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The Cosmic Evolution Survey (Cosmos): Overview1 N
The Astrophysical Journal Supplement Series, 172:1Y8, 2007 September # 2007. The American Astronomical Society. All rights reserved. Printed in U.S.A. THE COSMIC EVOLUTION SURVEY (COSMOS): OVERVIEW1 N. Scoville,2,3 H. Aussel,4 M. Brusa,5 P. Capak,2 C. M. Carollo,6 M. Elvis,7 M. Giavalisco,8 L. Guzzo,9 G. Hasinger,5 C. Impey,10 J.-P. Kneib,11 O. LeFevre,11 S. J. Lilly,6 B. Mobasher,8 A. Renzini,12,13 R. M. Rich,14 D. B. Sanders,15 E. Schinnerer,16,17 D. Schminovich,18 P. Shopbell,2 Y. Taniguchi,19 and N. D. Tyson20 Received 2006 April 25; accepted 2006 June 28 ABSTRACT The Cosmic Evolution Survey (COSMOS) is designed to probe the correlated evolution of galaxies, star formation, active galactic nuclei (AGNs), and dark matter (DM) with large-scale structure (LSS) over the redshift range z > 0:5Y6. The survey includes multiwavelength imaging and spectroscopy from X-rayYtoYradio wavelengths covering a 2 deg2 area, including HST imaging. Given the very high sensitivity and resolution of these data sets, COSMOS also provides unprecedented samples of objects at high redshift with greatly reduced cosmic variance, compared to earlier surveys. Here we provide a brief overview of the survey strategy, the characteristics of the major COSMOS data sets, and a summary the science goals. Subject headinggs: cosmology: observations — dark matter — galaxies: evolution — galaxies: formation — large-scale structure of universe — surveys 1. INTRODUCTION multiband imaging and spectroscopy provide redshifts and hence cosmic ages for these populations. Most briefly, the early universe Our understanding of the formation and evolution of galaxies and their large-scale structures (LSSs) has advanced enormously galaxies were more irregular/interacting than at present and the overall cosmic star formation rate probably peaked at z 1Y3 over the last decade—a result of a phenomenal synergy between with 10Y30 times the current rates (Lilly et al. -
Publications for Dr. Peter L. Capak 1 of 21 Publication Summary 369
Publications for Dr. Peter L. Capak Publication Summary 369 Publications 319 Refereed Publications Accepted or Submitted 50 Un-refereed Publications Top 1% of Cited Researchers in 2017-2019 >30,000 Citations >1,600 Citations on first author papers 99 papers with >100 citations, 6 as first author. H Index = 99 First Author publications 1) Capak et al., 2015, “Galaxies at redshifts 5 to 6 with systematically low dust content and high [C II] emission”, Nature, 522, 455 2) Capak et al., 2013, “Keck-I MOSFIRE Spectroscopy of the z ~ 12 Candidate Galaxy UDFj-39546284”, ApJL, 733, 14 3) Capak et al., 2011, “A massive protocluster of galaxies at a redshift of z~5.3” , Nature, 470, 233 4) Capak et al., 2010, “Spectroscopy and Imaging of three bright z>7 candidates in the COSMOS survey”, ApJ, 730, 68 5) Capak et al., 2008, "Spectroscopic Confirmation Of An Extreme Starburst At Redshift 4.547", ApJL, 681, 53 6) Capak et. al., 2007, "The effects of environment on morphological evolution between 0<z<1.2 in the COSMOS Survey", ApJS, 172, 284 7) Capak et. al., 2007, "The First Release COSMOS Optical and Near-IR Data and Catalog", ApJS, 172, 99 8) Capak, 2004, “Probing global star and galaxy formation using deep multi-wavelength surveys”, Ph.D. Thesis 9) Capak et. al., 2004, "A Deep Wide-Field, Optical, and Near-Infrared Catalog of a Large Area around the Hubble Deep Field North", AJ, 127, 180 Other Publications (P. Capak was a leading author in bolded entries) 10) Faisst et al., 2020, “The ALPINE-ALMA [CII] survey: Multi-Wavelength Ancillary Data. -
Observing Galaxy Evolution in the Context of Large
Astro2020 Science White Paper Observing Galaxy Evolution in the Context of Large-Scale Structure Thematic Areas: Planetary Systems Star and Planet Formation Formation and Evolution of Compact Objects Cosmology and Fundamental Physics Stars and Stellar Evolution Resolved Stellar Populations and their Environments 7Galaxy Evolution Multi-Messenger Astronomy and Astrophysics Principal Author: Name: Mark Dickinson Institution: NOAO Email: [email protected] Phone: 520-318-8531 Co-authors: Yun Wang (Caltech/IPAC), James Bartlett (NASA JPL), Peter Behroozi (Arizona), Jarle Brinchmann (Leiden Observatory; Porto), Peter Capak (Caltech/IPAC), Ranga Chary (Caltech/IPAC), Andrea Cimatti (Bologna; INAF), Alison Coil (UC San Diego), Charlie Conroy (CfA), Emanuele Daddi (CEA, Saclay), Megan Donahue (Michigan State University), Peter Eisenhardt (NASA JPL), Henry C. Ferguson (STScI), Karl Glazebrook (Swinburne), Steve Furlanetto (UCLA), Anthony Gonzalez (Florida), George Helou (Caltech/IPAC), Philip F. Hopkins (Caltech), Jeyhan Kartaltepe (RIT), Janice Lee (Caltech/IPAC), Sangeeta Malhotra (NASA GSFC), Jennifer Marshall (Texas A&M), Jeffrey A. Newman (Pittsburgh), Alvaro Orsi (CEFCA), James Rhoads (NASA GSFC), Jason Rhodes (NASA JPL), Alice Shapley (UCLA), Risa H. Wechsler (Stanford/KIPAC; SLAC) Abstract: Galaxies form and evolve in the context of their local and large-scale environments. Their baryonic content that we observe with imaging and spectroscopy is intimately connected to the properties of their dark matter halos, and to their location in the “cosmic web” of large-scale structure. Very large spectroscopic surveys of the local universe (e.g., SDSS and GAMA) measure galaxy positions (location within large-scale structure), statistical clustering (a direct constraint on dark matter halo masses), and spectral features (measuring physical conditions of the gas and stars within the galax- ies, as well as internal velocities). -
CURRICULUM VITAE Andreas Faisst | Caltech - Infrared Processing and Analysis Center | [email protected]
December 5, 2019 CURRICULUM VITAE Andreas Faisst | Caltech - Infrared Processing and Analysis Center | [email protected] PERSONAL INFORMATION RESEARCH INTERESTS Name Andreas Faisst • Physics during the Epoch of Reionization Citizenship Switzerland • Early phases of galaxy formation and Contact Infrared Processing and Analysis Center evolution California Institute of Technology • Physical and structural properties of high- 314-6 Keith Spalding redshift galaXies 1200 E. California Blvd. • Quenching of star formation in massive Pasadena, CA 91125, USA galaxies E-mail [email protected] Social Media @astrofaisst (Twitter) Webpage http://www.astro.caltech.edu/~afaisst MAIN LEADS AND INVOLVEMENTS U.S. lead principal investigator of ALPINE (a 70-hour large ALMA program). Member of the IPAC Joint PiXel Processing and Tech Initiative. Science co-investigator and science operation center (SOC) scientist for ISCEA (a NASA small satellite mission). Part of the science and outreach team for CASTOR (a Canada- led space telescope). REFERENCES Dr. Peter Capak (Caltech/IPAC), [email protected]. More references are available upon request. CAREER AND EDUCATION Jan 2019 to present Assistant Research Scientist at Caltech/IPAC Oct 2016 to Dec 2018 Postdoctoral Researcher at Caltech/IPAC May 2015 to Oct 2016 SNSF Postdoctoral Fellow at Caltech (Visitor in Astronomy) April 2015 Dr. Sc. ETH Zurich in Physics ETH Zurich, Switzerland Thesis: “The Evolution of Star-forming and Quiescent Massive Galaxies through Cosmic Time” March 2011 M.Sc. in Physics ETH Zurich, Switzerland Thesis: “Star-forming Galaxies at Redshifts z~2 and z~4” September 2009 B.Sc. in Physics ETH Zurich, Switzerland GRANTS, HONORS, AND AWARDS April 2014 SNSF Early Postdoc Mobility Fellowship March 2012 ETH Medal for outstanding Master thesis March 2011 M.Sc. -
Astronomy 2008 Index
Astronomy Magazine Article Title Index 10 rising stars of astronomy, 8:60–8:63 1.5 million galaxies revealed, 3:41–3:43 185 million years before the dinosaurs’ demise, did an asteroid nearly end life on Earth?, 4:34–4:39 A Aligned aurorae, 8:27 All about the Veil Nebula, 6:56–6:61 Amateur astronomy’s greatest generation, 8:68–8:71 Amateurs see fireballs from U.S. satellite kill, 7:24 Another Earth, 6:13 Another super-Earth discovered, 9:21 Antares gang, The, 7:18 Antimatter traced, 5:23 Are big-planet systems uncommon?, 10:23 Are super-sized Earths the new frontier?, 11:26–11:31 Are these space rocks from Mercury?, 11:32–11:37 Are we done yet?, 4:14 Are we looking for life in the right places?, 7:28–7:33 Ask the aliens, 3:12 Asteroid sleuths find the dino killer, 1:20 Astro-humiliation, 10:14 Astroimaging over ancient Greece, 12:64–12:69 Astronaut rescue rocket revs up, 11:22 Astronomers spy a giant particle accelerator in the sky, 5:21 Astronomers unearth a star’s death secrets, 10:18 Astronomers witness alien star flip-out, 6:27 Astronomy magazine’s first 35 years, 8:supplement Astronomy’s guide to Go-to telescopes, 10:supplement Auroral storm trigger confirmed, 11:18 B Backstage at Astronomy, 8:76–8:82 Basking in the Sun, 5:16 Biggest planet’s 5 deepest mysteries, The, 1:38–1:43 Binary pulsar test affirms relativity, 10:21 Binocular Telescope snaps first image, 6:21 Black hole sets a record, 2:20 Black holes wind up galaxy arms, 9:19 Brightest starburst galaxy discovered, 12:23 C Calling all space probes, 10:64–10:65 Calling on Cassiopeia, 11:76 Canada to launch new asteroid hunter, 11:19 Canada’s handy robot, 1:24 Cannibal next door, The, 3:38 Capture images of our local star, 4:66–4:67 Cassini confirms Titan lakes, 12:27 Cassini scopes Saturn’s two-toned moon, 1:25 Cassini “tastes” Enceladus’ plumes, 7:26 Cepheus’ fall delights, 10:85 Choose the dome that’s right for you, 5:70–5:71 Clearing the air about seeing vs. -
From Dark Matter to Galaxies with Convolutional Networks
From Dark Matter to Galaxies with Convolutional Networks Xinyue Zhang*, Yanfang Wang*, Wei Zhang*, Siyu He Yueqiu Sun*∗ Department of Physics, Carnegie Mellon University Center for Data Science, New York University Center for Computational Astrophysics, Flatiron Institute xz2139,yw1007,wz1218,[email protected] [email protected] Gabriella Contardo, Francisco Shirley Ho Villaescusa-Navarro Center for Computational Astrophysics, Flatiron Institute Center for Computational Astrophysics, Flatiron Institute Department of Astrophysical Sciences, Princeton gcontardo,[email protected] University Department of Physics, Carnegie Mellon University [email protected] ABSTRACT 1 INTRODUCTION Cosmological surveys aim at answering fundamental questions Cosmology focuses on studying the origin and evolution of our about our Universe, including the nature of dark matter or the rea- Universe, from the Big Bang to today and its future. One of the holy son of unexpected accelerated expansion of the Universe. In order grails of cosmology is to understand and define the physical rules to answer these questions, two important ingredients are needed: and parameters that led to our actual Universe. Astronomers survey 1) data from observations and 2) a theoretical model that allows fast large volumes of the Universe [10, 12, 17, 32] and employ a large comparison between observation and theory. Most of the cosmolog- ensemble of computer simulations to compare with the observed ical surveys observe galaxies, which are very difficult to model theo- data in order to extract the full information of our own Universe. retically due to the complicated physics involved in their formation The constant improvement of computational power has allowed and evolution; modeling realistic galaxies over cosmological vol- cosmologists to pursue elucidating the fundamental parameters umes requires running computationally expensive hydrodynamic and laws of the Universe by relying on simulations as their theory simulations that can cost millions of CPU hours. -
Enhancing LSST Science with Euclid Synergy Arxiv:1904.10439V1 [Astro
Enhancing LSST Science with Euclid Synergy P. Capak, J-C. Cuillandre, F. Bernardeau, F. Castander, R. Bowler, C. Chang, C. Grillmair, P. Gris, T. Eifler, C. Hirata, I. Hook, B. Jain, K. Kuijken, M. Lochner, P. Oesch, S. Paltani, J. Rhodes, B. Robertson, D. Rubin, R. Scaramella, C. Scarlata, D. Scolnic, J. Silverman, S. Wachter, Y. Wang, The Tri-Agency Working Group November, 30, 2018 Abstract This white paper is the result of the Tri-Agency Working Group (TAG) appointed to develop synergies between missions and is intended to clarify what LSST observations are needed in order to maximally enhance the combined science output of LSST and Euclid. To facilitate LSST planning we provide a range of possible LSST surveys with clear metrics based on the improvement in the Dark Energy figure of merit (FOM). To provide a quantifiable metric we present five survey options using only between 0.3 and 3.8% of the LSST 10 year survey. We also provide information so that the LSST DDF cadence can possibly be matched to those of Euclid in common deep fields, SXDS, COSMOS, CDFS, and a proposed new LSST deep field (near the Akari Deep Field South). Co-coordination of observations from the Large Synoptic Survey Telescope (LSST) and Euclid will lead to a significant number of synergies. The combination of optical multi-band imaging from LSST with high resolution optical and near-infrared photom- etry and spectroscopy from Euclid will not only improve constraints on Dark Energy, but provide a wealth of science on the Milky Way, local group, local large scale struc- ture, and even on first galaxies during the epoch of reionization. -
Dr. Peter Capak
Dr. Peter Capak https://www.linkedin.com/in/peter-capak/ Summary Demonstrated leadership and extensive expertise in Research and Development, Machine Learning, Statistics, Project Management, and Systems Engineering. Has worked at the junction of hardware, software, and human factors in projects with budgets up to $4.5 billion. Has a strong track record of delivering software and hardware systems, requiring significant R&D, on deadline and budget. Over 15 years of experience recruiting, leading, and mentoring international cross-functional teams of scientists, hardware engineers and software engineers to develop cutting edge systems including products. Recognized for effectiveness in managing and negotiating international partnerships between industry, academia, and governments. Work History April 2020 – Present Architect of Perception Systems for Augmented and Virtual Reality, Facebook/Oculus June 2004 – Present Project Lead and Scientist, California Institute of Technology (Caltech) and NASA Jet Propulsion Laboratory (JPL), Pasadena, CA Skills & Expertise Systems Engineering: Has been part of the leadership for several international teams that designed and developed complex systems including hardware, software, and human factors. The projects tackled by these teams include scientific satellites, IT systems, technical user-interface (UI) systems, and focused technical projects with total budgets of up to $4.5 billion. One example is the ESA/NASA Euclid mission. Has extensive experience setting up requirements matrixes, accountability systems, and management structures for trans-national, multi-organizational projects that include government, industry, and academic partners. Research and Development (R&D) Management: Has successfully lead both focused small groups and large international cross-functional teams of independent researchers to develop leading edge scientific breakthroughs. -
October's Meeting
October 2008 October’s Meeting Calendar Inside this Issue Sep 4, 2008 – “ Past Saturn and The next meeting of S*T*A*R will be 7 More Years to Pluto: ” New on Thursday, October 2. Our program Horizons Mission, Michael October’s Meeting will be “An Idea That Would Not Die” Lewis, NASA Solar System 1 2008-2009 Calendar by Robert Zimmerman. All are Ambassador welcome. The meeting will begin Oct 2, 2008 – " An Idea That President’s Corner promptly at 8:00pm at the Monmouth Would Not Die" by Robert September Meeting Museum on the campus of Brookdale 2 Zimmerman Minutes Community College. Extreme Starburst Editor’s Corner Nov 6, 2008 – “TBD" 3 Dec 4, 2008 – “Low Energy Thanks to Gavin Warnes, Steve Fedor, Routes to the Moon and & Randy Walton for contributing to this Beyond” by Dr. Edward month’s Spectrogram. Belbruno, Innovative Orbital 4 Design, Inc., Princeton Reminder to pay membership dues S*T*A*R Membership University $25/individual, $35/family. Donations Celestial Events 5 are appreciated. Make payments to Paul Jan 8, 2009 - “Celestial Nadolny at the October meeting or mail Navigation” by Justin Dimmell, In the Eyepiece a check payable to S*T*A*R Island School, Eleuthera, Astronomy Society Inc to: 6 Bahamas S*T*A*R Astronomy Society Moon Phases P.O. Box 863 Feb 5, 2009 - "TBD" 7 Jupiter Moons Calendar Red Bank, NJ 07701 Mar 5, 2009 - “Solar Saturn Moons Calendar Telescopes" by Alan Traino of Astro Crossword Puzzle Lunt Solar Systems November Issue 8 Apr 2, 2009 – “ TBD ” Please send articles and contributions for the next Spectrogram by Friday, May 7, 2009 – “TBD” October 24 . -
The Zcosmos Redshift Survey
Reports from Observers The zCOSMOS Redshift Survey Simon Lilly (ETH, Zürich, Switzerland) that have been developed, using almost are the product of the gravitational growth and the zCOSMOS team* all of the most powerful observing facil- of initially tiny density fluctuations in the ities in the world. This next step is called distribution of dark matter in the Universe COSMOS and the ESO VLT will make a – fluctuations which likely arise from quan- The last ten years have seen the open- major enabling contribution to this pro- tum processes in the earliest moments ing up of dramatic new vistas of the fur- gramme through the zCOSMOS survey of the Big Bang, τ ~10–35 s. These densi- thest reaches of space and time – an being carried out with the VIMOS spec- ty fluctuations eventually collapse to make exploration in which the VLT has played trograph. gravitationally-bound dark matter struc- a major role. However, the work so far tures within which the baryonic material has been exploratory, and sampled only cools, concentrating at the bottom of the small and possibly unrepresentative vol- It is well known that the finite speed gravitational potential wells where it forms umes of the distant Universe. The next of light enables us to observe very distant the visible components of galaxies. step is to bring to bear on a single large objects as they were when the Universe area of sky the full range of techniques as a whole was much younger, and there- In many respects, the Λ-CDM paradigm by to directly observe the evolving prop- is strikingly successful, especially in de- erties of the galaxy population over cos- scribing large-scale structure. -
Kipac Annual Report 2017
KIPAC ANNUAL REPORT 2017 KAVLI INSTITUTE FOR PARTICLE ASTROPHYSICS AND COSMOLOGY Contents 2 10 LZ Director 11 3 Deputy Maria Elena Directors Monzani 4 12 BICEP Array SuperCDMS 5 13 Zeeshan Noah Ahmed Kurinisky 6 14 COMAP Athena 7 15 Dongwoo Dan Wilkins Chung Adam Mantz 8 16 LSST Camera Young scientists 9 20 Margaux Lopez Solar eclipse Unless otherwise specified, all photographs credit of KIPAC. 22 Research 28 highlights Blinding it for science 22 EM counterparts 29 to gravity waves An X-ray view into black holes 23 30 Hidden knots of Examining where dark matter planets form 24 32 KIPAC together 34 Publications Galaxy dynamics and dark matter 36 KIPAC members 25 37 Awards, fellowships and doctorates H0LiCOW 38 KIPAC visitors and speakers 26 39 KIPAC alumni Simulating jets 40 Research update: DM Radio 27 South Pole 41 On the cover Telescope Pardon our (cosmic) dust We’re in the midst of exciting times here at the Kavli Institute for Particle Astro- physics and Cosmology. We’ve always managed to stay productive, with contri- butions big and small to a plethora of projects like the Fermi Gamma-ray Space Telescope, the Dark Energy Survey, the Nuclear Spectroscopic Telescope Array, the Gemini Planet Imager and many, many more—not to mention theory and data analysis, simulations, and research with publicly available data. We have no shortage of scientific topics to keep us occupied. But we are currently hard at work building a variety of new experimental instru- ments, and preparing to reap the benefits of some very long-range planning that will keep KIPAC scientists busy studying our universe in almost every wavelength and during almost every major epoch of the evolution of the universe, into the late 2020s and beyond. -
Arxiv:Astro-Ph/0612305V1 12 Dec 2006 Giavalisco .Scoville N
The Cosmic Evolution Survey (COSMOS) – Overview N. Scoville1,2, H. Aussel17, M. Brusa5, P. Capak1, C. M. Carollo8, M. Elvis3, M. Giavalisco4, L. Guzzo15, G. Hasinger5, C. Impey6, J.-P. Kneib7, O. LeFevre7, S. J. Lilly8, B. Mobasher4, A. Renzini9,19, R. M. Rich18, D. B. Sanders10, E. Schinnerer11,12, D. Schminovich13, P. Shopbell1, Y. Taniguchi14, N. D. Tyson16 arXiv:astro-ph/0612305v1 12 Dec 2006 –2– ⋆Based on observations with the NASA/ESA Hubble Space Telescope, obtained at the Space Telescope Science Institute, which is operated by AURA Inc, under NASA contract NAS 5-26555; also based on data collected at : the Subaru Telescope, which is operated by the National Astronomical Observatory of Japan; the XMM-Newton, an ESA science mission with instruments and contributions directly funded by ESA Member States and NASA; the European Southern Observatory under Large Program 175.A-0839, Chile; Kitt Peak National Observatory, Cerro Tololo Inter-American Observatory, and the National Optical As- tronomy Observatory, which are operated by the Association of Universities for Research in Astronomy, Inc. (AURA) under cooperative agreement with the National Science Foundation; the National Radio Astronomy Observatory which is a facility of the National Science Foundation operated under cooperative agreement by Associated Universities, Inc ; and the Canada-France-Hawaii Telescope with MegaPrime/MegaCam operated as a joint project by the CFHT Corporation, CEA/DAPNIA, the NRC and CADC of Canada, the CNRS of France, TERAPIX and the Univ. of Hawaii.