- Bulk correlations
- Common
- GPC Paper Review: ANN-ASS pp Elastic Scattering at 200 GeV
- Hard Probes
- Heavy Flavor
- Jet-like correlations
- LFS-UPC
- Measurement of Single Transverse Spin Asymmetry, A_N in Proton–Proton Elastic Scattering at √s = 510 GeV
- Other Groups
- Peripheral Collisions
- Spin
- Spin PWG
- Results and data
- Spin/Cold-QCD Older Physics Analysis
- 2006 EEMC Neutral Pion Cross Section and A_LL
- 2006 Gamma + Jet
- 2009 Lambda D_LL @ 200 GeV
- 2009 dijet x-sect/A_LL @ 200 GeV
- 2011 FMS Jet-like correlations @ 500 GeV
- 2011 FMS inclusive pions @ 500 GeV
- 2011 IFF @ 500 GeV
- 2011 Pions in Jets A_UT @ 500 GeV
- 2012 EEMC Neutral Pion A_LL
- 2012 IFF @ 200 GeV
- 2012 Jet A_LL @ 500 GeV
- 2012 Lambda D_TT @200GeV
- 2012 Pi0 - Jet A_LL @ 500
- 2012 Pions in Jets A_UT @ 200 GeV
- 2012 dijet A_LL @ 500
- 2012/13 FMS A_LL @ 500 GeV
- 2013 Di-jet A_LL @ 500 GeV
- A New Users Guide to PDSF Success
- Analyses from the early years
- (A) List of Physics Analysis Projects (obsolete)
- Common Analysis Trees
- EEMC Direct Photon Studies (Pibero Djawotho, 2006-2008)
- G/h Discrimination Algorithm (Willie)
- Neutral Pions 2005: Frank Simon
- Neutral strange particle transverse asymmetries (tpb)
- Photon-jet with the Endcap (Ilya Selyuzhenkov)
- Relative Luminosity Analysis
- Run 6 Dijet Cross Section (Tai Sakuma)
- Run 6 Dijet Double Longitudinal Spin Asymmetry (Tai Sakuma)
- Run 6 Inclusive Jet Cross Section (Tai Sakuma)
- Run 6 Neutral Pions
- Run 6 Relative Luminosity (Tai Sakuma)
- Run 8 trigger planning (Jim Sowinski)
- Run 9
- Beam Polarizations
- Charged Pions
- Fully Reconstructed Ws
- Jet Trees
- W 2009 analysis , pp 500 GeV
- W 2011 AL
- W 2012 AL (begins here)
- W/Z 2013 Analysis
- Useful Links
- Weekly PWG Meetings
- Working Group Members
- Yearly Tasks
Energy loss identification
Updated on Thu, 2008-05-08 03:04. Originally created by tpb on 2008-05-08 03:02.
Under:
Energy loss particle identification
The Bethe-Bloch equation can be used to predict charged particle energy loss. Hans Bichsel's model adds to this and the Bichsel function predictions for particle energy loss are compared with measured values. Tracks with dE/dx sufficiently far from the predicted value are rejected. e.g. when selecting for Λ hyperons, the positive track is required to have dE/dx consistent with that of a proton, and the negative track consistent with that of a π-minus.
The quantity σ = sqrt(N) x log( measured dE/dx - model dE/dx ) / R is used to quantify the deviation of the measured dE/dx from the model value. N is the number of track hits used in dE/dx determination and R is a resolution factor. A cut of |σ| < 3 applied to both V0 daughter tracks was found to significantly reduce the background with no loss of signal. Figures one to three below show the invariant mass distriubtions of the V0 candidates accepted and rejected and table one summarises the results of the cut. Background rejection is more successful for (anti-)Λ than for K0S because most background tracks are pions; the selection of an (anti-)proton daughter rejects the majority of the background tracks.
Figure 1a: Invariant mass spectrum of V0 candidates under K0s hypothesis passing dE/dx cut |
Figure 1b: Invariant mass spectrum of V0 candidates under K0s hypothesis failing dE/dx cut |
Figure 2a: Invariant mass spectrum of V0 candidates under Λ hypothesis passing dE/dx cut |
Figure 2b: Invariant mass spectrum of V0 candidates under Λ hypothesis failing dE/dx cut |
Figure 3a: Invariant mass spectrum of V0 candidates under anti-Λ hypothesis passing dE/dx cut |
Figure 3b: Invariant mass spectrum of V0 candidates under anti-Λ hypothesis failing dE/dx cut |
Species | Pass (millions) | Fail (millions) | % pass |
---|---|---|---|
K0S | 95.5 | 48.9 | 66.2 % |
Λ | 32.5 | 111.9 | 22.5 % |
anti-Λ | 11.8 | 132.5 | 8.2 % |
Table 1
»
- Printer-friendly version
- Login or register to post comments