Books on the topic 'Method of fundamental solution'

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1

Augustin, Matthias Albert. A Method of Fundamental Solutions in Poroelasticity to Model the Stress Field in Geothermal Reservoirs. Cham: Springer International Publishing, 2015. http://dx.doi.org/10.1007/978-3-319-17079-4.

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2

Metod fundamentalʹnykh resheniĭ v geomekhanike dobychi nefti i gaza: Method of fundamental solutions in geomechanic of reservoirs and wells. Moskva: RUDN, 2013.

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3

1948-, Gray William G., ed. Numerical methods for differential equations: Fundamental concepts for scientific and engineering applications. Englewood Cliffs, N.J: Prentice Hall, 1992.

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4

Société française de chimie. Division de chimie physique. International Meeting. Chemical reactivity in liquids: Fundamental aspects. Edited by Moreau Michel and Turq Pierre. New York: Plenum Press, 1988.

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5

Clerck, Marcel de. The operational seminar: A training method to foster development. Geneva: InternationalBureau of Education, 1990.

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6

Martynov, G. A. Fundamental theory of liquids: Method of distribution functions. Bristol: A. Hilger, 1992.

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7

Hartley, T. T. A solution to the fundamental linear fractional order differential equation. [Cleveland, Ohio]: National Aeronautics and Space Administration, Lewis Research Center, 1998.

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8

Gokalp, Mulayim Zia. The fundamental problems of Turkish cooperatives and proposals for their solution. Istanbul: Friedrich Ebert Foundation, 1990.

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9

Clark, R. W. A new iterative matrix solution procedure for three-dimensional panel methods. New York: AIAA, 1985.

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10

Logg, Anders, Kent-Andre Mardal, and Garth Wells, eds. Automated Solution of Differential Equations by the Finite Element Method. Berlin, Heidelberg: Springer Berlin Heidelberg, 2012. http://dx.doi.org/10.1007/978-3-642-23099-8.

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11

The DMR method: Non-surgical solution to severe back pain. Apple Valley, MN: Tangletown Media, 2015.

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12

Gdanskiy, Nikolay. Fundamentals of the theory and algorithms on graphs. ru: INFRA-M Academic Publishing LLC., 2020. http://dx.doi.org/10.12737/978686.

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The textbook describes the main theoretical principles of graph theory, the main tasks to be solved using graph structures, and General methods of their solution and specific algorithms, with estimates of their complexity. I covered a lot of the examples given questions to test knowledge and tasks for independent decisions. Along with the control tasks to verify the theoretical training provided practical assignments to develop programs to study topics of graph theory. Meets the requirements of Federal state educational standards of higher education of the last generation. Designed for undergraduate and graduate programs, studying information technology, for in-depth training in analysis and design of systems of complex structure. Also the guide can be useful to specialists of the IT sphere in the study of algorithmic aspects of graph theory.
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13

Alzofon, Frederick E. Two methods for the exact solution of diffraction problems. Bellingham, WA: SPIE Optical Engineering Press, 2004.

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14

Two methods for the exact solution of diffraction problems. Bellingham, WA: SPIE Press, 2003.

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15

Endoxic method and ethical inquiry: An analysis and defense of a method for justifying fundamental ethical principles. New York: P. Lang, 2000.

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16

1940-, Lü T., and Shih T. M. 1937-, eds. The splitting extrapolation method: A new technique in numerical solution of multidimensional problems. Singapore: World Scientific, 1995.

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17

Saad, Y. Numerical solution of large Lyapunov equations. [Moffett Field, Calif.]: Research Institute for Advanced Computer Science, NASA Ames Research Center, 1989.

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18

Richter, Wieland. Numerical solution of partial differential equations using the finite element method. Stuttgart: B. Perera, 1990.

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19

Biswas, R. An edge-based solution-adaptive method applied to the AIRPLANE code. [Moffett Field, CA]: Research Institute for Advanced Computer Science, NASA Ames Research Center, 1995.

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20

Koen, Billy Vaughn. Discussion of the method: Conducting the engineer's approach to problem solution. New York: Oxford University Press, 2003.

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21

1943-, Johnson Claes, ed. Numerical solution of partial differential equations by the finite element method. Cambridge [England]: Cambridge University Press, 1987.

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22

Arie Pieter van den Berg. A hybrid method for the solution of seismic wave propagation problems. Utrecht: Instituut voor Aardwetenschappen der Rijksuniversiteit te Utrecht, 1987.

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23

Numerical solution of partial differential equations by the finite element method. Mineola, N.Y: Dover Publications, 2009.

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24

Discussion of the method: Conducting the engineer's approach to problem solution. New York: Oxford University Press, 2003.

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25

Poullikkas, Andreas. The method of fundamental solutions for the solution of elliptic boundary value problems. 1997.

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26

Trefftz and Fundamental Solution-Based Finite Element Methods. Bentham Science Publishers, 2021.

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27

Qin, Qing-Hua. Trefftz and Fundamental Solution-Based Finite Element Methods. Bentham Science Publishers, 2021.

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28

Qin, Qing-Hua, ed. Trefftz and Fundamental Solution-Based Finite Element Methods. BENTHAM SCIENCE PUBLISHERS, 2021. http://dx.doi.org/10.2174/97898149985431210101.

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29

Qin, Qing-Hua. Trefftz and Fundamental Solution-Based Finite Element Methods. Bentham Science Publishers, 2021.

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30

Mercati, Flavio. York’s Solution to the Initial-Value Problem. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198789475.003.0008.

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In this chapter I briefly review York’s method (or the conformal method) for solving the initial value problem of (GR). This method, developed initially by Lichnerowicz and then generalized by Choquet-Bruhat and York, allows to find solutions of the constraints of (GR) (in particular the Hamiltonian, or refoliation constraint) by scanning the conformal equivalence class of spatial metrics for a solution of the Hamiltonian constraint, exploiting the fact that, in a particular foliation (CMC), the transverse nature of the momentum field is preserved under conformal transformations. This method allows to transform the initial value problem into an elliptic problem for the solution for which good existence and uniqueness theorems are available. Moreover this method allows to identify the reduced phase space of (GR) with the cotangent bundle to conformal superspace (the space of conformal 3-geometries), when the CMC foliation is valid. SD essentially amounts to taking this phase space as fundamental and renouncing the spacetime description when the CMC foliation is not available.
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31

Augustin, Matthias Albert. Method of Fundamental Solutions in Poroelasticity to Model the Stress Field in Geothermal Reservoirs. Birkhauser Verlag, 2015.

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32

Augustin, Matthias Albert. A Method of Fundamental Solutions in Poroelasticity to Model the Stress Field in Geothermal Reservoirs. Birkhäuser, 2015.

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33

Wang, Jingguo. The method of fundamental solutions (MFS) and modified surface impedance boundary conditions (IBC) applied to 2D and 3D eddy current problems. 1993.

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34

Fundamental Design Method. Turnstone Books, 1998.

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35

Fundamental Design Method. IFR Press, 2009.

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36

Wang, Hui, and Qing-Hua Qin. Methods of Fundamental Solutions in Solid Mechanics. Elsevier, 2019.

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37

Wang, Hui, and Qing-Hua Qin. Methods of Fundamental Solutions in Solid Mechanics. Elsevier, 2019.

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38

Methods of Fundamental Solutions in Solid Mechanics. Elsevier, 2019. http://dx.doi.org/10.1016/c2018-0-03684-1.

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39

Fundamental method for timpani. Alfred Publishing, 2013.

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40

Chen, Chang. Fundamental Method Of Math.economics. Literatür Yayincilik, 2015.

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41

Fundamental Method for Timpani. Alfred Publishing Company, 1993.

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42

Canuto, Claudio, Alfio Quarteroni, M. Yousuff Hussaini, and Thomas A. Zang. Spectral Methods: Fundamentals in Single Domains. Springer, 2010.

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43

Canuto, Claudio, Alfio Quarteroni, M. Yousuff Hussaini, and Thomas A. Zang. Spectral Methods: Fundamentals in Single Domains. Springer London, Limited, 2007.

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44

Celia, Michael A., and William G. Gray. Numerical Methods For Differential Equations: Fundamental Concepts For Scientific & Engineering Applications. Prentice Hall, 1991.

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45

Celia, Michael A., and William G. Gray. Numerical Methods For Differential Equations: Fundamental Concepts For Scientific & Engineering Applications. Prentice Hall, 1991.

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46

Mitra, Amitava. Solutions Manual to Accompany Fundamentals of Quality Control and Improvement, Solutions Manual. Wiley & Sons, Incorporated, John, 2012.

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47

Canuto, C., M. Y. Hussaini, A. Quarteroni, and T. A. Zang. Spectral Methods: Fundamentals in Single Domains (Scientific Computation). Springer, 2006.

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48

C, Canuto, ed. Spectral methods: Fundamentals in single domains. Berlin: Springer, 2006.

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49

Fundamental Method for Mallets, Book 2. Alfred Publishing, 2006.

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50

Fundamental Method for Mallets, Book 1. Alfred Publishing Company, 1995.

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