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Hello

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Title: Hello


1
Hello!
2
Virtual Observatories for the Developing
WorldAjit Kembhavi, IUCAA
3
The Data Avalanche
Immense amounts of data are being produced by
large telescopes using large area detectors.
Terabytes of data are now available, and
Petabytes will soon be available from frequent
all sky imaging.
Vast databases are also being produced through
simulations.
4
Wavelength Coverage, Resolution
The data spans the electromagnetic spectrum from
the radio to the gamma-ray region.
Obtaining, analysing and interpreting the data in
different wavebands and at different resolutions
involves highly specialised instruments and
techniques.
The astronomer needs new holistic tools for using
this wealth of data.
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Virtual Observatories
  • Develop interoperability concepts to make
    different databases seamless.
  • Manage vast data resources and provide these
    on-line to astronomers and other users.
  • Provide tools for data discovery, access,
    analysis, visualization and mining.
  • Provide data storage and grid computing
    facilities.
  • Empower astronomers, regardless of their
    location and circumstances, to make an impact on
    research and development.

New Science Initiatives
7
IVOA Technology Initiatives
  • The IVOA has identified six major
    technical initiatives to fulfill the scientific
    goal of the VO concept

Develop databases and tools consistent with this
framework
Registries, Data models, Uniform Content
Descriptors, Data Access Layers,
VO Query Language, VOTable

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  • Provide Russian astronomers effective access to
    international resources
  • Integrate Russian astronomical resources into the
    international VO structure
  • Provide access to observational resources where
    the needed data is not in archives
  • Develop electronic educational resources

ADS, Vizier, INES, Hyperleda
Science Projects Three dimensional map of
interstellar extinction in the Galaxy (with
NVO) Fundamental stellar parameters and
evolutionary status of close binaries (with
Besenscon) Open clusters, MIGALE, Stellar
evolutionary parameters through astrophysical
tracks
GLASS LIBRARIES
11
Virtual Observatory - India
A collaboration between IUCAA and PSPL, with a
grant from the Ministry of Communications and
Information Technology
12
VO-India Software Projects
VOPlot Visualizer for catalogue data VOTable
C Parser VOTable Streaming writer
Data Converters Fits
Browser User interfaces and
query tools Applications
beyond astronomy All tools have web-based and
stand alone versions
VOStat
13
The VOPlot Tool
  • A VO-I CDS collaboration
  • First conceived as a web-based tool for Vizier
  • Then integrated with Aladin
  • VOPlot is now also a stand alone system
  • It has been integrated with many data
    bases
  • VOPlot now has several faces

VOPLot VOPLot3D VOMegaPLot
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Colour-magnitude diagram
parallax
16
On-the-fly GUI

Back
VOPlot, Aladin, SIMBAD, NED, VOStat
Jayant Gupchup, Mohasin Sheikh
17
Mohasin Shaikh, Deoyani, PSPL team
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The Digital Divide in Astronomy-
  • Immense databases, electronic archives of
    scientific periodicals are available free.
  • The latest research is available through
    preprints.
  • Virtual Observatory tools will make all this
    highly accessible and usable.

20
But-
  • Many astronomers lack the bandwidth, expertise
    and the environment to make use of these riches
  • There is resistance to the use of new concepts
    and tools
  • There are reservations about exposing data

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Bridging the Gap
  • The Indian experience could be easily replicated
    elsewhere in the developing world
  • Astronomers can lead the charge
  • Astronomers in the developing world could help
    build archives, develop software and provide much
    needed human resources
  • The Third World Astronomy Network can provide a
    platform

23
Virtual Observatory - India
VOPlot VOPlot3D VOMegaPLot VOStat
VOConvert VOCat
24
Thank You
25
  • REGISTRIES collect metadata about data
    resources and information services into a
    queryable database. The registry is distributed.
  • UNIFORM CONTENT DESCRIPTORS These will
    provide the common language for for metadata
    definitions for the VO.

VOTable This is an XML mark-up standard for
astronomical tables.
26
Himalaya Chandra Telescope Data Archives
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SDSS J125637-022452 High proper motion L-subdwarf
Optical spectra of mixed late M and mid L
type Only the third L subdwarf known
29
VOPlot-Aladin interoperability
Object highlighted
Point highlighted
30
Positions 1986-2000
Proper motion 0.617 arcsec / yr
31
Discovery of Optically Faint Obscured Quasars
Padovani et al AA 2004
  • VO techniques were used to identify obscured
    quasars from the GOODS fields.
  • X-ray sources were selected on the basis of their
    luminosity and hardness ratio.
  • These were cross correlated with optical sources,
    which were studied using GOODS image cutouts from
    Aladin.
  • 31 new Type 2 quasars were discovered compared to
    the 9 previously known.

32
Virtual Observatory
-
India
-TNG
New Projects VOStat, VOEvent Rolling sky maps
(think Google maps) Grid computing for
morphology Visualization and Analysis
Theoretical VO
A collaboration between IUCAA and PSPL, with a
grant from the Ministry of Communications and
Information Technology
33
Results in Aladin

Back
34
Data Storage and Retrieval
electromagnetic spectrum from the
The Astronomer Vermeer 1632-1675
The Library of Alexandria 3rd
Century BC
35
Data Explosion
Peter Quinn
36
VOPlot - Introduction
  • Tool for visualizing astronomical data.
  • Developed in JAVA
  • Plots data available in the VOTable format.
  • Available as stand alone version and web based
    version (integrated with VizieR).
  • Uses Ptplot 5.2, a 2D data plotter and histogram
    tool implemented in Java.

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Results in VOPlot

Back
41
Query using a Form

Back
42
Query using SQL Directly

Back
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Some Data Interface Tools screenshots
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Catalog Data Interface Tool
  • A tool to query catalog data.
  • Simple, customizable, graphic interface.
  • Not specific to type of data or
    catalogue.
  • SQL queries for expert users.
  • VO tools available for
    analysis
  • VOPlot, Aladin, SIMBAD, NED, VOStat
  • Jayant Gupchup, Mohasin Sheikh

49
Data Organization and Architecture
50
  • REGISTRIES These collect metadata about
    data resources and information services into a
    queryable database. The registry is distributed.
    A variety of industry standards are being
    investigated.
  • DATA MODELS This initiative aims to define
    the common elements of astronomical data
    structures and to provide a framework to describe
    their relationships.
  • UNIFORM CONTENT DESCRIPTORS These will
    provide the common language for for metadata
    definitions for the VO.

51
  • DATA ACCESS LAYER This provides a
    standardized access mechanisms to distributed
    data objects. Initial prototypes are a Cone
    Search Protocol and a simple Image Access
    Protocol.
  • VO QUERY LANGUAGE This will provide a
    standard query language which will go beyond the
    limitations of SQL.
  • VOTable This is an XML mark-up standard for
    astronomical tables.

52
Astronomical Data Explosion
100 Gb/night
P. Quinn
53
Persistent Systems Pvt. Ltd., Pune
54
Virtual Observatory - India
55
Data Archives and Mirrors at VO-I
SDSS 2Mass 2DFGRS
2QZ
FIRST
NVSS
Chandra
Vizier, Aladin, ADS
56
Fast ComputingIUCAA Resource
Eight alpha server ES-45 nodes, each
with 4 processors, each node with 8 GB
RAM Fast, low latency interconnect
Memory Channel Architecture Trucluster
clustering environment (Tru64 Unix, DecMPI,
openMP)
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Stars in the Milky Way
62
The Hertzsprung-Russell Diagram
63
The Hertzsprung-Russell Diagram
64
Virtual Observatory -India
A collaboration between IUCAA and PSPL, with a
grant from the Ministry of Communications and
Information Technology
65
Science Initiatives
  • Many IVOA projects have active Science Working
    Groups consisting of astronomers from a broad
    cross-section of the community representing all
    wavelengths.
  • The focus here is to develop a clear perception
    of the scientific requirements of a VO.
  • Projects within the working groups will develop
    new capabilities for VO based analysis.
  • This will enable the community to create new
    research programs and to publish their data and
    research in a more pervasive and scientifically
    useful manner.

66
AVO Prototype Demo Astrogrid Astronomy Catalogue
Extractor AVO AladinSED VO-IndiaVOPlot
67
FITS Manager
View, create and add to FITS files Convert to
other formats Pallavi Kulkarni
Fits-manager
68
VOTable Java Streaming Writer
Acts on a data array in memory to convert it to
the VOTable form, which is streamed row by
row to an output file. Very large VOTables can
be written without excessive memory. Pallavi
Kulkarni
VOTable-Java
69
VOTable
  • This is a new data exchange standard produced
    through efforts led by Francois Ochsenbien of
    CDS, Strasbourg and Roy Williams of Caltech.
  • VOTable is in XML format. Physical quantities
    come with sophisticated semantic information.

70
VOTable
  • The format enables computers to easily parse the
    information and communicate it to other
    computers.
  • Federation and joining of information become
    possible and Grid computing is easier.
  • VOTable parsers have been developed in Perl, Java
    and C.
  • Enhancements and extensions are being considered.

Streaming Parser
Non-streaming Parser
71
VOTable Data
  • The data part in a VOTable may be represented
    using one of three different formats
  • FITS VOTable can be used either to encapsulate
    FITS files, or to re-encode the metadata.
  • BINARY Supported for efficiency and ease of
    programming, no FITS library is required, and the
    streaming paradigm is supported.
  • TABLEDATA Pure XML format for small tables.

72
C VOTable Parser
  • Motivation
  • Provide a library for API based access to VOTable
    files.
  • APIs can be directly used to develop VOTable
    applications without having to do raw VOTable
    processing.
  • Streaming and Non-streaming versions are
    available.

Sonali Kale, Sudip Khanna
73
C VOTable Parser
  • Salient Features
  • Implemented as a wrapper over XALAN-C.
  • XALAN-C is a robust implementation of the W3C
    recommendations for
  • XSL Transformations (XSLT) and the
  • XML Path language (XPath).
  • XPath queries can be used to access the VOTable
    data.

74
Project Design
VTable
Metadata
Link Collection
Link
Field
Field Collection
Link
Link Collection
Values
Table Data
minimum
Row Collection
maximum
Row
Option Collection
Column Collection
Options
75
IUCAA HPC Facility Hercules
  • HPC Team
  • Sarah Ponthratnam
  • Sunu Engineer
  • Rajesh Nayak
  • Anand Sengupta
  • Co-proposed by
  • Ajit Kembhavi
  • T. Padmnabhan
  • Tarun Souradeep
  • Four Alpha Server ES-45 machines
  • Each with 4 processors Alpha (21264C)
  • 1.25 GHz clock speed
  • Cache on chip 64 Kb I, 64 Kb-D
  • Cache 16 Mb ECC DDR
  • RAM 3 x 8 Gb 12 Gb
  • Fast, Low latency interconnect
  • Memory channel Architecture (MCA)
  • High volume Storage
  • 1 Tera-byte SCSCI
  • Trucluster clustering environment (Tru64 Unix,
    DecMPI, openMP)

gt 30 G flops Preliminary HPL benchmark
ES-45 Specfp2000 1327 Linpack 1000x1000 6847
76
Virtual Observatory - India
Persistent Systems
IUCAA
77
Virtual Observatory-India
Ajit Kembhavi IUCAA
Anand Deshpande Persistent Systems
Funded by the Ministry of ICT and Persistent
78
Caltech, Fermilab, JHU, NASA/HEARC, Microsoft,
NCSA/UIUC, NOAO, NRAO, Raytheon ITS, SDSC/UCSD,
SAO/CXC, STScI, UPenn, UPitts/CMU, UWis, USC,
USNO, USRA, CVO
  • NVO-People

79
Virtual Observatory - India
Ajit Kembhavi Inter-University Centre for
Astronomy and Astrophysics Pune, India

80
Virtual Observatories
  • Provide tools for data analysis, visualization
    and mining.
  • Develop interoperability concepts to make
    different databases seamless.
  • Manage vast data resources and provide these
    on-line to astronomers and other users.
  • Empower astronomers by providing sophisticated
    query and computational tools, and computing
    grids for producing new science.

81
Terapix
Jodrell Bank
82
Registry and DIS
83
High Volume Storage
Raid 5, 4 Terabyte
84
CVO Collaborations
  • There are three major projects at the CVO
    involving collaborations with other VO.
  • CVO is collaborating with the German
    Astrophysical VO to incorporate ROSAT X-ray data
    and catalogues into the CVO system.
  • CVO is collaborating with the Australian VO.to
    incorporate 2Qz and 2DF galaxy spectra into the
    CVO database.
  • CVO is an associate member of NVO and is have put
    in place some components of the NVO galaxy
    morphology demo.

85
Science Initiatives
  • Many IVOA projects have active Science Working
    Groups consisting of astronomers from a broad
    cross-section of the community representing all
    wavelengths.
  • The focus here is to develop a clear perception
    of the scientific requirements of a VO.
  • Projects within the working groups will develop
    new capabilities for VO based analysis.
  • This will enable the community to create new
    research programs and to publish their data and
    research in a more pervasive and scientifically
    useful manner.

86
Australian VO Collaborations
  • The distributed volume renderer (dvr) software,
    is a tool for rendering large volumetric data
    sets using the combined memory and processing
    resources of Beowulf like clusters.
  • A collaboration between the Melbourne site of
    Aus-VO and AstroGrid aims to develop the existing
    dvr software into a grid-based volume rendering
    service.
  • Users will be able to select FITS-format cubes
    from a number of "Data Centres",have the data
    transferred to a chosen rendering cluster, and
    then proceed to visualise the volume of data
    remotely (See Demo).

87
C VOTable Parser
  • Initial version
  • - Released on May 31st , 2002.
  • - Support only for reading of tables.
  • - Support only for pure-XML TABLEDATA and not
    for BINARY or FITS data streams.
  • - Runs on Windows NT 4.0, Windows 2000 and
  • RedHat Linux 7.1.
  • Future enhancements
  • - Can be incorporated quickly and
    efficiently.

88
Parser Design
  • Class Details
  • VTable In memory representation of a single
    ltTABLEgt
  • from the ltRESOURCEgt element in VOTable
  • TableMetaData Contains MetaData (Fields, Links
    and Description)
  • Resource Represents the ltRESOURCEgt element in
    the VOTable.
  • TableData Contains Rows
  • Field Representation of ltFIELDgt from VOTable
  • Row Representation of ltTRgt from VOTable
  • Column Representation of ltTDgt from VOTable

89
Parser Design
  • API Typical Operations
  • File Level I/O Routines
  • Open VOTable file
  • Close VOTable file
  • Table I/O Operations
  • Get number of rows
  • Get number of columns
  • Get column(field) information (column name,
    column number, etc.)
  • Accessing table data

90
Parser Implementation
  • Development on Windows NT 4.0 platform using
    VC. Ported to RedHat Linux 7.1/gcc-2.96 with
    zero effort.
  • 18 C classes representing various elements of
    the VOTable format.
  • 8500 lines of C code written for V1.1 release
  • Project start date April 7th 2002
  • V1.1 Release May 31st 2002
  • Current status V1.2 design in progress

91
What is in Release V1.1
  • Parser to serve as a building block for
    developing VOTable based applications.
  • Can be easily used by users of CFITSIO library.
  • Supports powerful XPath queries against VOTable
    files.
  • The first version of the VO Table parser can now
    be downloaded
  • http//vo.iucaa.ernet.in/voi/html/infopage.h
    tml

92
VOTable Parser Demo
  • Serves as a tutorial to help understand the basic
    APIs provided by the VOTable parser.
  • Demonstrates how to access the data and metadata
    elements of a VOTable file.

93
Future Work
  • Develop APIs for writing data in VOTable format.
  • Develop APIs for supporting IMAGE data and FITS
    files in VOTable.
  • Enhance existing API set to allow more elaborate
    and flexible operations on VOTable files.
  • Support future VOTable versions.
  • Develop applications for conversion between FITS
    and VOTable formats.

94
References
  • The first version of the C parser can now be
    downloaded from the VO-India website
  • http//vo.iucaa.ernet.in/voi
  • VOTable Details
  • http//vizier.u-strasbg.fr/doc/VOTable/
  • XALAN
  • http//xml.apache.org/xalan-c/index.html
  • XPATH
  • http//www.w3.org/TR/xpath

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Virtual Observatory - India
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Star Positions
101
  • REGISTRIES These collect metadata about data
    resources and information services into a
    queryable database. The registry is distributed.
    A variety of industry standards are being
    investigated.
  • DATA MODELS This initiative aims to define the
    common elements of astronomical data structures
    and to provide a framework to describe their
    relationships.
  • UNIFORM CONTENT DESCRIPTORS These will provide
    the common language for for metadata definitions
    for the VO.

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VO Schema
105
Browse Server Database

Back
106
Open Cluster Membership
Pleiades POSS II image
107
Loading catalogues
parallax
108
Plotting Data Parallax Histogram
cluster parallax 8.460.22 mas
109
Colour-magnitude diagram
ZAMS
can correct for reddening by adding a new column
110
Colour-magnitude diagram
parallax
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