1. Adamenko, D., Kunnen, S., & Nagarajah, A. (2020). Digital Twin and product lifecycle management: What is the difference? Product Lifecycle Management Enabling Smart X, 150–162. https://doi.org/10.1007/978-3-030-62807-9_13
2. Adamenko, D., Kunnen, S., Pluhnau, R., Loibl, A., & Nagarajah, A. (2020). Review and comparison of the methods of designing the digital twin. Procedia CIRP, 91, 27–32. https://doi.org/10.1016/j.procir.2020.02.146
3. Ahmed, ElSamany AbdElmoteleb, Dawood, Mina Eshaq Tawfilis, & Ebrahim, Omar Mohamed Ahmed. (2022). Ergonomics For Upgrading User Experience and Improve Usability. Alqulzum Scientific Journal, 13. Article 5. 93-110.
4. Albert, J. A., Owolabi, V., Gebel, A., Brahms, C. M., Granacher, U., & Arnrich, B. (2020). Evaluation of the pose tracking performance of the Azure Kinect and Kinect v2 for Gait Analysis in comparison with a gold standard: A pilot study. Sensors, 20(18), 5104. https://doi.org/10.3390/s20185104
5. Amer, Ayman Mouhamed Afifi, & Dawood, Mina Eshaq Tawfilis. (2020). Robot Ergonomics: A cognitive scenario of the new Behavioral Objects. International Design Journal, 10 (3). Article 26. 319-331. DOI: 10.21608/idj.2020.96353.
6. Augustine, P. (2020). The industry use cases for the Digital Twin Idea. Advances in Computers, 117(1), 79–105. https://doi.org/10.1016/bs.adcom.2019.10.008
7. Baek, S.-Y., & Lee, K. (2012). Parametric human body shape modeling framework for human-centered product design. Computer-Aided Design, 44(1), 56–67. https://doi.org/10.1016/j.cad.2010.12.006
8. Barras, C. (2022). Ancient smells reveal secrets of Egyptian tomb. Nature, 604(7906), 414–414. https://doi.org/10.1038/d41586-022-00903-z
9. Barricelli, B. R., Casiraghi, E., & Fogli, D. (2019). A survey on Digital Twin: Definitions, characteristics, applications, and design implications. IEEE Access, 7, 167653–167671. https://doi.org/10.1109/access.2019.2953499
10. Becker, B. J. (2008). Conversation with the Sidereal Messenger Recently Sent to Mankind by Galileo Galilei, Mathematician of Padua (1610) by Johannes Kepler (1571-1630). Week 4 readings. Retrieved August 17, 2022, from http://faculty.humanities.uci.edu/bjbecker/exploringthecosmos/week4e.html
11. BENTLEY . (2022). Digital Twin Services for Infrastructure: Bentley Systems. Digital Twin Services for Infrastructure | Bentley Systems. Retrieved August 20, 2022, from https://www.bentley.com/en/products/product-line/digital-twins
12. Berni, A., & Borgianni, Y. (2020). Applications of virtual reality in engineering and product design: Why, what, how, when and where. Electronics, 9(7), 1064. https://doi.org/10.3390/electronics9071064
13. Bier, B., & Houdin, J.-P. (2009). The secret of the great pyramid: How one man's obsession led to the solution of Ancient Egypt's Greatest Mystery. Smithsonian.
14. Bilberg, A., & Malik, A. A. (2019). Digital Twin Driven Human–Robot Collaborative Assembly. CIRP Annals, 68(1), 499–502. https://doi.org/10.1016/j.cirp.2019.04.011
15. Brylina, O. G., Kuzmina, N. N., & Osintsev, K. V. (2020). Modeling as the foundation of Digital Twins. 2020 Global Smart Industry Conference (GloSIC). https://doi.org/10.1109/glosic50886.2020.9267812
16. Centomo, S., Dall'Ora, N., & Fummi, F. (2020). The design of a digital-twin for predictive maintenance. 2020 25th IEEE International Conference on Emerging Technologies and Factory Automation (ETFA). https://doi.org/10.1109/etfa46521.2020.9212071
17. Chandrasegaran, S. K., Ramani, K., Sriram, R. D., Horváth, I., Bernard, A., Harik, R. F., & Gao, W. (2013). The evolution, challenges, and future of knowledge representation in product design systems. Computer-Aided Design, 45(2), 204–228. https://doi.org/10.1016/j.cad.2012.08.006
18. Chang, K. H. (2014). Product design modeling using CAD/CAE: the computer aided engineering design series. Academic Press.
19. Cornish, P. (2022, June 17). Read: Science fiction in the age of witchcraft. We The Curious. Retrieved August 17, 2022, from https://www.wethecurious.org/curious-stuff/stargazing-night-sky/science-fiction-witchcraft
20. Dawood, Mina Eshaq Tawfilis. (2017). 4D Ergonomics Modeling in the Interaction Design field. Unpublished Master Thesis. Arab Republic of Egypt: Faculty of Applied Arts, Helwan University.
21. Dawood, Mina Eshaq Tawfilis. (2021a). The Impact of Interaction Design in Innovating a Scenario of Robot Ergonomics. Unpublished Ph.D. Thesis. Arab Republic of Egypt: Faculty of Applied Arts, Damietta University.
22. Dawood, Mina Eshaq Tawfilis. (2021b). Robot Ergonomics: Giving the Behavioral Objects a dynamic presence. International Design Journal, 11(5). Article 23. 293-304. DOI: 10.21608/idj.2021.191705.
23. Demirel, H. O., & Duffy, V. G. (2007). Applications of digital human modeling in industry. Digital Human Modeling, 824–832. https://doi.org/10.1007/978-3-540-73321-8_93
24. Dimenco, e. (2022). Simulated reality. Dimenco. Retrieved July 5, 2022, from https://www.dimenco.eu/simulated-reality
25. Durão, L. F., Haag, S., Anderl, R., Schützer, K., & Zancul, E. (2018). Digital twin requirements in the context of industry 4.0. Product Lifecycle Management to Support Industry 4.0, 204–214. https://doi.org/10.1007/978-3-030-01614-2_19
26. Farkas, I. (2019, January 17). 10 amazing secrets recently revealed at Historical Landmarks. Listverse. Retrieved August 18, 2022, from https://listverse.com/2019/01/02/10-amazing-secrets-recently-revealed-at-historical-landmarks/
27. Fast-Berglund, Å., Gong, L., & Li, D. (2018). Testing and validating extended reality (XR) technologies in manufacturing. Procedia Manufacturing, 25, 31–38. https://doi.org/10.1016/j.promfg.2018.06.054
28. Ferguson, S., Bennett, E., & Ivashchenko, A. (2017). Digital twin tackles design challenges. World Pumps, 2017(4), 26–28. https://doi.org/10.1016/s0262-1762(17)30139-6
29. Fjeld, M. (2003). Introduction: Augmented reality-usability and collaborative aspects. International Journal of Human-Computer Interaction, 16(3), 387–393. https://doi.org/10.1207/s15327590ijhc1603_1
30. Freist, R. (2018, October 2). Digital Twin: Boeing aims to virtualize the development of aircraft. https://www.hannovermesse.de. Retrieved August 2, 2022, from https://www.hannovermesse.de/en/news/news-articles/boeing-aims-to-virtualize-the-development-of-aircraft
31. Gehrmann, C., & Gunnarsson, M. (2020). A digital twin based industrial automation and Control System Security Architecture. IEEE Transactions on Industrial Informatics, 16(1), 669–680. https://doi.org/10.1109/tii.2019.2938885
32. Geiger, C., Oppermann, L., & Reimann, C. (2003). 3D-registered interaction-surfaces in augmented reality space. 2003 IEEE International Augmented Reality Toolkit Workshop. https://doi.org/10.1109/art.2003.1320417
33. Gilles, W. (1991). Form organization: new design procedures for numerical control. Oxford: Butterworth-Heinemann.
34. Glaessgen, E., & Stargel, D. (2012). The Digital Twin Paradigm for future NASA and U.S. Air Force Vehicles. 53rd AIAA/ASME/ASCE/AHS/ASC Structures, Structural Dynamics and Materials Conference≪BR≫20th AIAA/ASME/AHS Adaptive Structures Conference≪BR≫14th AIAA. https://doi.org/10.2514/6.2012-1818
35. Global, E. Y. (2019, December 4). How a digital twin can model product life cycle management complexity. EY. Retrieved August 20, 2022, from https://www.ey.com/en_gl/consulting/how-a-digital-twin-can-model-product-life-cycle-management-complexity
36. Guo, J., Zhao, N., Sun, L., & Zhang, S. (2018). Modular based flexible digital twin for factory design. Journal of Ambient Intelligence and Humanized Computing, 10(3), 1189–1200. https://doi.org/10.1007/s12652-018-0953-6
37. Hague, S. (2021, March 31). Interview with Jean-Pierre Houdin. Sharon Janet Hague, Author. Retrieved August 18, 2022, from https://sharonjanethague.com/interview-with-jean-pierre-houdin/
38. Havard, V., Jeanne, B., Lacomblez, M., & Baudry, D. (2019). Digital Twin and virtual reality: A co-simulation environment for design and assessment of Industrial Workstations. Production & Manufacturing Research, 7(1), 472–489. https://doi.org/10.1080/21693277.2019.1660283
39. History.com Editors. (2009, October 14). Egyptian pyramids. History.com. Retrieved August 18, 2022, from https://www.history.com/topics/ancient-history/the-egyptian-pyramids
40. Howell, E. (2022, July 28). Russia wants to build its own space station, as early as 2028. Space.com. Retrieved August 17, 2022, from https://www.space.com/russian-space-station-ross-2028-timeline
41. Jones, A. (2022, August 13). See the huge solar wings of China's Space Station in motion above Earth (video). Space.com. Retrieved August 17, 2022, from https://www.space.com/china-tiangong-space-station-solar-array-video
42. Jones, D. (2021). Artificial Cognitive Systems: The next generation of the Digital Twin. an opinion. Digital Twin, 1, 3. https://doi.org/10.12688/digitaltwin.17440.1
43. Jones, D., Snider, C., Nassehi, A., Yon, J., & Hicks, B. (2020). Characterising the Digital Twin: A Systematic Literature Review. CIRP Journal of Manufacturing Science and Technology, 29, 36–52. https://doi.org/10.1016/j.cirpj.2020.02.002
44. Kent, L., Snider, C., Gopsill, J., & Hicks, B. (2021). Mixed reality in Design Prototyping: A systematic review. Design Studies, 77, 101046. https://doi.org/10.1016/j.destud.2021.101046
45. Kharvari, F., & Kaiser, L. E. (2022). Impact of extended reality on architectural education and the design process. Automation in Construction, 141, 104393. https://doi.org/10.1016/j.autcon.2022.104393
46. Kim, H., Park, J. H., Hwang, H., & Lee, C.-M. (2007). Evaluation of Navy shipboard habitability for a warship design using human model. Digital Human Modeling, 884–893. https://doi.org/10.1007/978-3-540-73321-8_100
47. Kong, T., Hu, T., Zhou, T., & Ye, Y. (2021). Data Construction Method for the applications of Workshop Digital Twin System. Journal of Manufacturing Systems, 58, 323–328. https://doi.org/10.1016/j.jmsy.2020.02.003
48. Korovin, G. (2021). Modeling the digital transformation of the region’s industry. Lecture Notes in Information Systems and Organisation, 49–55. https://doi.org/10.1007/978-3-030-73261-5_5
49. Kraatz, J., Sanchez, A., & Hampson, K. (2014). Digital Modeling, Integrated Project Delivery and Industry Transformation: An australian case study. Buildings, 4(3), 453–466. https://doi.org/10.3390/buildings4030453
50. Kritzinger, W., Karner, M., Traar, G., Henjes, J., & Sihn, W. (2018). Digital Twin In Manufacturing: A categorical literature review and classification. IFAC-PapersOnLine, 51(11), 1016–1022. https://doi.org/10.1016/j.ifacol.2018.08.474
51. La Nasa, J., Degano, I., Modugno, F., Guerrini, C., Facchetti, F., Turina, V., Carretta, A., Greco, C., Ferraris, E., Colombini, M. P., & Ribechini, E. (2022). Archaeology of the invisible: The scent of kha and merit. Journal of Archaeological Science, 141, 105577. https://doi.org/10.1016/j.jas.2022.105577
52. Lee, S., Chen, T., Kim, J., Kim, G. J., Han, S., & Pan, Z. geng. (2004). Affective property evaluation of virtual product designs. IEEE Virtual Reality 2004, 207–292. https://doi.org/10.1109/vr.2004.1310076
53. Lian, L., & Yan, Y. (2022). Digital Visual Sensing Design Teaching Using Digital Twins. Advances in Civil Engineering, 2022, 1–11. https://doi.org/10.1155/2022/9311246
54. Liu, M., Fang, S., Dong, H., & Xu, C. (2021). Review of digital twin about concepts, technologies, and Industrial Applications. Journal of Manufacturing Systems, 58, 346–361. https://doi.org/10.1016/j.jmsy.2020.06.017
55. Liu, Q., Leng, J., Yan, D., Zhang, D., Wei, L., Yu, A., Zhao, R., Zhang, H., & Chen, X. (2021). Digital twin-based designing of the configuration, motion, control, and optimization model of a flow-type smart manufacturing system. Journal of Manufacturing Systems, 58, 52–64. https://doi.org/10.1016/j.jmsy.2020.04.012
56. Lo, C. K., Chen, C. H., & Zhong, R. Y. (2021). A review of digital twin in product design and development. Advanced Engineering Informatics, 48, 101297. https://doi.org/10.1016/j.aei.2021.101297
57. Mark. (2022, February 23). Digital Twins and the power of Predictive Maintenance: Zuken En. Zuken English. Retrieved August 20, 2022, from https://www.zuken.com/en/blog/digital-twins-and-the-power-of-predictive-maintenance/
58. Markings, S. (2019, March 2). How much did the pyramids weigh? Sciencing. Retrieved August 18, 2022, from https://sciencing.com/much-did-pyramids-weigh-7499289.html
59. Mars, K. (2016, August 17). Gateway. NASA. Retrieved August 17, 2022, from https://www.nasa.gov/gateway/overview
60. Maurya, S., Mougenot, C., & Takeda, Y. (2020). Impact of mixed reality implementation on early-stage interactive product design process. Journal of Engineering Design, 32(1), 1–27. https://doi.org/10.1080/09544828.2020.1851662
61. McDonald, D. K. (2017). The gold mask of tutankhamun. The Global Egyptian Museum | The Gold Mask of Tutankhamun. Retrieved August 18, 2022, from http://www.globalegyptianmuseum.org/detail.aspx?id=15062
62. MRICS, C. C. (2020). How to make a digital twin: The options, types and outputs. Vercator Info. Retrieved August 1, 2022, from https://info.vercator.com/blog/how-to-make-a-digital-twin-the-options-types-and-outputs
63. NASA. (2022). Webb Space Telescope GSFC/NASA. NASA. Retrieved August 17, 2022, from https://webb.nasa.gov/
64. Nokia. (2020). How Digital Twins are driving the future of Engineering. Nokia. Retrieved August 20, 2022, from https://www.nokia.com/networks/insights/technology/how-digital-twins-driving-future-of-engineering/
65. NOVA. (2019, February 7). Decoding the Great Pyramid: New archeological evidence sheds light on the stunning engineering of the Great Pyramid of Giza. PBS. Retrieved August 18, 2022, from https://www.pbs.org/wgbh/nova/video/decoding-the-great-pyramid/
66. Ong, S. K., & Shen, Y. (2009). A mixed reality environment for Collaborative Product Design and Development. CIRP Annals, 58(1), 139–142. https://doi.org/10.1016/j.cirp.2009.03.020
67. Otto, K. N. (2003). Product design: techniques in reverse engineering and new product development. 清华大学出版社有限公司.
68. Pahng, F., Senin, N., & Wallace, D. (1997). Modeling and evaluation of Product Design Problems in a distributed design environment. Volume 4: Design for Manufacturing Conference. https://doi.org/10.1115/detc97/dfm-4356
69. Pahng, F., Senin, N., & Wallace, D. (1998). Distribution modeling and evaluation of product design problems. Computer-Aided Design, 30(6), 411–423. https://doi.org/10.1016/s0010-4485(98)00005-0
70. Palla, K. (2022, August 5). Council post: The rise of Digital Twin Technology. Forbes. Retrieved August 20, 2022, from https://www.forbes.com/sites/forbestechcouncil/2022/08/03/the-rise-of-digital-twin-technology/?sh=98ecff82f97d
71. Pang, T. Y., Pelaez Restrepo, J. D., Cheng, C.-T., Yasin, A., Lim, H., & Miletic, M. (2021). Developing a digital twin and digital thread framework for an ‘industry 4.0’ shipyard. Applied Sciences, 11(3), 1097. https://doi.org/10.3390/app11031097
72. Pierrot, F., Marquet, F., Company, O., & Gil, T. (2001). H4 parallel robot: Modeling, design and preliminary experiments. Proceedings 2001 ICRA. IEEE International Conference on Robotics and Automation (Cat. No.01CH37164). https://doi.org/10.1109/robot.2001.933120
73. PTC. (2022, August 18). What is Digital Twin? PTC. Retrieved August 20, 2022, from https://www.ptc.com/en/industry-insights/digital-twin
74. Qi, Q., & Tao, F. (2018). Digital Twin and big data towards Smart Manufacturing and Industry 4.0: 360 degree comparison. IEEE Access, 6, 3585–3593. https://doi.org/10.1109/access.2018.2793265
75. Revetria, R., Tonelli, F., Damiani, L., Demartini, M., Bisio, F., & Peruzzo, N. (2019). A real-time mechanical structures monitoring system based on digital twin, IOT and augmented reality. 2019 Spring Simulation Conference (SpringSim). https://doi.org/10.23919/springsim.2019.8732917
76. Romero, V., Pinquié, R., & Noël, F. (2022). A user-centric computer-aided verification process in a virtuality-reality continuum. Computers in Industry, 140, 103678. https://doi.org/10.1016/j.compind.2022.103678
77. Roy, R. B., Mishra, D., Pal, S. K., Chakravarty, T., Panda, S., Chandra, M. G., Pal, A., Misra, P., Chakravarty, D., & Misra, S. (2020). Digital Twin: Current scenario and a case study on a manufacturing process. The International Journal of Advanced Manufacturing Technology, 107(9-10), 3691–3714. https://doi.org/10.1007/s00170-020-05306-w
78. Sahin, D., & Togay, A. (2016). Augmented reality applications in product design process. New Trends and Issues Proceedings on Humanities and Social Sciences, 2(1), 115–125. https://doi.org/10.18844/gjhss.v2i1.288
79. Sahin, D., & Togay, A. (2016). Augmented reality applications in product design process. New Trends and Issues Proceedings on Humanities and Social Sciences, 2(1), 115–125. https://doi.org/10.18844/gjhss.v2i1.288
80. Saracco, R. (2018, February 21). What would education be like in 2050? Digital Twins. IEEE Future Directions. Retrieved August 20, 2022, from https://cmte.ieee.org/futuredirections/2018/02/21/what-would-education-be-like-in-2050-digital-twins/
81. Schroeder, G. N., Steinmetz, C., Rodrigues, R. N., Henriques, R. V., Rettberg, A., & Pereira, C. E. (2021). A methodology for digital twin modeling and deployment for industry 4.0. Proceedings of the IEEE, 109(4), 556–567. https://doi.org/10.1109/jproc.2020.3032444
82. Seth, A., Vance, J. M., & Oliver, J. H. (2010). Virtual Reality for Assembly Methods Prototyping: A Review. Virtual Reality, 15(1), 5–20. https://doi.org/10.1007/s10055-009-0153-y
83. Shchurov, I. A. (2018). Discrete solid modeling as basis of Technological Systems Digital doubles. 2018 Global Smart Industry Conference (GloSIC). https://doi.org/10.1109/glosic.2018.8570099
84. Shen, Y., Ong, S. K., & Nee, A. Y. C. (2010). Augmented reality for Collaborative Product Design and Development. Design Studies, 31(2), 118–145. https://doi.org/10.1016/j.destud.2009.11.001
85. Singh, M., Fuenmayor, E., Hinchy, E., Qiao, Y., Murray, N., & Devine, D. (2021). Digital Twin: Origin to Future. Applied System Innovation, 4(2), 36. https://doi.org/10.3390/asi4020036
86. Söderberg, R., Wärmefjord, K., Carlson, J. S., & Lindkvist, L. (2017). Toward a digital twin for real-time geometry assurance in individualized production. CIRP Annals, 66(1), 137–140. https://doi.org/10.1016/j.cirp.2017.04.038
87. Song, W., & Tauschinski, J. (2022, July 26). China space station: What is the Tiangong? BBC News. Retrieved August 17, 2022, from https://www.bbc.com/news/world-asia-china-61511546
88. Tao, F., Sui, F., Liu, A., Qi, Q., Zhang, M., Song, B., Guo, Z., Lu, S. C.-Y., & Nee, A. Y. (2019). Digital twin-driven product design framework. International Journal of Production Research, 57(12), 3935–3953. https://doi.org/10.1080/00207543.2018.1443229
89. Tao, F., Zhang, H., Liu, A., & Nee, A. Y. (2019). Digital Twin in industry: State-of-the-art. IEEE Transactions on Industrial Informatics, 15(4), 2405–2415. https://doi.org/10.1109/tii.2018.2873186
90. Tao, F., Zhang, M., & Nee, A. Y. C. (2019). Applications of Digital Twin. Digital Twin Driven Smart Manufacturing, 29–62. https://doi.org/10.1016/b978-0-12-817630-6.00002-3
91. Thomas, M. (2022). What is simulation theory? are we living in a computer simulation? Built In. Retrieved July 2, 2022, from https://builtin.com/hardware/simulation-theory.
92. Tomasas. (2022, August 4). Top 14 wonderful historic monuments. Places To See In Your Lifetime. Retrieved August 18, 2022, from https://www.pandotrip.com/top-10-wonderful-historic-monuments-1567/
93. Tomczyk, M., & van der Valk, H. (2022). Digital Twin Paradigm Shift: The journey of the digital twin definition. Proceedings of the 24th International Conference on Enterprise Information Systems. https://doi.org/10.5220/0010997600003179
94. Tuegel, E. (2012). The airframe digital twin: Some challenges to realization. 53rd AIAA/ASME/ASCE/AHS/ASC Structures, Structural Dynamics and Materials Conference≪BR≫20th AIAA/ASME/AHS Adaptive Structures Conference≪BR≫14th AIAA. https://doi.org/10.2514/6.2012-1812
95. Tuegel, E. J., Ingraffea, A. R., Eason, T. G., & Spottswood, S. M. (2011). Reengineering aircraft structural life prediction using a digital twin. International Journal of Aerospace Engineering, 2011, 1–14. https://doi.org/10.1155/2011/154798
96. Vachalek, J., Bartalsky, L., Rovny, O., Sismisova, D., Morhac, M., & Loksik, M. (2017). The digital twin of an industrial production line within the industry 4.0 concept. 2017 21st International Conference on Process Control (PC). https://doi.org/10.1109/pc.2017.7976223
97. VanDerHorn, E., & Mahadevan, S. (2021). Digital Twin: Generalization, characterization and Implementation. Decision Support Systems, 145, 113524. https://doi.org/10.1016/j.dss.2021.113524
98. Whitaker, A. (2009). Architectural Analysis of the Great Pyramid: The architectural features of the Great pyramid offer an invaluable insight into the builders, their methods and the process of construction. Great Pyramid Architecture. Retrieved August 18, 2022, from http://www.ancient-wisdom.com/Ghizaarchitecture.htm
99. Xiang, F., Fan, J., Ke, S., & Zuo, Y. (2022). Digital twin-driven service collaboration. Digital Twin Driven Service, 33–58. https://doi.org/10.1016/b978-0-323-91300-3.00002-4
100. Ye, J., Badiyani, S., Raja, V., & Schlegel, T. (2007). Applications of virtual reality in product design evaluation. Human-Computer Interaction. HCI Applications and Services, 1190–1199. https://doi.org/10.1007/978-3-540-73111-5_130
101. Zhang, B., Zhang, M., & Dong, T. (2021). High-Fidelity Digital Twin Modeling Method for Contactor Operation Simulation. 2021 13th International Symposium on Linear Drives for Industry Applications (LDIA). https://doi.org/10.1109/ldia49489.2021.9505888
102. Zhao, N., Guo, J., & Zhao, H. (2020). Digital Twin Driven Factory Design. Digital Twin Driven Smart Design, 205–235. https://doi.org/10.1016/b978-0-12-818918-4.00008-7
103. Židek, K., Piteľ, J., Adámek, M., Lazorík, P., & Hošovský, A. (2020). Digital Twin of Experimental Smart Manufacturing Assembly System for Industry 4.0 Concept. Sustainability, 12(9), 3658. https://doi.org/10.3390/su12093658
Zohdi, T. I. (2021). A digital-twin and machine-learning framework for the design of Multiobjective Agrophotovoltaic Solar Farms. Computational Mechanics, 68(2), 357–370. https://doi.org/10.1007/s00466-021-02035-z