Bibliography. [1] R.G. Arnold et al. Measurements of the A dependence of deep-inelastic

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1 Bibliography [1] R.G. Arnold et al. Measurements of the A dependence of deep-inelastic electron scattering from nuclei. Phys. Rev. Lett. 52, 727 (1984). [2] L. Ashman et al. Measurement of the ratios of deep inelastic muon-nucleus cross sections on various nuclei compared to deuterium. Phys. Lett. B 202, 603 (1988). [3] T. Sloan, G. Smadja and R. Voss. The quark structure of the nucleon from the CERN muon experiments. Phys. Rep. 162, 45 (1988). [4] R.P. Bickersta and A.W. Thomas. The EMC eect{with emphasis on conventional nuclear corrections. J. Phys. G 15, 1523 (1989). [5] A.E.L. Dieperink and G.A. Miller. Nucleon binding corrections to lepton-nucleus deep inelastic scattering: Use of a realistic spectral function. Phys. Rev. C 44, 866 (1991). [6] C. Cio degli Atti and S. Liuti. Can nuclear binding explain the classical EMC eect. Nucl. Phys. A532, 241c (1991). [7] T. Kitagaki et al. A new method to investigate the nuclear eect in leptonic interactions. Phys. Lett. B 214, 281 (1988). [8] T. Kitagaki et al. Results from FNAL E745 on neutrino-nucleus interactions (EMC eect and hadron formation). In R.G. Arnold, editor, Topical conference on electronuclear physics with internal targets, Stanford, page 95, Teaneck, NJ, World Scientic. [9] J. Guy et al. Neutrino interactions, proton production and a nuclear eect. Phys. Lett. B 229, 421 (1989). [10] C. Cio degli Atti and S. Liuti. On the interpretation of semi-inclusive neutrino nucleus scattering. Nucl. Phys. A532, 235c (1991).

2 104 BIBLIOGRAPHY [11] S. Kumano and F.E. Close. Dependence of the European Muon Collaboration eect on nuclear structure. Phys Rev. C 41, 1855 (1990). [12] G.D. Bosveld, A.E.L. Dieperink and O. Scholten. Semi-inclusive cross sections for deep-inelastic neutrino scattering on hydrogen and deuterium. Phys. Lett. B 264, 11 (1991). [13] G.D. Bosveld, A.E.L. Dieperink and O. Scholten. Slow proton production in semi-inclusive deep-inelastic neutrino scattering on hydrogen and deuterium. Phys. Rev. C 45, 2616 (1992). [14] L.L. Frankfurt and M.I. Strikman. High-energy phenomena, short-range nuclear structure and QCD. Phys. Rep. 76, 215 (1981). [15] L. Heller and A.W. Thomas. Structure functions in the \instant" form of dynamics. Phys. Rev. C 41, 2756 (1990). [16] L.L. Frankfurt, G.A. Miller and M. Strikman. High-energy nuclear reactions: Decisive tests of nuclear-binding/pion models of the European Muon Collaboration eect. Phys. Rev. Lett. 68, 17 (1992). [17] U. Oelfke, P.U. Sauer and F. Coester. Convolution models of deep inelastic scattering: The three-nucleon bound states as a test case. Nucl. Phys. A518, 593 (1990). [18] O. Scholten and G.D. Bosveld. Scaling and four-quark fragmentation. Phys. Lett. B 265, 35 (1991). [19] G.D. Bosveld, A.E.L. Dieperink and A.G. Tenner. Slow proton production in deep-inelastic neutrino scattering on deuterium. Phys. Rev. C 49, 2379 (1994). [20] J.D. Bjorken. Asymptotic sum rules at innite momentum. Phys. Rev. 179, 1547 (1969). [21] T.P. Cheng and L.F. Li. Gauge theory of elementary particle physics. Oxford University Press, [22] F. E. Close. An Introduction to Quarks and Partons. Academic Press, London, [23] R.P. Feynman. Photon-hadron interactions. Frontiers in physics. Benjamin, Reading, [24] R.D. Field and R.P. Feynman. A parametrization of the properties of quark jets. Nucl. Phys. B136, 1 (1978). [25] P.J. Mulders. Modication of nucleons in nuclei and other consequences of the quark substructure. Phys. Rep. 185, 83 (1990).

3 BIBLIOGRAPHY 105 [26] J. Levelt and P.J. Mulders. Quark correlation functions in deep inelastic semi-inclusive processes. Phys. Rev. D 49, 96 (1994). [27] J. Levelt. Deep inelastic semi-inclusive processes PhD Thesis, Free University Amsterdam. [28] R.L. Jae. In M.B. Johnson and A. Picklesheimer, editors, Relativistic Dynamics and Quark Nuclear Dynamics. Wiley, [29] J.C. Collins and D.E. Soper. Parton distribution and decay functions. Nucl. Phys. B194, 445 (1982). [30] A. Bartl, H. Fraas and W. Majerotto. Quark and diquark fragmentation into baryons. Phys. Rev. D 26, 1061 (1982). [31] B. Andersson, G. Gustafson, G. Ingelman and T. Sjostrand. Parton fragmentation and string dynamics. Phys. Rep. 97, 31 (1983). [32] B. Andersson, G. Gustafson and B. Nilsson-Almqvist. A model for low{p T hadronic reactions with generalizations to hadron-nucleus and nucleus-nucleus collisions. Nucl. Phys. B281, 289 (1987). [33] B. Andersson, G. Gustafson, G. Ingelman and T. Sjoestrand. Baryon production in lepton-nucleon scattering and diquark fragmentation. Z. Phys. C 13, 361 (1982). [34] K. Werner. Strings, pomerons and the VENUS model of hadronic interactions at ultrarelativistic energies. Phys. Rep. 232, 87 (1993). [35] K. Werner and P. Koch. A covariant and gauge invariant string fragmentation model. Z. Phys. C 47, 215 (1990). [36] K. Werner and P. Koch. Probing string fragmentation in nuclear matter: Lepton-nucleus scattering. Z. Phys. C 47, 255 (1990). [37] K. Werner. In: Lecture notes presented at the Summer School on Phase Structure of Strongly Interacting Matter, Cape Town Preprint CERN-TH-5682/90. [38] R. Blankenbecler and S.J. Brodsky. Unied description of inclusive and exclusive reactions at all momentum transfers. Phys. Rev. D 10, 2973 (1974). [39] S.J. Brodsky and J.F. Gunion. Hadronic fragmentation as a probe of the underlying dynamics of hadron collisions. Phys. Rev. D 17, 848 (1978). [40] W. Melnitchouk, A.W. Thomas and N.N. Nikolaev. Proton production bias in neutrino-hydrogen interactions. Z. Phys. A 342, 215 (1992).

4 106 BIBLIOGRAPHY [41] M. Derrick et al. Hadron-production mechanisms in antineutrino-proton charged-current interactions. Phys. Rev. D 24, 1071 (1981). [42] M. Arnedo et al. Studies of quark and diquark fragmentation into identied hadrons in deep inelastic muon-proton scattering. Phys. Lett. B 150, 458 (1985). [43] M. Arnedo et al. Proton and antiproton production in deep inelastic muon-nucleon scattering at 280 GeV. Z. Phys. C 35, 433 (1987). [44] J. Bell et al. Experimental study of hadrons produced in high-energy charged-current neutrino-proton interactions. Phys. Rev. D 19, 1 (1979). [45] H. Meyer. A spectator model for deep inelastic electron scattering PhD Thesis, Free University Amsterdam. [46] H. Meyer and P.J. Mulders. Polarized and unpolarized structure functions in a diquark model for the nucleon. Nucl. Phys. B528, 589 (1991). [47] C. Ishii, K. Saito and F. Takagi. Nuclear eects in the semi-inclusive cross section of high energy neutrino-nucleus interactions. Phys. Lett. B 216, 409 (1989). [48] J.D. Sullivan. One-pion exchange and deep-inelastic electron-nucleon scattering. Phys. Rev. D 5, 1732 (1972). [49] M. Lusignoli and Y. Srivastava. Pion electromagnetic structure functions from pion exchange in leptoproduction. Nucl. Phys. B138, 151 (1978). [50] M. Lusignoli, P. Pistilli and F. Rapuano. Semi-inclusive neutrino scattering and pion structure functions. Nucl. Phys. B155, 394 (1979). [51] G.G. Arakelyan, K.G. Boreskov and A.B. Kaidalov. Antiquark distribution in the pion and the nucleon. Sov. J. Nucl. Phys 33, 247 (1981). [52] S. Kumano. N N form factor for explaining sea-quark distributions in the nucleon. Phys. Rev. D 43, 59 (1991). [53] W-Y.P. Hwang, J. Speth and G.E. Brown. Hard form factors for meson-baryon strong couplings as derived from deep inelastic lepton scattering. Z. Phys. A 339, 383 (1991). [54] E.M. Henley and G.A. Miller. Excess of d over u in the proton sea quark distribution. Phys. Lett. B 251, 453 (1990). [55] S. Kumano. Eects of N N form factor on pionic contributions to u(x) d(x) distribution in the nucleon. Phys. Rev. D 43, 3067 (1991).

5 BIBLIOGRAPHY 107 [56] W. Melnitchouk, A.W. Thomas and A.I. Signal. Gottfried sum rule and the shape of F p 2 F n 2. Z. Phys. A 340, 85 (1991). [57] A. Szczurek, J. Speth, and G.T. Garvey. Meson cloud in the nucleon and u d asymmetry from the Drell-Yan process. KFA preprint, KFA-IKP(TH) [58] A. Szczurek and H. Holtman. Meson cloud in the nucleon and search for u d asymmetry. Act. Phys. Pol. B 24, 1833 (1993). [59] A.W. Schreiber, P.J. Mulders, A.I. Signal and A.W. Thomas. The pion cloud of the nucleon and its eect on deep inelastic structure. Phys. Rev. D 45, 3069 (1992). [60] C.L. Korpa, A.E.L. Dieperink and O. Scholten. The pion contribution to semi-inclusive deep inelastic scattering with slow baryons in the nal state. Z. Phys. A 343, 461 (1992). [61] G.G. Arakelyan and K.G. Boreskov. The Drell-Yan process and the pion sea in the nucleon. Sov. J. Nucl. Phys. 41, 267 (1985). [62] L.L. Frankfurt, L. Mankiewicz and M.I. Strikman. Low limit on the slope of N N and N vertex form factors from deep inelastic lepton scattering. Z. Phys. A 334, 343 (1989). [63] R. Machleidt, K. Holinde and Ch. Elster. The Bonn meson-exchange model for the nucleon-nucleon interaction. Phys. Rep. 149, 1 (1987). [64] A. Szczurek and J. Speth. Role of meson degrees of freedom in deep-inelastic lepton-nucleon scattering. Nucl. Phys. A555, 249 (1993). [65] H. Holtmann, A. Szczurek, and J. Speth. Consistent treatment of pseudoscalar and vector mesons in deep-inelastic scattering o nucleons. KFA preprint, KFA-IKP(TH) [66] A. Szczurek, G.D. Bosveld and A.E.L. Dieperink. Slow proton production in semi-inclusive deep inelastic scattering and the pion cloud in the nucleon. KVI preprint, KVI-1096, [67] E. Eichten, I. Hinchlie, K. Lane and C. Quigg. Supercollider physics. Rev. Mod. Phys. 56, 579 (1984). [68] J.S. Conway et al. Experimental study of muon pairs produced by 252-GeV pions on tungsten. Phys. Rev. D 39, 92 (1989). [69] C. Cio degli Atti and S. Liuti. Realistic microscopic approach to deep inelastic scattering of electrons o few-nucleon systems. Phys. Rev. C 41, 1100 (1990).

6 108 BIBLIOGRAPHY [70] P.J. Mulders, A.W. Schreiber and H. Meyer. The convolution approach in deep-inelastic scattering. Nucl. Phys. A549, 498 (1992). [71] H. Meier-Hajduk, U. Oelfke and P.U. Sauer. Inclusive electron scattering from 3 He. Nucl. Phys. A499, 637 (1989). [72] L.L. Frankfurt and M.I. Strikman. On the normalization of the spectral function of the nucleus and the EMC eect. Phys. Lett. B 183, 254 (1987). [73] E. Matsinos et al. Backward particle production in neutrino neon interactions. Z. Phys. C 44, 79 (1989). [74] C. Cio degli Atti and S. Simula. Slow proton production in semi-inclusive deep inelastic lepton scattering o nuclei. Phys. Lett. B 319, 23 (1993). [75] C. Cio degli Atti, S. Simula, L.L. Frankfurt and M.I. Strikman. Two-nucleon correlations and the structure of the nucleon spectral spectral function at high values of momentum and removal energy. Phys. Rev. C 44, R7 (1991). [76] L. Frankfurt and M. Strikman. Hard nuclear processes and microscopic nuclear structure. Phys. Rep. 160, 235 (1988). [77] R.J. Glauber. Cross sections in deuterium at high energies. Phys. Rev. 100, 242 (1955). [78] R.J. Glauber. High-energy Collision Theory. In W.E. Brittin and L. Dunham, editor, Lectures in Theoretical Physics, volume 1. Interscience, New York, [79] D.F. Jackson. Nuclear reactions. Methuen, London, [80] O. Benhar et al. Scattering of GeV electrons by nuclear matter. Phys. Rev. C 44, 2328 (1991). [81] O. Benhar, A. Fabrocini, S. Fantoni, V.R. Pandharipande and I. Sick. Color transparency and correlation eects in quasielastic electron-nucleus scattering at high momentum transfer. Phys. Rev. Lett. 69, 881 (1992). [82] F. Scheck. Leptons, Hadrons and nuclei. North-Holland, Amsterdam, [83] R.H. Bassel and C. Wilkin. Structure of the particle from elastic proton scattering. Phys. Rev. Lett. 18, 871 (1967). [84] A.G Tenner. Deuteron properties studied in neutrino and antineutrino interactions. NIKHEF-H/86-7. [85] N.N. Nikolaev and V.R. Zoller. Multiparticle reactions on deuterons. Nucl. Phys. B147, 336 (1979).

7 BIBLIOGRAPHY 109 [86] A. Bialas and M. Gyulassy. Lund model and an outside-inside aspect of the inside-outside cascade. Nucl. Phys. B291, 793 (1987). [87] N.A. Pavel. Hadron production in deep inelastic lepton nucleus scattering. Nucl. Phys. A532, 465c (1991). [88] A. Bialas. Interaction of jets in nuclear matter. Nucl. Phys. A532, 65c (1991). [89] G.R. Farrar, H. Liu, L.L. Frankfurt and M.I. Strikman. Transparency in nuclear quasiexclusive processes with large momentum transfer. Phys. Rev. Lett. 61, 686 (1988). [90] J.W. Chapman et al. Multiplicity distributions in high-energy neutrino interactions. Phys. Rev. Lett. 36, 124 (1976). [91] C.E. Carlson, K.E. Lassila and U.P. Sukhatme. Backward hadrons from deep inelastic lepton scattering on nuclei. Phys. Lett. B 263, 277 (1991). [92] C.E. Carlson and K.E. Lassila. Quark cluster signatures in deuteron electromagnetic interactions. William and Mary preprint, WM [93] C. Cio degli Atti and S. Simula. Nucleon-nucleon correlations and six-quark cluster eects in semi-inclusive deep inelastic lepton scattering o few-nucleon systems. Perugia preprint, INFN{ISS 94/8, to appear in Few-Body Systems. [94] D. Allasia et al. Inclusive 0 production in D and D charged current interactions. Nucl. Phys. B268, 1 (1986). and references therein. [95] A.G Tenner. An estimate of the rescattering fraction in neutrino- and antineutrino-deuterium interactions. NIKHEF-H/88-6. [96] A.G. Tenner and N.N. Nikolaev. Rescattering in =-deuteron reactions. Nuovo Cim. A 105, 1001 (1992). [97] M. Lacombe et al. Parametrization of the deuteron wave function of the Paris N-N potential. Phys. Lett. B 101, 139 (1981). [98] P. Zavada. The energy and angular spectra of grey particles in high-energy hadron-nucleus interactions. Z. Phys. C 32, 135 (1986). [99] W. Melnitchouk and A.W. Thomas. Pion content of the nucleon in polarized semi-inclusive DIS. Adelaide preprint, ADP-94-6/T148. To appear in Proceedings of the Workshop on CEBAF at Higher Energies, April [100] E.L. Berger and F. Coester. Structure functions of nuclei in the pion exchange model. In S. Brodsky and E. Moniz, editors, Workshop on nuclear chromodynamics: Quarks and gluons in particles and nuclei, page 255, Singapore, World Scientic.

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