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1

Gawinecki, Jerzy August. Initial-boundary value problem in nonlinear hyperbolic thermoelasticity: Some applications in continuum mechanics. Polska Akademia Nauk, Instytut Matematyczny, 2002.

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2

Aĭzikovich, S. M. Analiticheskie reshenii︠a︡ smeshannykh osesimmetrichnykh zadach dli︠a︡ funkt︠s︡ionalʹno-gradientnykh sred. FIZMATLIT, 2011.

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3

1951-, Weber Roman, ed. Radiation in enclosures: Elliptic boundary value problem. Springer, 2000.

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4

Govorov, N. V. Riemann's boundary problem with infinite index. Birkhäuser Verlag, 1994.

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5

1957-, Jackson Thomas L., Lasseigne D. G, and Langley Research Center, eds. The initial-value problem for viscous channel flows. Institute for Computer Applications in Science and Engineering, NASA Langley Research Center, 1995.

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6

Vuik, C. The solution of a one-dimensional Stefan problem. Centrum voor Wiskunde en Informatica, 1993.

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7

Sansò, Fernando, and Michael G. Sideris. Geodetic Boundary Value Problem: the Equivalence between Molodensky’s and Helmert’s Solutions. Springer International Publishing, 2017. http://dx.doi.org/10.1007/978-3-319-46358-2.

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8

Hartley, T. T. Insights into the fractional order initial value problem via semi-infinite systems. National Aeronautics and Space Administration, Lewis Research Center, 1998.

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9

Tsaoussi, Lucia S. A simulation study of the overdetermined geodetic boundary value problem using collocation. Dept. of Geodetic Science and Surveying, Ohio State University, 1989.

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10

Gelderen, Martin van. The geodetic boundary value problem in two dimensions and its iterative solution. Nederlandse Commissie voor Geodesie, 1991.

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11

Popivanov, Peter R. The degenerate oblique derivative problem for elliptic and parabolic equations. Akademie Verlag, 1997.

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12

Lambert, J. D. Numerical methods for ordinary differential systems: The initial value problem. Wiley, 1991.

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13

I͡Anushauskas, Alʹgimantas Ionosovich. The oblique derivative problem of potential theory. Consultants Bureau, 1989.

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14

Skorokhodov, S. L. Analiticheskoe reshenie zadachi Dirikhle dl͡ia odnogo klassa dvusv͡iaznykh oblasteĭ. Vychislitelʹnyĭ ͡tsentr AN SSSR, 1990.

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15

B, Volkov D., ed. Reshenie zadachi Dirikhle dl͡ia uravneni͡ia Puassona v nekotorykh oblast͡iakh so slozhnym stroeniem grani͡tsy. Vychislitelʹnyĭ ͡tsentr AN SSSR, 1989.

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16

L, Skorokhodov S., та Akademi͡ia nauk SSSR. Vychislitelʹnyĭ ͡tsentr, ред. Analiticheskoe reshenie zadachi Dirikhle dl͡ia uravneni͡ia Puassona v odnom klasse poligonalʹnykh oblasteĭ. Vychislitelʹnyĭ ͡tsentr AN SSSR, 1988.

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17

Sturgeon, Jane A. A shooting technique for a differential / algebraic boundary value problem arising in detonation modelling. UMIST, 1997.

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18

J, Liandrat, and Institute for Computer Applications in Science and Engineering., eds. On the effective construction of compactly supported wavelets satisfying homogenous boundary conditions on the interval. Institute for Computer Applications in Science and Engineering, NASA Langley Research Center, 1996.

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19

Elliot, Tonkes, ed. On the nonlinear Neumann problem with critical and supercritical nonlinearities. Polska Akademia Nauk, Instytut Matematyczny, 2003.

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20

Moroșanu, Gheorghe. Metode funcţionale în studiul problemelor la limită. Tipografia Universității din Timișoara, 1999.

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21

Benedek, Agnes Ilona. Remarks on a theorem of Å. Pleijel and related topics. INMABB-CONICET, Universidad Nacional del Sur, 2005.

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22

Keyes, David E. Analysis of a parallelized nonlinear elliptic boundary value problem solver with application to reacting flows. ICASE, 1987.

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23

H, Carpenter Mark, and Langley Research Center, eds. The theoretical accuracy of Runge-Kutta time discretizations for the initial boundary value problem: A careful study of the boundary error. National Aeronautics and Space Administration, Langley Research Center, 1993.

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24

1951-, Smooke Mitchell D., and Institute for Computer Applications in Science and Engineering, eds. Analysis of a parallelized nonlinear elliptic boundary value problem solver with application to reacting flows: Final report. Institute for Computer Applications in Science and Engineering, NASA Langley Research Center, 1987.

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25

Molenkamp, F. Analytical solutions of dirichlet type of boundary value problem of hour-glass mode of 4-node quad. UMIST, 1999.

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26

Ri︠a︡benʹkiĭ, V. S. Long-time numerical integration of the three-dimensional wave equation in the vicinity of a moving source. National Aeronautics and Space Administration, Langley Research Center, 1999.

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27

͡IAkovleva, E. A. Issledovanie zadachi krucheni͡ia sterzhn͡ia slozhnogo poperechnogo secheni͡ia metodom dekompozi͡tsii. Vychislitelʹnyĭ ͡tsentr RAN, 1996.

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28

Baldwin, P. Asymptotic estimates of the eigenvalues of a sixth-order boundary-value problem obtained by using global phase-integralmethods. Royal Society of London, 1987.

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29

Wachspress, Eugene. The ADI Model Problem. Springer New York, 2013.

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30

1956-, Dos̆lá Zuzana, and Graef John R. 1942-, eds. The nonlinear limit-point/limit-circle problem. Birkhäuser, 2003.

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31

Li, Daqian. Global classical solutions for quasilinear hyperbolic systems. Wiley, 1994.

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32

United States. National Aeronautics and Space Administration., ed. An initial investigation into methods of computing transonic aerodynamic sensitivity coefficients: Semiannual progress report, January 1, 1988 - June 30, 1988. Aerospace Engineering Dept., Texas A&M University, 1988.

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33

United States. National Aeronautics and Space Administration., ed. An initial investigation into methods of computing transonic aerodynamic sensitivity coefficients: Semiannual progress report, January 1991 - June 1991. Aerospace Engineering Dept., Texas A&M University, 1991.

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34

United States. National Aeronautics and Space Administration., ed. An initial investigation into methods of computing transonic aerodynamic sensitivity coefficients: Semiannual progress report, July 1990 - December 1990. Aerospace Engineering Dept., Texas A&M University, 1991.

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35

Graglia, Roberto D., Giuseppe Pelosi, and Stefano Selleri, eds. International Workshop on Finite Elements for Microwave Engineering. Firenze University Press, 2016. http://dx.doi.org/10.36253/978-88-6655-968-9.

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When Courant prepared the text of his 1942 address to the American Mathematical Society for publication, he added a two-page Appendix to illustrate how the variational methods first described by Lord Rayleigh could be put to wider use in potential theory. Choosing piecewise-linear approximants on a set of triangles which he called elements, he dashed off a couple of two-dimensional examples and the finite element method was born. … Finite element activity in electrical engineering began in earnest about 1968-1969. A paper on waveguide analysis was published in Alta Frequenza in early 1969, giv
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36

Orlik, Lyubov', and Galina Zhukova. Operator equation and related questions of stability of differential equations. INFRA-M Academic Publishing LLC., 2020. http://dx.doi.org/10.12737/1061676.

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The monograph is devoted to the application of methods of functional analysis to the problems of qualitative theory of differential equations. Describes an algorithm to bring the differential boundary value problem to an operator equation. The research of solutions to operator equations of special kind in the spaces polutoratonny with a cone, where the limitations of the elements of these spaces is understood as the comparability them with a fixed scale element of exponential type. Found representations of the solutions of operator equations in the form of contour integrals, theorems of existe
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37

Jentsch, Lothar. Zur Existenz Von Regulären lösungen der Elastostatik Stückweise Homogener Körper Mit Neuen Kontaktbedingungen an Den Trennflächen Zwischen Zwei Homogenen Teilen. de Gruyter GmbH, Walter, 2022.

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38

Averbeck, Patrick J. Boundary value problem for the rectangular wavemaker. 1993.

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39

Mbiock, Aristide, and Roman Weber. Radiation in Enclosures: Elliptic Boundary Value Problem. Springer, 2011.

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40

Radiation in Enclosures: Elliptic Boundary Value Problem. Springer Berlin Heidelberg, 2000.

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41

Mbiock, Aristide. Radiation in Enclosures: Elliptic Boundary Value Problem. Springer, 2012.

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42

Tanaka, Yoshihiro. Irregular points in wavemaker boundary value problem. 1988.

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43

Greiner, Peter Charles. Estimates of the Neumann Problem. Princeton University Press, 2016.

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44

Greiner, Peter Charles. Estimates of the Neumann Problem. Princeton University Press, 2015.

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45

Helfenstein, Franz Hugo. A free boundary value problem modeling streambed erosion. 1986.

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46

Greiner, Peter Charles. Estimates of the Neumann Problem. (MN-19), Volume 19. Princeton University Press, 2015.

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47

Sanz, Jose M. Well Posed Boundary Value Problem in Transonic Gas Dynamics. Creative Media Partners, LLC, 2015.

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48

Haslinger, Friedrich. d-Bar Neumann Problem and Schrödinger Operators. de Gruyter GmbH, Walter, 2014.

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49

C, Gupta S. Classical Stefan Problem: Basic Concepts, Modelling and Analysis. Elsevier Science & Technology Books, 2003.

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50

Sideris, Michael G., and Fernando Sansò. Geodetic Boundary Value Problem: The Equivalence Between Molodensky's and Helmert's Solutions. Springer, 2016.

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