Kazutaka Sudoh (KEK) INPC2007, Tokyo June 5, 2007 Global Analysis of Hadron-production Data in e + e - Annihilation for Determining Fragmentation Functions.

Slides:



Advertisements
Similar presentations
Kazutaka Sudoh (KEK) SPIN2007, Vancouver July 30, 2007 Determination of Fragmentation Functions and Their Uncertainties Determination of Fragmentation.
Advertisements

1 Global reanalysis of nuclear PDFs Kari J. Eskola, Department of Physics, University of Jyväskylä Helsinki Institute of Physics hep-ph/ , in collaboration.
Target Fragmentation studies at JLab M.Osipenko in collaboration with L. Trentadue and F. Ceccopieri, May 20,SIR2005, JLab, Newport News, VA CLAS Collaboration.
Longitudinal Spin at RHIC 29 th Winter Workshop on Nuclear Dynamics February 7, 2013 Cameron McKinney.
Pawan Kumar NetrakantiPANIC-2005, Santa Fe1 Pion, proton and anti-proton transverse momentum spectra in p+p and d+Au collisions at  s NN = 200 GeV Outline:
1/9 Constraint on  g(x) at large-x Bj Masanori Hirai Titech (Asymmetry Analysis collaboration) With S. Kumano and N. Saito hep-ph/ ,TUKUBA.
Constraining the polarized gluon PDF in polarized pp collisions at RHIC Frank Ellinghaus University of Colorado (for the PHENIX and STAR Collaborations)
Particle Production in p + p Reactions at GeV K. Hagel Cyclotron Institute Texas A & M University for the BRAHMS Collaboration.
AAC Global Analysis Naohito Saito (KEK) for Shunzo Kumano High Energy Accelerator Research Organization (KEK) Graduate University for Advanced Studies.
Ali Hanks - APS Direct measurement of fragmentation photons in p+p collisions at √s = 200GeV with the PHENIX experiment Ali Hanks for the PHENIX.
Lecture I: pQCD and spectra. 2 What is QCD? From: T. Schaefer, QM08 student talk.
We distinguish two hadronization mechanisms:  Fragmentation Fragmentation builds on the idea of a single quark in the vacuum, it doesn’t consider many.
STAR Patricia Fachini QM20081 ρ 0 Production at High p T in Central Au+Au and p+p collisions at  s NN = 200 GeV in STAR STAR Patricia Fachini Brookhaven.
Masayasu Harada (Nagoya Univ.) based on M.H., M.Rho and C.Sasaki, Phys. Rev. D 70, (2004) M.H., Work in progress at “Heavy Quark Physics in QCD”
1 Updates on Transversity Experiments and Interpretations Jen-Chieh Peng Transversity Collaboration Meeting, JLab, March 4, 2005 University of Illinois.
AAC analysis of polarized parton distributions with uncertainties Shunzo Kumano, Saga University 12th.
QCD Analysis and Fragmentation Functions in the BELLE Experiment
Charm hadrons in nuclear medium S. Yasui (KEK) K. Sudoh (Nishogakusha Univ.) “Hadron in nucleus” 31 Nov. – 2 Dec arXiv:1308:0098 [hep-ph]
Anomaly of over ratios in Au+Au collision with jet quenching Xiaofang Chen IOPP, CCNU Collaborator: Enke Wang Hanzhong Zhang Benwei Zhang Beijing Mar.
1 Flavor Symmetry of Parton Distributions and Fragmentation Functions Jen-Chieh Peng Workshop on “Future Prospects in QCD at High Energy” BNL, July 17-22,
1 EPS08 - An improved global analysis of nuclear PDFs including RHIC data Kari J. Eskola Department of Physics, University of Jyväskylä Helsinki Institute.
1/10 Global analysis and the impact of eRHIC data Masanori Hirai TiTech (Asymmetry Analysis Collaboration) With S. Kumano and N. Saito , BNL.
Columbia University Christine Aidala September 4, 2004 Solving the Proton Spin Crisis at ISSP, Erice.
QCD analysis of the nucleon spin structure function data in next to leading order in α S The polarized gluon distribution in the nucleon Jechiel Lichtenstadt.
1 Search for the Effects of the QCD Color Factor in High-Energy Collisions at RHIC Bedanga Mohanty LBNL  Motivation  Color Factors  Search for Color.
Future Physics at JLab Andrew Puckett LANL medium energy physics internal review 12/14/
NLO QCD fits to polarized DIS & SIDIS data NLO QCD fits to polarized DIS & SIDIS data Rodolfo Sassot Universidad de Buenos Aires Global Analysis Workshop,
Error Estimation of Fragmentation Functions Based on Global QCD Analysis Tokyo Inst. of Tech. 1. Motivation 2. Analysis Method 3. Results 4. Summary Contents.
The Role of Higher Twists in Determining Polarized Parton Densities E. Leader (London), A. Sidorov (Dubna), D. Stamenov (Sofia) 10th International Workshop.
1 A New Physics Study in B  K  & B  K*  Decays National Tsing Hua University, October 23, 2008 Sechul OH ( 吳世哲 ) ( 오세철 ) C.S. Kim, S.O., Y.W. Yoon,
22 nd Winter Workshop on Nuclear Dynamics “Can STAR p+p data help constrain fragmentation functions for strange hadrons” Mark Heinz (for the STAR collaboration)
1/8 Constraint on  g(x) from  0 production at RHIC Masanori Hirai Tokyo Tech (Asymmetry Analysis collaboration) With S. Kumano and N. Saito Phys.Rev.D74,
Oct 6, 2008Amaresh Datta (UMass) 1 Double-Longitudinal Spin Asymmetry in Non-identified Charged Hadron Production at pp Collision at √s = 62.4 GeV at Amaresh.
HERMES による パートン helicity 分布関数の QCD 解析 Tokyo Inst. of Tech. 1. Quantum Chromo-Dynamics (QCD) 2. Parton Helicity Distribution and Nucleon Spin Problem 3.
Thomas Jefferson National Accelerator Facility PAC-25, January 17, 2004, 1 Baldin Sum Rule Hall C: E Q 2 -evolution of GDH integral Hall A: E94-010,
Structure Functions in the Nucleon Shunzo Kumano High Energy Accelerator Research Organization (KEK) Graduate University for Advanced Studies (GUAS) April.
Twist-3 predictions for single spin asymmetry for light-hadron productions at RHIC Koichi Kanazawa (Niigata Univ) ・ KK and Y. Koike, PRD 83, (2011)
SWADHIN TANEJA (STONY BROOK UNIVERSITY) K. BOYLE, A. DESHPANDE, C. GAL, DSSV COLLABORATION 2/4/2016 S. Taneja- DIS 2011 Workshop 1 Uncertainty determination.
1 STAR Double Longitudinal Spin Asymmetries of Inclusive Charged Pion Production in Polarized p+p Collisions at 200 GeV Adam Kocoloski, MIT For the STAR.
2010/04/18Yichun Measurements of identified hadron production at high p T in p+p and Au+Au collisions at RHIC-STAR 许依春 (Yichun Xu)
Tensor and Flavor-singlet Axial Charges and Their Scale Dependencies Hanxin He China Institute of Atomic Energy.
Global QCD Analysis of Polarized SIDIS Data and Fragmentation Functions Tokyo Tech 1. Motivation 2. pQCD Analysis of Fragment Functions (FFs) 3. Results.
HEP2003 Photon Structure Albert De Roeck (CERN) 1 Measurements of the Photon Structure Function at LEP Albert De Roeck / CERN Representing the LEP Collaborations.
DIS 2007, Munich 1 STAR identified particle measurements at high transverse momentum in p+p at  s NN = 200 GeV Mark Heinz Yale University.
M. Djordjevic 1 Light and heavy flavor phenomenology at RHIC and LHC Magdalena Djordjevic Institute of Physics Belgrade, University of Belgrade.
M. Djordjevic 1 Suppression and energy loss in Quark-Gluon Plasma Magdalena Djordjevic Institute of Physics Belgrade, University of Belgrade.
HKNS fragmentation functions and proposal for exotic-hadron search Shunzo Kumano High Energy Accelerator Research Organization (KEK) Graduate University.
Exotic hadrons from fragmentation functions Shunzo Kumano High Energy Accelerator Research Organization (KEK) Graduate University for Advanced Studies.
Mark T. Heinz Yale University
Probing QGP-medium interactions
Measurements of ΔG Focus on COMPASS data ΔG from scaling violations
Qin-Tao Song High Energy Accelerator Research Organization (KEK)
Explore the new QCD frontier: strong color fields in nuclei
共同研究者:岡真(東工大), 熊野俊三(KEK),
Hadron-structure studies at a neutrino factory
Determination of nuclear PDFs in the EIC era (Status of NPDFs and our requests to EIC experimentalists) Shunzo Kumano High Energy Accelerator Research.
Status and Implications of PID measurements at high pT
Possible studies of structure functions at JLab
Masanori HIRAI 2006, Nov 9, Tokyo-u
The role of pSIDIS data in QCD global fits
NLO QCD fits to polarized semi-inclusive DIS data
Nuclear Modifications of Parton Distribution Functions
Shadowing & quenching two stories in nuclear colliding
Probing hadron structure from hard processes
Fragmentation or Recombination at High pT?
Measurements of ΔG Focus on COMPASS data ΔG from scaling violations
Identified Charged Hadron Production
- 縦偏極パートン分布関数解析に対する、破砕関数の影響 -
Internal structure of f0(980) meson by fragmentation functions
The Helicity Structure of the Nucleon from Lepton Nucleon Scattering
Presentation transcript:

Kazutaka Sudoh (KEK) INPC2007, Tokyo June 5, 2007 Global Analysis of Hadron-production Data in e + e - Annihilation for Determining Fragmentation Functions Global Analysis of Hadron-production Data in e + e - Annihilation for Determining Fragmentation Functions I.Introduction II.Global Analysis of Fragmentation Functions III.Uncertainty Estimation IV.Summary In collaboration with M. Hirai (TITech), S. Kumano (KEK), and T.-H. Nagai (The Grad. Univ.) Reference: Phys. Rev. D 75, (2007)

K. Sudoh (KEK) Page-2 Fragmentation Function in Fragmentation Functions (FFs): Fragmentation process occurs from quarks, anti-quarks, and gluons, so that F h is expressed in terms of their contributions: Coefficient Function calculable in pQCD Fragmentation Function extracted from experiments energy fraction of hadron and primary quark : CMS energy h q q : scaling variable

K. Sudoh (KEK) Page-3 Momentum (Energy) Sum Rule –Energy conservation should be hold for each flavor DGLAP equation: controls the energy dependence of FFs Favored and Disfavored Fragmentation Functions : j → i splitting function Disfavored FFs: Favored FFs: from a quark which exists in a naïve quark model from a quark which does not exist in a naïve quark model

K. Sudoh (KEK) Page-4 Present Status of FFs There are two widely used FFs by Kretzer and KKP. –An updated version of KKP is AKK. Independent global analysis of FFs including new data Estimate their uncertainties (It’s new!!!) Kretzer S. Kretzer PRD62, (2000) KKP B.A. Kniehl, G. Kramer, B. Potter, NPB582, 514 (2000) AKK S. Albino, B.A. Kniehl, G. Kramer, NPB725, 181 (2005) But, these functions are very different. Large differences indicate that the current FFs have much ambiguities. Just after our analysis, a new parametrization including ep and pp reactions is proposed by D. de Florian, R. Sassot, M. Stratmann (hep-ph/ ) In this work

K. Sudoh (KEK) Page-5 Purpose for investigating FFs Origin of proton spin Properties of quark-gluon matter Fragmentation Functions (FFs) are key issue in high energy hadron production processes. Quark, anti-quark, gluon contribution to proton spin (gluon polarization, flavor separation) Nuclear modification (recombination, energy loss,,,)

K. Sudoh (KEK) Page-6 Determination of FFs Determination of fragmentation functions and their uncertainties in LO and NLO Discuss NLO improvement in comparison with LO –Role of higher order corrections in the determination Comparison with other parametrizations SLD 2004 data (accurate) are included. New aspects in our analysis

K. Sudoh (KEK) Page-7 Ansatz (for  ± ) Function form (simplest form) Constraint condition –2 nd moment should be finite and less than 1

K. Sudoh (KEK) Page-8 Experimental Data: # of data TASSO TCP HRS TOPAZ SLD SLD [light quark] SLD [ c quark] SLD [ b quark] ALEPH OPAL DELPHI DELPHI [light quark] DELPHI [ b quark] 12,14,22,30,34, the number of Data : 264 Kinematical coverage

K. Sudoh (KEK) Page-9  2 Analysis Input parameters and results – Uncertainty estimation: Hessian method –N=14,  2 =15.94: [ K(N.s) :  2 distribution] MRST: EPJC23, 73; PLB531, 216 (2002)

K. Sudoh (KEK) Page-10 Comparison with pion Data (Data-Theory)/Theory Our NLO fit with uncertainties Our fit is successful to reproduce the pion data. The DELPHI data deviate from our fit at large z. Rational deference between data and theory

K. Sudoh (KEK) Page-11 Comparison with pion Data (2) (Data-Theory)/Theory

K. Sudoh (KEK) Page-12 FFs with Uncertainties for pion Gluon and light quark FFs have large uncertainties. Uncertainties bands become smaller in NLO compared with LO. (The data are sensitive to NLO effects.) The NLO improvement is clear especially in gluon and disfavored FFs. Heavy quark functions are relatively well determined.

K. Sudoh (KEK) Page-13 Determined Functions for kaon Gluon and light quark FFs have large uncertainties. Uncertainties bands become smaller in NLO compared with LO. Heavy quark functions are relatively well determined. The situation is similar to the pion funcions Two favored functions for kaon

K. Sudoh (KEK) Page-14 Comparison with Other Parametrizations for pion  evolved to Q 2 =2, 10, 100 GeV 2  All functions are different, but consistent within uncertainties bands. HKNS (Hirai, Kumano, Nagai, Sudoh) Kretzer KKP (Kniehl, Kramer, Potter) AKK (Albino, Kniehl, Kramer) DSS (deFlorian, Sassot, Stratmann)

K. Sudoh (KEK) Page-15 Comparison for kaon and proton kaonproton ---- DSS

K. Sudoh (KEK) Page-16 Summary Global analysis of FFs was done for independent parametrization –Determine function forms for , K, p in LO, NLO analyses Uncertainties of FFs were estimated –Large uncertainties in gluon and disfavored functions –Heavy quark functions are well determined. –Uncertainties could be reduced by performing NLO analysis Importance of accurate FFs –The uncertainties at low Q 2 are very important for discussing Nucleon’s spin and/or heavy ion physics. (e.g. hadron production at small p T at RHIC) –Need for accurate “low-energy” data by Belle & BaBar Program code for calculating our FFs is now available at