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1

Bendsøe, Martin P. Optimization of structural topology, shape, and material. Springer, 1995.

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2

Bhavikatti, S. S. Structural optimisation using sequential linear programming. Vikas Publishing House Pvt., 2003.

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3

Miravete, A. Optimisation of design of composite structures. Woodhead, 1996.

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4

1969-, Tsompanakis Yiannis, Lagaros Nikos D. 1970-, and Papadrakakis Manolis, eds. Structural design optimization considering uncertainties. Taylor & Francis, 2008.

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5

Performance-based optimization of structures: Theory and applications. Spon Press, 2004.

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6

Croccolo, Dario. Motorbike Suspensions: Modern design and optimisation. Springer London, 2013.

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7

J, Twining Carole, and Taylor Chris J, eds. Statistical models of shape: Optimisation and evaluation. Springer, 2008.

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8

Kilkki, Juha. Automated formulation of optimisation models for steel beam structures. Lappeenranta University of Technology, 2002.

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9

1936-, Suh Nam P., ed. Axiomatic design and fabrication of composite structures: Applications in robots, machine tools and automobiles. Oxford University Press, 2005.

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10

SAS World Conference (6th 1989 Gournay-sur-Marne, France). FEMCAD-89, structural analysis and optimization: Proceedings of the Sixth SAS-World Conference = FEMCAD-89, calcul et optimisation des structures. Edited by Liebowitz Harold 1924-, Davies Glyn A. O, and IITT-International. IITT International, 1989.

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11

Sáez, Doris. Optimisation of Industrial Processes at Supervisory Level: Application to Control of Thermal Power Plants. Springer London, 2002.

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12

Optimization of finite dimensional structures. Taylor & Francis, 2011.

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13

P, Kamat Manohar, ed. Structural optimization: Status and promise. American Institute of Aeronautics and Astronautics, 1993.

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14

Plizzari, G. Construction methodologies and structural performance of tunnel linings: Optimisation of the structural, technological and functional performance, of construction methodologies and materials, in tunnel linings. Starrylink Editrice, 2009.

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15

Adeli, Hojjat. Cost optimization of structures: Fuzzy logic, genetic algorithms, and parallel computing. Wiley, 2006.

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16

Michael, Affenzeller, ed. Genetic algorithms and genetic programming: Modern concepts and practical applications. Chapman & Hall/CRC, 2009.

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17

North Atlantic Treaty Organization. Advisory Group for Aerospace Research and Development. Integrated design analysis and optimisation of aircraft structures: the material in this publication was assembled to support a Lecture Series under the sponsorhip of the Structure and Materials panel of AGARD and the Consultant and Exchange programme of AGARD presented on 8th-9th June 1992 in Pasadena, CA, United States, 22nd-23rd June 1992 in Lisbon, Portugal and 25th-26th June 1992 in London, United Kingdom. AGARD, 1992.

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18

Genetic algorithms + data structures = evolution programs. 2nd ed. Springer-Verlag, 1994.

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19

Michalewicz, Zbigniew. Genetic Algorithms + Data Structures =: Evolution Programs. Springer Berlin Heidelberg, 1994.

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20

Michalewicz, Zbigniew. Algorytmy genetyczne + struktury danych = programy ewolucyjne. 3rd ed. Wydawnictwa Naukowo-Techniczne, 2003.

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21

Genetic algorithms + data structures = evolution programs. Springer-Verlag, 1992.

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22

Genetic algorithms + data structures = evolution programs. 3rd ed. Springer-Verlag, 1996.

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23

Hami, Abdelkhalak El, and Ghias Kharmanda. Fiabilité et Optimisation Structurale en Biomécanique: Méthodologies et Applications. ISTE Editions Ltd., 2017.

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24

Miravete, A. Optimisation of Composite Structures Design. Woodhead Publishing, 1996.

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25

Miravete, A. Optimisation of Composite Structures Design. Elsevier Science & Technology Books, 1996.

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26

(Editor), Hans-Joachim Bungartz, and Michael Schäfer (Editor), eds. Fluid-Structure Interaction: Modelling, Simulation, Optimisation (Lecture Notes in Computational Science and Engineering). Springer, 2006.

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27

Croccolo, Dario, and Massimiliano Agostinis. Motorbike Suspensions: Modern design and optimisation. Springer, 2013.

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28

Croccolo, Dario, and Massimiliano Agostinis. Motorbike Suspensions: Modern design and optimisation. Springer, 2013.

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29

Zhou, Shiwei. Implementation of Three-Dimensional Structural Topology Optimisation: Theory and Programming. Elsevier Science & Technology Books, 2019.

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30

Taylor, Chris, Rhodri Davies, and Carole Twining. Statistical Models of Shape: Optimisation and Evaluation. Springer, 2014.

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31

Optimization of Design for Better Structural Capacity. IGI Global, 2018.

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32

Belgasmia, Mourad. Optimization of Design for Better Structural Capacity. IGI Global, 2018.

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33

Variational Methods for Structural Optimization (Applied Mathematical Sciences Vol. 140). Springer, 2000.

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34

Axiomatic Design and Fabrication of Composite Structures: Applications in Robots, Machine Tools, and Automobiles. Oxford University Press, Incorporated, 2005.

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35

Lee, Dai Gil, and Nam P. Suh. Axiomatic Design and Fabrication of Composite Structures: Applications in Robots, Machine Tools, and Automobiles. Oxford University Press, 2006.

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36

Hirsch-Kreinsen, Hartmut, Peter Ittermann, and Jonathan Falkenberg, eds. Szenarien digitalisierter Einfacharbeit. Nomos Verlagsgesellschaft mbH & Co. KG, 2019. http://dx.doi.org/10.5771/9783845298092.

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In the debate on the digitisation of work, a widespread loss of jobs, especially among low-skilled workers, is expected. Although similar developments were feared in previous automation waves, they have only partially occurred. The current diffusion of digital technologies in production and logistics has raised this question again. Using empirical research, this study shows that low-skilled work does not disappear through digitisation, but significantly changes structurally. It groups these changes to low-skilled work into four scenarios: automation and substitution, digital optimisation and T
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37

Pack, Lonnie. Australian Guidebook for Structural Engineers. Taylor & Francis Group, 2017.

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38

Australian Guidebook for Structural Engineers. Taylor & Francis Group, 2017.

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39

Pack, Lonnie. Australian Guidebook for Structural Engineers. Taylor & Francis Group, 2017.

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40

Pack, Lonnie. Australian Guidebook for Structural Engineers. Taylor & Francis Group, 2017.

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41

Pack, Lonnie. Australian Guidebook for Structural Engineers. Taylor & Francis Group, 2017.

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42

Fluid-Structure Interaction: Modelling, Simulation, Optimisation (Lecture Notes in Computational Science and Engineering Book 53). Springer, 2007.

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43

Ribakov, Yuri, Ido Halperin, and Grigory Agranovich. Design of Optimal Feedback for Structural Control. Taylor & Francis Group, 2021.

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44

Mann, Peter. Constrained Lagrangian Mechanics. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198822370.003.0008.

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This chapter builds on the previous two chapters to tackle constrained systems, using Lagrangian mechanics and constrained variations. The first section deals with holonomic constraint equations using Lagrange multipliers; these can be used to reduce the number of coordinates until a linearly independent minimal set is obtained that describes a constraint surface within configuration space, so that Lagrange equations can be set up and solved. Motion is understood to be confined to a constraint submanifold. The variational formulation of non-holonomic constraints is then discussed to derive the
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45

Farkas, J., and K. Jármai. Analysis and Optimum Design of Metal Structures. Taylor & Francis Group, 2020.

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46

Analysis and Optimum Design of Metal Structures. Taylor & Francis Group, 2020.

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47

Williams, Chris, Philippe Block, Sigrid Adriaenssens, and Diederik Veenendaal. Shell Structures for Architecture: Form Finding and Optimization. Taylor & Francis Group, 2014.

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48

Shell Structures for Architecture: Form Finding and Optimization. Routledge, 2014.

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49

Delipetrev, Blagoj. Nested Algorithms for Optimal Reservoir Operation and Their Embedding in a Decision Support Platform. Taylor & Francis Group, 2020.

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50

Delipetrev, Blagoj. Nested Algorithms for Optimal Reservoir Operation and Their Embedding in a Decision Support Platform. Taylor & Francis Group, 2016.

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