-RAY OUTBURST FROM AN ULTRALUMINOUS X-RAY SOURCE IN M82 , 2008, 0810.5134.
[35] R. Wijnands,et al. The nature of very faint X-ray binaries: hints from light curves , 2014, 1412.4097.
[36] J. Dickey,et al. H I in the Galaxy , 1990 .
[37] R. Mushotzky,et al. A 400-solar-mass black hole in the galaxy M82 , 2014, Nature.
[38] J. Greene,et al. DWARF GALAXIES WITH OPTICAL SIGNATURES OF ACTIVE MASSIVE BLACK HOLES , 2013, 1308.0328.
[39] Didier Barret,et al. An intermediate-mass black hole of over 500 solar masses in the galaxy ESO 243-49 , 2009, Nature.
[40] L. Ho,et al. A New Sample of Low-Mass Black Holes in Active Galaxies , 2007, 0707.2617.
[41] L. Chomiuk,et al. NO EVIDENCE FOR INTERMEDIATE-MASS BLACK HOLES IN GLOBULAR CLUSTERS: STRONG CONSTRAINTS FROM THE JVLA , 2012, 1203.6352.
[42] D. Walton,et al. An ultraluminous X-ray source powered by an accreting neutron star , 2014, Nature.
[43] G. Pietrzynski,et al. A mass of less than 15 solar masses for the black hole in an ultraluminous X-ray source , 2014, Nature.