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    US Virtual Astronomical Observatory

    3论文总数
    523引用总数

    论文量&引用量时间轴

    机构学者

    排序
    Bruce Berriman
    Bruce Berriman
    Infrared Processing and Analysis Center, California Institute of Technology;NASA's Jet Propulsion Laboratory
    论文:3引用:0H-index:0
    Robert Hanisch
    Robert Hanisch
    Material Measurement Laboratory, National Institute of Standards and Technology
    论文:3引用:0H-index:0
    Robert J. Nemiroff
    Robert J. Nemiroff
    Department of Physics, Michigan Technological University;NASA Goddard Space Flight Center
    论文:1引用:0H-index:0
    Joseph Lazio
    Joseph Lazio
    Jet Propulsion Laboratory, California Institute of Technology
    论文:1引用:0H-index:0
    thomas a mcglynn
    thomas a mcglynn
    NASA, Goddard Space Flight Ctr
    论文:1引用:0H-index:0
    Peter Teuben
    Peter Teuben
    University of Maryland, College Park
    论文:1引用:0H-index:0
    Jessica Mink
    Jessica Mink
    University of Arizona, Harvard-Smithsonian Center for Astrophysics
    论文:1引用:0H-index:0
    Aniruddha R. Thakar
    Aniruddha R. Thakar
    Department of Physics and Astronomy;Johns Hopkins University;Department of Physics and Astronomy, Johns Hopkins University
    论文:1引用:0H-index:0
    Lior Shamir
    Lior Shamir
    Laboratory of Genetics;National Institute on Aging;Laboratory of Genetics, National Institute on Aging
    论文:1引用:0H-index:0

    论文(3)

    年份
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    排序
    1The Astrophysics Source Code Library: Where Do We Go from Here?
    A. Allen,B. Berriman,K. DuPrie,R. J. Hanisch,J. Mink,R. J. Nemiroff,L. Shamir, K. Shortridge,M. B. Taylor,P. Teuben, J. Wallin

    The Astrophysics Source Code Library, started in 1999, has in the past three years grown from a repository for 40 codes to a registry of over 700 codes that are now indexed by ADS. What comes next? We examine the future of the ASCL, the challenges facing it, the rationale behind its practices, and the need to balance what we might do with what we have the resources to accomplish.

    2014ASTRONOMICAL DATA ANALYSIS SOFTWARE AND SYSTEMS XXIII(2014)引用:514
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    2The Organization and Management of the Virtual Astronomical Observatory
    G. Bruce Berriman,Robert J. Hanisch,T. Joseph W. Lazio,Alexander Szalay,Giuseppina Fabbiano

    The U.S. Virtual Astronomical Observatory (VAO; http://www.us-vao.org/) has been in operation since May 2010. Its goal is to enable new science through efficient integration of distributed multi-wavelength data. This paper describes the management and organization of the VAO, and emphasizes the techniques used to ensure efficiency in a distributed organization. Management methods include using an annual program plan as the basis for establishing contracts with member organizations, regular communication, and monitoring of processes.

    2012MODELING, SYSTEMS ENGINEERING, AND PROJECT MANAGEMENT FOR ASTRONOMY V(2012)引用:7
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    3Running a Distributed Virtual Observatory: U.S. Virtual Astronomical Observatory Operations
    Thomas A. McGlynn,Robert J. Hanisch,G. Bruce Berriman,Aniruddha R. Thakar

    Operation of the US Virtual Astronomical Observatory shares some issues with modern physical observatories, e. g., intimidating data volumes and rapid technological change, and must also address unique concerns like the lack of direct control of the underlying and scattered data resources, and the distributed nature of the observatory itself. In this paper we discuss how the VAO has addressed these challenges to provide the astronomical community with a coherent set of science-enabling tools and services. The distributed nature of our virtual observatory-with data and personnel spanning geographic, institutional and regime boundaries-is simultaneously a major operational headache and the primary science motivation for the VAO. Most astronomy today uses data from many resources. Facilitation of matching heterogeneous datasets is a fundamental reason for the virtual observatory. Key aspects of our approach include continuous monitoring and validation of VAO and VO services and the datasets provided by the community, monitoring of user requests to optimize access, caching for large datasets, and providing distributed storage services that allow user to collect results near large data repositories. Some elements are now fully implemented, while others are planned for subsequent years. The distributed nature of the VAO requires careful attention to what can be a straightforward operation at a conventional observatory, e. g., the organization of the web site or the collection and combined analysis of logs. Many of these strategies use and extend protocols developed by the international virtual observatory community. Our long-term challenge is working with the underlying data providers to ensure high quality implementation of VO data access protocols (new and better 'telescopes'), assisting astronomical developers to build robust integrating tools (new 'instruments'), and coordinating with the research community to maximize the science enabled.

    2012OBSERVATORY OPERATIONS STRATEGIES, PROCESSES, AND SYSTEMS IV(2012)引用:2
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    合作机构(11)

    加州理工学院合作论文 3
    约翰斯·霍普金斯大学合作论文 1
    哈佛 - 史密森尼天体物理中心合作论文 1
    中田纳西州立大学合作论文 1
    布里斯托大学合作论文 1
    密歇根科技大学合作论文 1
    Arkansas State Crime Laboratory合作论文 1
    劳伦斯技术大学合作论文 1
    American Academy of Osteopathy合作论文 1
    马里兰大学合作论文 1

    机构统计