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STAR Reconstruction Overview

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Title: STAR Reconstruction Overview


1
STAR Reconstruction Overview
  • S. Margetis
  • Kent State University

2
Outlook
  • Requirements
  • environment
  • Physics-based requirements
  • STARs approach
  • Detectors
  • Year-1 vs Year-2
  • Detector staging
  • Reconstruction software
  • Issues
  • Flow chart
  • Presentations at this meeting
  • Day-1/2

3
Environment
  • Collider - ppt ()
  • Lorentz boost is weak
  • Energy loss/Scattering not negligible
  • dN/dy can vary but high (500-1000 charged tracks
    in central PbPb collisions)
  • high track densities
  • Physics signals differ in cross sections
  • STAR concentrates mainly on hadron signals
  • Typical rates of a few percent (e.g.
    strangeness)
  • But any lepton/charm/high pt one drops
    dramatically

4
Requirements
  • High overall tracking efficiency (90)
  • 3-body decays/correlations
  • relatively flat over p/pt with low contamination
  • soft secondaries
  • low/high momentum signals
  • Low p/pt coverage
  • TPC cutoff at 80-100MeV
  • need SVT-alone tracking
  • Good momentum resolution (high/low momenta)
  • around 1
  • Good two-track resolution
  • Good (micro?) vertexing
  • Good PID capabilities

5
STARs (and not only) approach
  • Silicon-based tracker around the vertex region
  • Excellent position/two track separation
  • Can cope with expected densities of up to 10
    tracks/cm2
  • Large TPCs for central (forward) tracking at
    larger radii
  • about 1.5 m of tracking provides for dE/dx and
    dp/p
  • low mass
  • know-how exists

6
(No Transcript)
7
Year-1 / Year-2
  • Initial (Year-1) tracking detectors
  • TPC one SVT plane (ladder) FTPC
  • Simpler integrated tracking tasks
  • Material, trackers, matching, relative
    alignments
  • Year-2 (2,2) configuration
  • Initially SVT, then SDD
  • Harder integrated tracking tasks
  • Execution sequence less obvious
  • DetectorGlobal handshake

8
Software
  • Poor Initial Design
  • Legacy code was put together and effort
    concentrated in maintenance and algorithm
    development
  • New environment, new challenges
  • Black box/Do not touch my code approach
  • Different code same task
  • Poor overall task integration/upgrade path
    definition
  • Minimum (STAR dedicated) manpower/frequent infra
    changes (much better now)/lack of expertise
  • (Part-time) physicists write/maintain code
  • Co-existence of Fortran/C
  • Effort started around 1992, Fortran essential
  • Table based communication between modules

9
Software-2
  • Good algorithmic approaches to cluster/track
    finding
  • Based on previous experiments/experience
  • Several approaches were tried out
  • Basic tasks are covered even if not in an optimum
    way
  • No huge holes in the system
  • Peaceful coexistence of diverse software
  • STAR will be ready to take and analyze its data
  • Currently looking for common tasks/upgrade paths
  • Propagation (GEANE/Kalman)
  • Fitting (Kalman)
  • Algorithm handshake/streamlining/integration

10
Event Reconstruction
STAR Event DAQ/GEANT
Iwona
TPC analysis
SVT analysis
FTPC analysis
Helen
Calibrations
Global
Spiros
Databases
DST
11
Presentations
  • Today
  • TPC software
  • Response simulators
  • Cluster/Hit finders
  • Tracking
  • Test results
  • Evaluation tools
  • SVT (SDDSSD) software
  • Response simulators
  • Cluster/Hit finders
  • Tracking (stand-alone)
  • Test results
  • Tomorrow
  • Global software
  • Integrated tracking
  • Matching/Fitting

12
Presentations (continued)
  • Event vertex finding
  • Tracking in complex non-uniform detectors
  • Primary fitting
  • Plans

13
Prelude, not Summary
  • Listen to our choices/thinking but ask questions
  • plenty of time reserved for this
  • Voice your concerns or ideas on a topic
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