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DEX: Dexterous Data Explorer

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1. Kurt Stockinger DEX: Dexterous Data Explorer. DEX: Dexterous Data Explorer. Kurt Stockinger, John Wu (Scientific Data Management-Group) Wes Bethel, John Shalf ... – PowerPoint PPT presentation

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Title: DEX: Dexterous Data Explorer


1
DEX Dexterous Data Explorer
  • Kurt Stockinger, John Wu
  • (Scientific Data Management-Group)
  • Wes Bethel, John Shalf
  • (Visualization-Group)
  • Berkeley Lab
  • Scientific Data Management Center All Hands
    Meeting
  • March 2005
  • Salt Lake City, Utah

2
Motivation Scientific Data Exploration
  • Combustion
  • Tracking species of molecules through chemical
    reaction networks
  • Studying flame fronts helps better understand
    efficient combustion
  • Approach
  • Select data that characterizes flame front based
    on user condition
  • Perform visual analysis
  • Astrophysics
  • Tracking of mass fractions of different chemical
    species

3
Traditional Approaches
  • Database access methods
  • E.g. Bitmap indices for multi-dimensional data
    analysis
  • Visualization frameworks
  • Isosurface extraction based on pre-defined values
  • Applications require a combination of both
    worlds

4
DEX Dexterous Data Explorer
  • Interactive visualization of large scientific
    data sets
  • Uses a novel combination of efficient query
    technology and visualization infrastructure
  • FastBit Query Engine Bitmap indices for
    accelerating queries on large data sets for
    identifying regions of interest
  • Visualization pipeline for generating 3D images
    of abstract data results
  • DEX provides new functionality that is not
    present in any visualization analysis software
  • Perform interactive, multi-dimensional queries to
    refine regions of interest that are later used as
    input to analysis or visualization
  • By displaying the resulting regions of interest,
    application scientists can quickly identify
    characteristic features of their data

5
Simplified Visualization Pipeline
FastBit
Query
Data
Visualization Toolkit(VTK)
3D visualization of a Supernova explosion
6
Performance Analysis
  • Experimental Setup
  • 2.8 GHz Intel Pentium IV with 2 GB RAM
  • SCSI RAID disk
  • Performance comparison of DEX with isosurface
    algorithms in VTK
  • Two data sets
  • Combustion
  • 2.7 million data points with 10 features
  • Astrophysics
  • 13.8 million data points with 6 variables
  • Bitmap Index
  • WAH-compressed, range-encoded bitmap index
  • 100 bins

7
Performance Results with Scientific Data
Visualization of results is similar to isosurface
extraction
DEX is on average a factor of three to four
faster than best isosurface algorithm of VTK
8
Future Work
  • Reduce bottleneck in vis-pipeline
  • Region growing is small fraction of VTK rendering
  • Multi-resolution analysis
  • AMR data
  • HDF5 (we currently support netCDF HDF4)

9
More Information
  • Bitmap Indices
  • Google Kurt Stockinger
  • Google John Wu
  • DEX
  • Google DEX bitmap
  • http//www-vis.lbl.gov/Research/Dex/
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