A search for extragalactic fast optical transients in the Tomo-e Gozen high-cadence survey
暂无分享,去创建一个
T. Morokuma | N. Tominaga | S. Okumura | Masaomi Tanaka | Y. Niino | S. Sako | R. Ohsawa | S. Kondo | Y. Mori | Noriaki Arima | K. Arimatsu | Kakeru Oshikiri | Ichiro Takahashi | Yusuke Tampo | Hamid Hamidani | Toshihiro Kasuga | Naoto Kobayashi | Hidenori Takahashi
[1] C. McCully,et al. AT 2022aedm and a New Class of Luminous, Fast-cooling Transients in Elliptical Galaxies , 2023, The Astrophysical Journal Letters.
[2] D. A. Kann,et al. A very luminous jet from the disruption of a star by a massive black hole , 2022, Nature.
[3] J. Prieto,et al. The Galactic Nova Rate: Estimates from the ASAS-SN and Gaia Surveys , 2022, The Astrophysical Journal.
[4] H. Kawahara,et al. Fast optical flares from M dwarfs detected by a one-second-cadence survey with Tomo-e Gozen , 2022, Publications of the Astronomical Society of Japan.
[5] I. Takahashi,et al. Deep-learning real/bogus classification for the Tomo-e Gozen transient survey , 2022, Publications of the Astronomical Society of Japan.
[6] D. A. Kann,et al. Cosmological Fast Optical Transients with the Zwicky Transient Facility: A Search for Dirty Fireballs , 2022, The Astrophysical Journal.
[7] P. J. Richards,et al. Gaia Early Data Release 3 , 2021, Astronomy & Astrophysics.
[8] A. Mahabal,et al. A Search for Extragalactic Fast Blue Optical Transients in ZTF and the Rate of AT2018cow-like Transients , 2021, The Astrophysical Journal.
[9] A. Mahabal,et al. Fast-transient Searches in Real Time with ZTFReST: Identification of Three Optically Discovered Gamma-Ray Burst Afterglows and New Constraints on the Kilonova Rate , 2021, The Astrophysical Journal.
[10] Adam A. Miller,et al. The Zwicky Transient Facility Bright Transient Survey. II. A Public Statistical Sample for Exploring Supernova Demographics , 2020, The Astrophysical Journal.
[11] M. Catelán,et al. Alert Classification for the ALeRCE Broker System: The Light Curve Classifier , 2020, The Astronomical Journal.
[12] N. E. Sommer,et al. The host galaxies of 106 rapidly evolving transients discovered by the Dark Energy Survey , 2020, Monthly Notices of the Royal Astronomical Society.
[13] C. L'opez-Sanjuan,et al. Disentangling cataclysmic variables in Gaia’s HR diagram , 2019, Monthly Notices of the Royal Astronomical Society: Letters.
[14] B. Metzger. Kilonovae , 2019, Living Reviews in Relativity.
[15] A. Lien,et al. Probing the extragalactic fast transient sky at minute time-scales with DECam , 2019, Monthly Notices of the Royal Astronomical Society.
[16] Astrophysics,et al. The Palomar Transient Factory Sky2Night programme , 2019, Monthly Notices of the Royal Astronomical Society.
[17] Umaa Rebbapragada,et al. The Zwicky Transient Facility: System Overview, Performance, and First Results , 2018, Publications of the Astronomical Society of the Pacific.
[18] A. Gal-yam. The Most Luminous Supernovae , 2018, Annual Review of Astronomy and Astrophysics.
[19] S. Kiyota,et al. Third-nearest WZ Sge-Type dwarf nova candidate ASASSN-14dx classified on the basis of Gaia Data Release 2 , 2018, Publications of the Astronomical Society of Japan.
[20] C. Guidorzi,et al. An Embedded X-Ray Source Shines through the Aspherical AT 2018cow: Revealing the Inner Workings of the Most Luminous Fast-evolving Optical Transients , 2018, The Astrophysical Journal.
[21] William H. Lee,et al. The fast, luminous ultraviolet transient AT2018cow: extreme supernova, or disruption of a star by an intermediate-mass black hole? , 2018, Monthly Notices of the Royal Astronomical Society.
[22] Christopher J. Evans,et al. Ground-based and Airborne Instrumentation for Astronomy VII , 2018 .
[23] R. B. Barreiro,et al. Planck 2018 results , 2018, Astronomy & Astrophysics.
[24] B. J. Shappee,et al. The Cow: Discovery of a Luminous, Hot, and Rapidly Evolving Transient , 2018, The Astrophysical Journal.
[25] Mamoru Doi,et al. The Tomo-e Gozen wide field CMOS camera for the Kiso Schmidt telescope , 2018, Astronomical Telescopes + Instrumentation.
[26] N. E. Sommer,et al. Rapidly evolving transients in the Dark Energy Survey , 2018, Monthly Notices of the Royal Astronomical Society.
[27] D. A. Kann,et al. iPTF Archival Search for Fast Optical Transients , 2017, 1712.00949.
[28] Jr.,et al. The Electromagnetic Counterpart of the Binary Neutron Star Merger LIGO/Virgo GW170817. II. UV, Optical, and Near-infrared Light Curves and Comparison to Kilonova Models , 2017, 1710.05840.
[29] E. Berger,et al. Theoretical Models of Optical Transients. I. A Broad Exploration of the Duration–Luminosity Phase Space , 2017, 1707.08132.
[30] R. J. Wainscoat,et al. The Pan-STARRS1 Database and Data Products , 2016, The Astrophysical Journal Supplement Series.
[31] R. J. Wainscoat,et al. Pan-STARRS Pixel Processing: Detrending, Warping, Stacking , 2016, The Astrophysical Journal Supplement Series.
[32] Tom Barclay,et al. SNCosmo: Python library for supernova cosmology , 2016 .
[33] Taichi Kato. WZ Sge-Type Dwarf Novae , 2015, 1507.07659.
[34] Andrew Becker,et al. HOTPANTS: High Order Transform of PSF ANd Template Subtraction , 2015 .
[35] M. Sullivan,et al. Improved cosmological constraints from a joint analysis of the SDSS-II and SNLS supernova samples , 2014, 1401.4064.
[36] E. Ofek,et al. An Extremely Luminous Panchromatic Outburst from the Nucleus of a Distant Galaxy , 2011, Science.
[37] Nathaniel R. Butler,et al. A Possible Relativistic Jetted Outburst from a Massive Black Hole Fed by a Tidally Disrupted Star , 2011, Science.
[38] Martin G. Cohen,et al. THE WIDE-FIELD INFRARED SURVEY EXPLORER (WISE): MISSION DESCRIPTION AND INITIAL ON-ORBIT PERFORMANCE , 2010, 1008.0031.
[39] Mohan Ganeshalingam,et al. Nearby supernova rates from the Lick Observatory Supernova Search – III. The rate–size relation, and the rates as a function of galaxy Hubble type and colour , 2010, 1006.4613.
[40] N. T. Zinner,et al. Electromagnetic counterparts of compact object mergers powered by the radioactive decay of r‐process nuclei , 2010, 1001.5029.
[41] D. Wanderman,et al. The luminosity function and the rate of Swift's Gamma Ray Bursts , 2009, 0912.0709.
[42] Ernest E. Croner,et al. The Palomar Transient Factory: System Overview, Performance, and First Results , 2009, 0906.5350.
[43] Ipac,et al. A Survey for Fast Transients in the Fornax Cluster of Galaxies , 2008, 0804.4482.
[44] John F. Beacom,et al. Characterizing Supernova Progenitors via the Metallicities of their Host Galaxies, from Poor Dwarfs to Rich Spirals , 2007, 0707.0690.
[45] E. Ofek,et al. The Incidence of Dwarf Novae in Large Area Transient Searches , 2006, astro-ph/0611933.
[46] S. Rosswog,et al. Mergers of Neutron Star-Black Hole Binaries with Small Mass Ratios: Nucleosynthesis, Gamma-Ray Bursts, and Electromagnetic Transients , 2005, astro-ph/0508138.
[47] A. Szalay,et al. The Galaxy Evolution Explorer: A Space Ultraviolet Survey Mission , 2004, astro-ph/0411302.
[48] Alejandro Clocchiatti,et al. The Deep Lens Survey Transient Search. I. Short Timescale and Astrometric Variability , 2004 .
[49] S. Golenetskii,et al. GRB 020410: A Gamma-Ray Burst Afterglow Discovered by Its Supernova Light , 2004, astro-ph/0403450.
[50] A. Schwope,et al. The census of cataclysmic variables in the ROSAT Bright Survey , 2002, astro-ph/0210059.
[51] M. Rees,et al. Afterglow light curves, viewing angle and the jet structure of γ-ray bursts , 2001, astro-ph/0112083.
[52] P. Nugent,et al. High-Redshift Supernovae in the Hubble Deep Field , 1999, astro-ph/9903229.
[53] Bohdan Paczy'nski,et al. Transient Events from Neutron Star Mergers , 1998, astro-ph/9807272.
[54] A. Pickles. A Stellar Spectral Flux Library: 1150–25000 Å , 1998 .
[55] E. Bertin,et al. SExtractor: Software for source extraction , 1996 .
[56] B. Warner. Cataclysmic Variable Stars by Brian Warner , 1995 .
[57] C. Kouveliotou,et al. Gamma-Ray Burst Afterglows , 2000 .
[58] Y. Osaki. DWARF-NOVA OUTBURSTS , 1996 .