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1

March, Norman H. The many-body problem in quantum mechanics. New York: Dover Publications, 1995.

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2

Many-body problems and quantum field theory. New York: Springer, 2001.

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3

Van, Neck Dimitri, ed. Many-body theory exposed!: Propagator description of quantum mechanics in many-body systems. 2nd ed. Hackensack, NJ: World Scientific, 2008.

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Van, Neck Dimitri, ed. Many-body theory exposed!: Propagator description of quantum mechanics in many-body systems. Hackensack, NJ: World Scientific, 2005.

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5

Dickhoff, Willem Hendrik. Many-body theory exposed!: Propagator description of quantum mechanics in many-body systems. Singapore: World Scientific, 2006.

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6

M, Eisenberg Judah, ed. Quantum mechanics of many degrees of freedom. New York: Wiley, 1988.

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7

Bethe, Hans Albrecht. Quantum mechanics of one- and two-electron atoms. Mineola, N.Y: Dover Publications, 2008.

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8

Trump, M. A. Classical Relativistic Many-Body Dynamics. Dordrecht: Springer Netherlands, 1999.

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9

Mathematical methods of many-body quantum field theory. Boca Raton: Chapman & Hall/CRC, 2005.

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10

Kadanoff, Leo P. Quantum statistical mechanics: Green's function methods in equilibrium and nonequilibrium problems. Redwood City, Calif: Addison-Wesley Pub. Co., Advanced Book Program, 1989.

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11

Calzetta, Esteban A. Nonequilibrium quantum field theory. New York: Cambridge University Press, 2008.

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12

Balslev, Erik, ed. Schrö'dinger Operators The Quantum Mechanical Many-Body Problem. Berlin, Heidelberg: Springer Berlin Heidelberg, 1992. http://dx.doi.org/10.1007/3-540-55490-4.

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13

Erik, Balslev, ed. Schrödinger operators: The quantum mechanical many-body problem. Berlin: Springer-Verlag, 1992.

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14

Martin, Philippe A., and François Rothen. Many-Body Problems and Quantum Field Theory. Berlin, Heidelberg: Springer Berlin Heidelberg, 2004. http://dx.doi.org/10.1007/978-3-662-08490-8.

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15

Martin, Philippe A., and François Rothen. Many-Body Problems and Quantum Field Theory. Berlin, Heidelberg: Springer Berlin Heidelberg, 2002. http://dx.doi.org/10.1007/978-3-662-04894-8.

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16

Cherednik, Ivan. Quantum many-body problems and representation theory. Tokyo: Mathematical Society of Japan, 1998.

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17

Martin, Philippe A. Many-Body Problems and Quantum Field Theory: An Introduction. Berlin, Heidelberg: Springer Berlin Heidelberg, 2004.

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18

Keser, Aydın Cem. Classical Analogies in the Solution of Quantum Many-Body Problems. Cham: Springer International Publishing, 2018. http://dx.doi.org/10.1007/978-3-030-00488-0.

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19

Beautiful models: 70 years of exactly solved quantum many-body problems. Singapore: World Scientific, 2005.

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20

Ran, Shi-Ju. Tensor Network Contractions: Methods and Applications to Quantum Many-Body Systems. Cham: Springer Nature, 2020.

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21

RCNP International Symposium on Innovative Computational Methods in Nuclear Many-Body Problems (1997 Osaka, Japan). Proceedings of the XVII RCNP International Symposium on Innovative Computational Methods in Nuclear Many-Body Problems: Towards a new generation of physics in finite quantum systems (INNOCOM97), Osaka, Japan, 10-15 November 1997. Edited by Horiuchi H. 1943- and Ōsaka Daigaku. Kaku Butsuri Kenkyū Sentā. Singapore: World Scientific, 1998.

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22

Yudaev, Vasiliy. Hydraulics. ru: INFRA-M Academic Publishing LLC., 2021. http://dx.doi.org/10.12737/996354.

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The textbook corresponds to the general education programs of the general courses "Hydraulics" and "Fluid Mechanics". The basic physical properties of liquids, gases, and their mixtures, including the quantum nature of viscosity in a liquid, are described; the laws of hydrostatics, their observation in natural phenomena, and their application in engineering are described. The fundamentals of the kinematics and dynamics of an incompressible fluid are given; original examples of the application of the Bernoulli equation are given. The modes of fluid motion are supplemented by the features of the transient flow mode at high local resistances. The basics of flow similarity are shown. Laminar and turbulent modes of motion in pipes are described, and the classification of flows from a creeping current to four types of hypersonic flow around the body is given. The coefficients of nonuniformity of momentum and kinetic energy for several flows of Newtonian and non-Newtonian fluids are calculated. Examples of solving problems of transient flows by hydraulic methods are given. Local hydraulic resistances, their use in measuring equipment and industry, hydraulic shock, polytropic flow of gas in the pipe and its outflow from the tank are considered. The characteristics of different types of pumps, their advantages and disadvantages, and ways of adjustment are described. A brief biography of the scientists mentioned in the textbook is given, and their contribution to the development of the theory of hydroaeromechanics is shown. The four appendices can be used as a reference to the main text, as well as a subject index. Meets the requirements of the federal state educational standards of higher education of the latest generation. For students of higher educational institutions who study full-time, part-time, evening, distance learning forms of technological and mechanical specialties belonging to the group "Food Technology".
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23

Brueckner, Keith A., D. J. Thouless, and H. S. W. Massey. Quantum Mechanics of Many-Body Systems. Elsevier Science & Technology Books, 2013.

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24

Thouless, David J. Quantum Mechanics of Many-Body Systems. Dover Publications, Incorporated, 2014.

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25

Thouless, David J. Quantum Mechanics of Many-Body Systems. Dover Publications, Incorporated, 2013.

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26

Thouless, David J. Quantum Mechanics of Many-Body Systems. Dover Publications, Incorporated, 2013.

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27

Martin, Philippe A., and Francois Rothen. Many Body Problems and Quantum Field Theory: An Introduction. Springer, 2001.

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28

Many-Body Problems and Quantum Field Theory: An Introduction. Springer London, Limited, 2013.

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29

Succi, Sauro. QLB for Quantum Many-Body and Quantum Field Theory. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780199592357.003.0033.

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Chapter 32 expounded the basic theory of quantum LB for the case of relativistic and non-relativistic wavefunctions, namely single-particle quantum mechanics. This chapter goes on to cover extensions of the quantum LB formalism to the overly challenging arena of quantum many-body problems and quantum field theory, along with an appraisal of prospective quantum computing implementations. Solving the single particle Schrodinger, or Dirac, equation in three dimensions is a computationally demanding task. This task, however, pales in front of the ordeal of solving the Schrodinger equation for the quantum many-body problem, namely a collection of many quantum particles, typically nuclei and electrons in a given atom or molecule.
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30

Leeuwen, Robert van, and Gianluca Stefanucci. Nonequilibrium Many-Body Theory of Quantum Systems. Cambridge University Press, 2013.

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31

Lehmann, Detlef. Mathematical Methods of Many-Body Quantum Field Theory. Taylor & Francis Group, 2004.

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32

Lehmann, Detlef. Mathematical Methods of Many-Body Quantum Field Theory. Taylor & Francis Group, 2004.

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33

Lehmann, Detlef. Mathematical Methods of Many-Body Quantum Field Theory. Taylor & Francis Group, 2019.

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34

Lehmann, Detlef. Mathematical Methods of Many-Body Quantum Field Theory. Taylor & Francis Group, 2019.

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35

Bonch-Bruevich, V. L. The Green function method in statistical mechanics. 2015.

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36

Kuzemsky, Alexander Leonidovich. Statistical Mechanics and the Physics of Many-Particle Model Systems. World Scientific Publishing Co Pte Ltd, 2017.

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37

Leeuwen, Robert van, and Gianluca Stefanucci. Nonequilibrium Many-Body Theory of Quantum Systems: A Modern Introduction. Cambridge University Press, 2013.

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38

Leeuwen, Robert van, and Gianluca Stefanucci. Nonequilibrium Many-Body Theory of Quantum Systems: A Modern Introduction. Cambridge University Press, 2013.

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39

Leeuwen, Robert van, and Gianluca Stefanucci. Nonequilibrium Many-Body Theory of Quantum Systems: A Modern Introduction. Cambridge University Press, 2013.

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40

Many-Body Effects and Electrostatics in Biomolecules. Taylor & Francis Group, 2016.

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41

Cui, Qiang, Markus Meuwly, and Pengyu Ren. Many-Body Effects and Electrostatics in Biomolecules. Jenny Stanford Publishing, 2016.

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42

Back-Of-the-Envelope Quantum Mechanics: With Extensions to Many-Body Systems and Integrable Pdes. World Scientific Publishing Co Pte Ltd, 2013.

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43

Sabin, John R., and Per-Olov Lowdin. Advances in Quantum Chemistry. Academic Press, 1989.

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44

Recent Progress in Many-Body Theories: Proceedings. Springer, 1988.

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45

Calzetta, Esteban A., and Bei-Lok B. Hu. Nonequilibrium Quantum Field Theory. Cambridge University Press, 2009.

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46

Calzetta, Esteban A., and Bei-Lok B. Hu. Nonequilibrium Quantum Field Theory. Cambridge University Press, 2008.

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47

Calzetta, Esteban A., and Bei-Lok B. Hu. Nonequilibrium Quantum Field Theory. Cambridge University Press, 2008.

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48

Hu, B. L., and Esteban A. Calzetta. Nonequilibrium Quantum Field Theory. Cambridge University Press, 2008.

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49

Nonequilibrium Quantum Field Theory. Cambridge University Press, 2022.

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50

Nonequilibrium Quantum Field Theory. Cambridge University Press, 2022.

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