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1

Smith, James. Highly accurate beam torsion solutions using the p-Version finite element method. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 1996.

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2

James P. Smith - undifferentiated. Highly accurate beam torsion solutions using the p-version finite element method. [Washington, D.C.?: National Aeronautics and Space Administration, 1996.

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3

Rüde, Ulrich. Accurate numerical solution of convection-diffusion problems: Final report on Grant I/72342 of Volkswagen Foundation. Novosibirsk: Publishing House of Institute of Mathematics, 2001.

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4

Bagajewicz, Miguel J. Smart process plants: Software and hardware solutions for accurate data and profitable operations. New York: McGraw-Hill, 2010.

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5

Anderson, W. Kyle. Accurate solutions, parameter studies, and comparisons for the Euler and potential flow equations. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 1988.

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6

Bagajewicz, Miguel J. Smart process plants: Software and hardware solutions for accurate data and profitable operations. New York: McGraw-Hill, 2010.

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7

Mavriplis, Dimitri J. Accurate multigrid solution of the Euler equations on unstructured and adaptive meshes. Hampton, Va: ICASE, 1988.

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8

Soh, Woo Y. Direct coupling methods for time-accurate solution of incompressible Navier-Stokes equations. [Washington, DC]: National Aeronautics and Space Administration, 1992.

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9

Sidilkover, David. A new time-space accurate scheme for hyperbolic problems I: Quasi-explicit case. Hampton, VA: Institute for Computer Applications in Science and Engineering, NASA Langley Research Center, 1998.

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10

Diskin, Boris. Solving upwind-biased discretizations II: Multigrid solver using semicoarsening. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 1999.

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11

Yeffet, Amir. A non-dissipative staggered fourth-order accurate explicit finite difference scheme for the time-domain Maxwell's equations. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 1999.

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12

Yeffet, Amir. A non-dissipative staggered fourth-order accurate explicit finite difference scheme for the time-domain Maxwell's equations. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 1999.

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13

Yeffet, Amir. A non-dissipative staggered fourth-order accurate explicit finite difference scheme for the time-domain Maxwell's equations. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 1999.

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14

Yeffet, Amir. A non-dissipative staggered fourth-order accurate explicit finite difference scheme for the time-domain Maxwell's equations. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 1999.

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15

Yeffet, Amir. A non-dissipative staggered fourth-order accurate explicit finite difference scheme for the time-domain Maxwell's equations. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 1999.

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16

Manichev, Vladimir, Valentina Glazkova, and Кузьмина Анастасия. Numerical methods. The authentic and exact solution of the differential and algebraic equations in SAE systems of SAPR. ru: INFRA-M Academic Publishing LLC., 2016. http://dx.doi.org/10.12737/13138.

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In the manual classical numerical methods are considered and algorithms for the decision of systems of the ordinary differential equations (ODE), nonlinear and linear algebraic equations (NAU and LAU), and also ways of ensuring reliability and demanded accuracy of results of the decision. Ideas, which still not are stated are reflected in textbooks on calculus mathematics, namely: decision systems the ODE without reduction to a normal form of Cauchy resolved rather derivative, and refusal from any numerical an equivalent - nykh of transformations of the initial equations of mathematical models and is- the hodnykh of data because such transformations can change properties of models at a variation of coefficients in corresponding urav- neniyakh. It is intended for students, graduate students and teachers of higher education institutions in the direction of preparation "Informatics and computer facilities". The grant will also be useful for engineers and scientists on the corresponding specialties.
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17

The co-marketing solution: Strategic marketing through better branding, improved trade relationships, superior promotions, effective fact-based selling, accurate ROI analyses of trade spending. Lincolnwood (Chicago), Ill: NTC Business Books, 2000.

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18

K, Godunov S., ed. Guaranteed accuracy in numerical linear algebra. Dordrecht: Kluwer Academic Publishers, 1993.

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19

High accuracy solutions of incompressible Navier-Stokes equations. [Washington, D.C.]: NASA, 1990.

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20

E, Turkel, and United States. National Aeronautics and Space Administration., eds. High order accurate solutions of viscous problems. [Washington, DC]: National Aeronautics and Space Administration, 1993.

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21

Dadios, Elmer P., ed. Fuzzy Logic - Tool for Getting Accurate Solutions. InTech, 2015. http://dx.doi.org/10.5772/58641.

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22

Vatsa, V. N. Accurate solutions for transonic viscous flow over finitewings. 1986.

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23

Peterson, John Christian. Accurate pH determination of low ionic strength solutions by visible absorption of bromocresol purple. 1991.

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24

Accurate Numerical Solution of Hyperbolic PDEs with Source Terms. Almqvist & Wiksell Internat., 1996.

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25

Boudreau, Joseph F., and Eric S. Swanson. Continuum dynamics. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198708636.003.0019.

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The theory and application of a variety of methods to solve partial differential equations are introduced in this chapter. These methods rely on representing continuous quantities with discrete approximations. The resulting finite difference equations are solved using algorithms that stress different traits, such as stability or accuracy. The Crank-Nicolson method is described and extended to multidimensional partial differential equations via the technique of operator splitting. An application to the time-dependent Schrödinger equation, via scattering from a barrier, follows. Methods for solving boundary value problems are explored next. One of these is the ubiquitous fast Fourier transform which permits the accurate solution of problems with simple boundary conditions. Lastly, the finite element method that is central to modern engineering is developed. Methods for generating finite element meshes and estimating errors are also discussed.
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26

Jinill, Kim, ed. Calculating and using second order accurate solutions of discrete time dynamic equilibrium models. Washington, D.C: Federal Reserve Board, 2003.

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27

Accurate multigrid solution of the Euler equations on unstructured and adaptive meshes. Hampton, Va: NASA Langley Research Center, 1988.

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28

Tsang, Winnie. Helping hand: An anatomically accurate inverse dynamics solution for unconstrained hand motion. 2005.

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29

Tsang, Winnie. Helping hand: An anatomically accurate inverse dynamics solution for unconstrained hand motion. 2005.

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30

United States. National Aeronautics and Space Administration., ed. Direct coupling methods for time-accurate solution of incompressible Navier-Stokes equations. [Washington, DC]: National Aeronautics and Space Administration, 1992.

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31

W, McAllister E., ed. Pipeline rules of thumb handbook: Quick and accurate solutions to your everyday pipeline problems. 6th ed. Amsterdam: Elsevier, 2005.

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32

W, McAllister E., ed. Pipeline rules of thumb handbook: Quick and accurate solutions to your everyday pipeline problems. 5th ed. Boston: Gulf Professional Pub., 2002.

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33

W, McAllister E., ed. Pipeline rules of thumb handbook: Quick and accurate solutions to your everyday pipeline problems. 7th ed. Amsterdam: Gulf Professional/Elsevier, 2009.

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34

Timothy, Spangler. 14 Evaluating and Implementing Private Monitoring Solutions. Oxford University Press, 2018. http://dx.doi.org/10.1093/law/9780198807247.003.0014.

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This chapter considers three private monitoring solutions designed to help fund investors better address the problems arising from the governance challenge by facilitating a better flow of information from the fund manager to the investors and their agents. All three private monitoring solutions recognise the commercial contexts in which private investment funds operate by emphasizing voluntary steps that fund managers and investors can take incrementally. Each focuses on the provision of accurate and timely information as the means to overcome the investment protection concerns that arise due to the collectivised nature of the private investment fund. The chapter first looks at the criticisms against private monitoring solutions as well as the limits of financial regulation before discussing due diligence as the commercial foundation for private monitoring solutions. It also examines how to best support the wider adoption and implementation of private monitoring solutions.
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35

United States. National Aeronautics and Space Administration., ed. The accuracy of approximate solutions in the analysis of fracture of composites: Semi-annual report NASA grant NSG-1297. [Washington, D.C: National Aeronautics and Space Administration, 1985.

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36

A, Pennline James, and NASA Glenn Research Center, eds. Improving the accuracy of quadrature method solutions of Fredholm integral equations that arise from nonlinear two-point boundary value problems. [Cleveland, Ohio]: National Aeronautics and Space Administration, Glenn Research Center, 1999.

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37

McAllister, E. W. Pipe Line Rules of Thumb Handbook: Quick and Accurate Solutions to Your Everyday Pipe Line Problems. 4th ed. Gulf Publishing Company, 1998.

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38

Pipeline Rules of Thumb Handbook: A Manual of Quick, Accurate Solutions to Everyday Pipeline Engineering Problems. Elsevier Science & Technology Books, 2013.

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39

W, McAllister E., ed. Pipe line rules of thumb handbook: Quick and accurate solutions to your everyday pipe line problems. 4th ed. Houston, Tex: Gulf Pub. Co., 1998.

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40

Ford, Bob, and Dick Beach. Golf: The Mind, the Body, the Game : The Complete Solution to Golf's Three Problems--Accuracy, Distance, and Shot Consistency. Villard Books, 1996.

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41

Institute for Computer Applications in Science and Engineering., ed. A new time-space accurate scheme for hyperbolic problems I: Quasi-explicit case. Hampton, VA: Institute for Computer Applications in Science and Engineering, NASA Langley Research Center, 1998.

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42

Institute for Computer Applications in Science and Engineering., ed. A new time-space accurate scheme for hyperbolic problems I: Quasi-explicit case. Hampton, VA: Institute for Computer Applications in Science and Engineering, NASA Langley Research Center, 1998.

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43

W, McAllister E., ed. Pipe line rules of thumb handbook: A manual of quick, accurate solutions to everyday pipe line problems. 3rd ed. Houston: Gulf Pub. Co., 1993.

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44

Carl, Branan, ed. Rules of thumb for chemical engineers: A manual of quick, accurate solutions to everyday process engineering problems. 4th ed. Boston: Elsevier, 2005.

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45

Rules of thumb for chemical engineers: A manual of quick, accurate solutions to everyday process engineering problems. 4th ed. Boston, MA: Elsevier, 2005.

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46

Carl, Branan, ed. Rules of thumb for chemical engineers: A manual of quick, accurate solutions to everyday process engineering problems. Houston: Gulf Pub. Co., 1994.

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47

W, McAllister E., ed. Pipe line rules of thumb handbook: A manual of quick, accurate solutions to everyday pipe line problems. 2nd ed. Houston, Tex: Gulf Pub. Co., Book Division, 1988.

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48

1956-, Pope J. Edward, ed. Rules of thumb for mechanical engineers: A manual of quick, accurate solutions to everyday mechanical engineering problems. Houston: Gulf Pub. Co., 1997.

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49

McAllister, E. W. Pipe Line Rules of Thumb Handbook: A Manual of Quick, Accurate Solutions to Everyday Pipe Line Problems. 3rd ed. Gulf Pub Co, 1993.

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50

Edward, Pope J., ed. Rules of thumb for mechanical engineers: A manual of quick, accurate solutions to everyday mechanical engineering problems. Houston: Gulf Pub. Co, 1997.

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