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1

Zhu, K. Nonlinear dynamic analysis of lattice structures. Brisbane: Department of Civil Engineering, University of Queensland, 1992.

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2

Zhu, K. Nonlinear dynamic analysis of lattice structures. Brisbane: Universityof Queensland, Dept. of Civil Engineering, 1990.

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3

Cioranescu, D. Homogenization of reticulated structures. New York: Springer, 1999.

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4

Beckh, Matthias. Hyperbolic structures. Chichester, West Sussex, United Kingdom: John Wiley & Sons Inc., 2014.

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5

Noor, Ahmed Khairy. Continuum modeling of large lattice structures: Status and projections. Hampton, Va: Langley Research Center, 1988.

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6

M, Mikulas Martin, and United States. National Aeronautics and Space Administration. Scientific and Technical Information Division., eds. Continuum modeling of large lattice structures: Status and projections. [Washington, D.C.]: National Aeronautics and Space Administration, Scientific and Technical Information Division, 1988.

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7

West, Harry H. Analysis of structures: An integration of classical and modern methods. 2nd ed. New York: Wiley, 1989.

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8

NATO Advanced Research Workshop on Nonlinear Coherent Structures in Physics and Biology (1993 Bayreuth, Germany). Nonlinear coherent structures in physics and biology. New York: Plenum Press, 1994.

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9

Karl-Heinz, Spatschek, Mertens Franz-Georg, North Atlantic Treaty Organization. Scientific Affairs Division., and NATO Advanced Research Workshop on Nonlinear Coherent Structures in Physics and Biology (8th : 1993 : Bayreuth, Germany), eds. Nonlinear coherent structures in physics and biology. New York: Plenum Press, 1994.

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10

Cohen, K. Passive damping augmentation of flexible beam-like lattice trusses for large space structures. Haifa, Israel: Technion Israel Institute of Technology, Faculty of Aerospace Engineering, 1990.

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11

Cohen, K. Passive damping augmentation of flexible beam-like lattice trusses for large space structures. [S.l.]: Technion-Israel Institute of Technology, Faculty of Aerospace Engineering, 1990.

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12

American Society of Civil Engineers. Design of latticed steel transmission structures. Reston, Virginia: American Society of Civil Engineers, 2015.

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13

Micciancio, Daniele. Complexity of Lattice Problems: A Cryptographic Perspective. Boston, MA: Springer US, 2002.

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14

Dvurečenskij, Anatolij. New trends in quantum structures. Dordrecht: Kluwer Academic Publishers, 2000.

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15

1939-, Rosenberg I. G., and Sabadussi Gert, eds. Algebras and orders. Dordrecht: Kluwer Academic, 1993.

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16

Matthias, Beck, ed. Integer points in polyhedra: AMS-IMS-SIAM Joint Summer Research Conference Integer Points in Polyhedra-Geometry, Number Theory, Representation Theory, Algebra, Optimization, Statistics, June 11-15, 2007, Snow Bird, Utah. Providence, R.I: American Mathematical Society, 2008.

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17

C, McGill T. Device Physics of Superlattices and Small Structures. Ft. Belvoir: Defense Technical Information Center, 1987.

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18

H, Sowa, ed. Cubic structure types described in their space groups with the aid of frameworks. Karlsruhe, [West Germany]: Fachinformationszentrum Energie, Physik, Mathematik, 1985.

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19

S, Anderson M., and Langley Research Center, eds. User manual for BUNVIS-RG: An exact buckling and vibration program for lattice structures, with repetitive geometry and substructuring options. Hampton, Va: National Aeronautics and Space Administration, Langley Research Center, 1986.

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20

1940-, Abel John Fredrick, Leonard John W, Penalba Celina U, International Association for Shell and Spatial Structures., American Society of Civil Engineers. Committee on Special Structures., and Structures Congress '94 (1994 : Atlanta, Ga.), eds. Spatial, lattice, and tension strutures: Proceedings of the IASS-ASCE International Symposium 1994, held in conjunction with the ASCE Structures Congress XII, April 24-29, 1994, Georgia World Congress Center, Atlanta, Georgia, USA. New York: American Society of Civil Engineers, 1994.

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21

Neal, B. G. The plastic methods of structural analysis. 3rd ed. London: Chapman and Hall, 1985.

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22

M, Neville Adam, ed. Structural analysis: A unified classical and matrix approach. 4th ed. London: E & FN Spon, 1997.

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23

M, Neville Adam, and Brown T. G, eds. Structural analysis: A unified classical and matrix approach. 6th ed. New York: Taylor & Francis, 2009.

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24

Ghali, A. Structural analysis: A unified classical and matrix approach. 3rd ed. London: Spon, 1995.

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25

M, Neville Adam, ed. Structural analysis: A unified classical and matrix approach. 3rd ed. London: Chapman and Hall, 1989.

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26

M, Neville Adam, and Brown T. G, eds. Structural analysis: A unified classical and matrix approach. 5th ed. New York: Spon Press, 2003.

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27

Akademii͡a nauk SSSR. I͡Akutskiĭ nauchnyĭ t͡sentr. Otdel prikladnoĭ matematiki i vychislitelʹnoĭ tekhniki, ed. Matematicheskie metody sinteza mnogosloĭnykh struktur pri vozdeĭstvii voln. I͡Akutsk: I͡Akutskiĭ nauchnyĭ t͡sentr SO AN SSSR, 1990.

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28

Müller-Hoissen, Folkert, Jean Marcel Pallo, and Jim Stasheff, eds. Associahedra, Tamari Lattices and Related Structures. Basel: Springer Basel, 2012. http://dx.doi.org/10.1007/978-3-0348-0405-9.

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29

American Society of Civil Engineers., ed. Design of latticed steel transmission structures. Reston, Va: American Society of Civil Engineers, 2000.

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30

Fuentes, Benjamin J. Optical lattices: Structures, atoms, and solitons. Hauppauge, N.Y: Nova Science Publishers, 2012.

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31

Lattice structures on Banach spaces. Providence, R.I: American Mathematical Society, 1993.

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32

Lattices and Ordered Algebraic Structures. Springer, 2005.

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33

Blyth, T. S. Lattices and Ordered Algebraic Structures. Springer, 2010.

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34

Rosenbaum, Ute, and Doina Cioranescu Jeannine Saint Jean Paulin. Homogenization of Reticulated Structures. Springer New York, 2011.

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35

Grätzer, George, and Friedrich Wehrung. Lattice Theory : Special Topics and Applications: Volume 2. Birkhauser Verlag, 2016.

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36

Wehrung, Friedrich, and George Gratzer. Lattice Theory : Special Topics and Applications: Volume 2. Birkhäuser Boston, 2016.

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37

Lattice Theory : Special Topics and Applications: Volume 1. Birkhäuser, 2014.

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38

Lattice Theory : Special Topics and Applications: Volume 1. Birkhäuser Boston, 2014.

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39

Cottam, Michael G., and Eudenilson L. Albuquerque. Polaritons in Periodic and Quasiperiodic Structures. Elsevier Science, 2005.

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40

Shoji, Satoru, Remo Proietti Zaccaria, and Satoshi Kawata. Holographic laser processing for three-dimensional photonic lattices. Edited by A. V. Narlikar and Y. Y. Fu. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780199533053.013.9.

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This article describes a holographic laser-processing method for independently controlling the lattice symmetry and lattice constant in three-dimensional photonic lattices. With this approach, optical periodicity is created in lower dimensions and three-dimensional periodicity is obtained by a combination of several lower-dimensional periodic structures. The proposed holographic laser-processing method is compared with the standard four-beam technique. Examples of experimental demonstration achieved in photosensitive polymers are given. The article also introduces a multiphoton direct-writing technique for creating defect structures in lattices towards production of defect cavity-functionalized photonic crystal devices. It shows that all Bravais lattices can be produced by choosing proper incident vectors of laser beams. The lattice constant of the structure can be changed without distorting its lattice symmetry and lattice elements.
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41

Beckh, Matthias. Hyperbolic Structures. Wiley & Sons, Incorporated, John, 2014.

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42

Beckh, Matthias. Hyperbolic Structures: Shukhov's Lattice Towers - Forerunners of Modern Lightweight Construction. Wiley & Sons, Limited, John, 2015.

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43

Beckh, Matthias. Hyperbolic Structures: Shukhov's Lattice Towers - Forerunners of Modern Lightweight Construction. Wiley & Sons, Incorporated, John, 2014.

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44

Beckh, Matthias. Hyperbolic Structures: Shukhov's Lattice Towers - Forerunners of Modern Lightweight Construction. Wiley & Sons, Incorporated, John, 2014.

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45

Roman, Steven. Lattices and Ordered Sets. Springer, 2010.

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46

Roman, Steven. Lattices and Ordered Sets. Springer London, Limited, 2008.

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47

Cottam, Michael G., and Eudenilson L. Albuquerque. Polaritons in Periodic and Quasiperiodic Structures. Elsevier Science & Technology Books, 2004.

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48

Textile Composites And Inflatable Structures Ii. Springer, 2008.

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49

Pallo, Jean Marcel, Folkert Müller-Hoissen, and Jim Stasheff. Associahedra, Tamari Lattices and Related Structures: Tamari Memorial Festschrift. Birkhäuser, 2014.

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50

Oñate, Eugenio, and Bernd Kröplin. Textile Composites and Inflatable Structures. Springer, 2005.

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