CumInCAD is a Cumulative Index about publications in Computer Aided Architectural Design
supported by the sibling associations ACADIA, CAADRIA, eCAADe, SIGraDi, ASCAAD and CAAD futures

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50%; open Basheer, S., Wang, X., Farooque, A. A., Nawaz, R. A., Liu, K., Adekanmbi, T., & Liu, S. (2022) Find in CUMINCAD Comparison of Land Use Land Cover Classifiers Using Different Satellite Imagery and Machine Learning Techniques , Remote Sensing, 14(19), Article 19. https://doi.org/10.3390/rs14194978

50%; open Batty, M., Yang, W., (2022) Find in CUMINCAD A Digital Future for Planning , London

50%; open Beckert, A.N and Barros, V.G. (2022) Find in CUMINCAD Waste management, COVID-19 and occupational safety and health: Challenges, insights and evidence , Science of Total Environment, 831, 154862 https://doi.org/10.1016/j.scitotenv.2022.154862

50%; open Bedarf P, Szabo A, Zanini M, et al (2022) Find in CUMINCAD Robotic 3D printing of mineral foam for a lightweight composite concrete slab. , Proceedings of the 27th International Conference of the Association for Computer-Aided Architectural Design Research in Asia 2022; 61–70

50%; open Bedarf, P., Szabo, A., Zanini, M., Heusi, A., & Dillenburger, B. (2022) Find in CUMINCAD Robotic 3D Printing of Mineral Foam for a Lightweight Composite Concrete Slab , 28th International Conference on Computer-Aided Architectural Design Research Asia: Post-carbon, CAADRIA 222 (pp. 63-612). The Association for Computer-Aided Architectural Design Research Asia (CAADRIA), Available at: https://doi.org/1.52842/conf.caadria.222.2.61.

50%; open Bejarano LA, Espitia HE and Montenegro CE (2022) Find in CUMINCAD Clustering analysis for the pareto optimal front in multi-objective optimization , Computation 2022; 10: 37, DOI: 10.3390/computation10030037

50%; open Bellazzi, A., Bellia, L., Chinazzo, G., Corbisiero, F., D'Agostino, P., Devitofrancesco, A., Fragliasso, F., et al. (2022) Find in CUMINCAD Virtual reality for assessing visual quality and lighting perception: A systematic review , Building and Environment, 209, pp. 108674, doi: 10.1016/j.buildenv.2021.108674

50%; open Benjamin Felbrich, Tim Schork, and Achim Menges (2022) Find in CUMINCAD Autonomous Robotic Additive Manufacturing through Distributed Model-Free Deep Reinforcement Learning in Computational Design Environments , Construction Robotics 6 (1): 15–37. doi:10.1007/s41693-022-00069-0

50%; open Berger, T., Chundeli, F.A., Pandey, R., Jain, M., Tarafdar, A. And Ramamurthy, A. (2022) Find in CUMINCAD Low-income Residents Strategies to Cope with Urban Heat , Land Use Policy, 119, p.16192

50%; open Bernard, J., Bocher, E., Le Saux Wiederhold, E., Leconte, F., & Masson, V. (2022) Find in CUMINCAD Estimation of Missing Building Height in Openstreetmap Data: a French Case Study Using Geoclimate , Geoscientific Model Development Discussions, 1-47. Available at: https://doi.org/1.5194/gmd-15-755-222

50%; open Bernstein P (2022) Find in CUMINCAD Machine learning: Architecture in the age of artificial intelligence , London: RIBA Publishing, 2022, p. 200.

50%; open Bernstein P (2022) Find in CUMINCAD Machine learning: architecture in the age of artificial intelligence , Abingdon, Oxfordshire: Routledge, 2022.

50%; open Bernstein, P. (2022) Find in CUMINCAD Machine Learning: Architecture in the age of Artificial Intelligence , RIBA Publishing

50%; open Bernstein, P. (2022) Find in CUMINCAD Machine learning: Architecture in the age of AI , Routledge

50%; open Bernstein, P. (2022) Find in CUMINCAD Machine Learning: Architecture in the age of Artificial Intelligence , RIBA publishing, London

50%; open Bhandari, T. (2021) Find in CUMINCAD What makes an mrna vaccine so effective against severe COVID-19? , Washington University School of Medicine in St. Louis. Retrieved March 2022, from https://medicine.wustl.edu/news/what-makes-an-mrna-vaccine-so-effective-against-severe-covid-19/#:~:text=In%20clinical%20trials%2C%20both%20were,considered%20for%20 emergency%20use%20 authorization.

50%; open Bhooshan, S., Bhooshan, V., Dell'Endice, A., Chu, J., Singer, P., Megens, J., Van Mele, T., & Block, P. (2022) Find in CUMINCAD The Striatus bridge: Computational design and robotic fabrication of an unreinforced, 3D-concrete-printed, masonry arch bridge , Architecture, Structures and Construction. https://doi.org/10.1007/s44150-022-00051-y

50%; open Bhooshan, S., Bhooshan, V., Dell'Endice, A., Chu, J., Singer, P., Megens, J., Van Mele, T., Block, P., (2022) Find in CUMINCAD The Striatus bridge: Computational design and robotic fabrication of an unreinforced, 3D-concrete-printed, masonry arch bridge , Archit. Struct. Constr. 521-543. https://doi.org/10.1007/s44150-022-00051-y

50%; open Bhooshan, S., Dell'Endice, A., Du, C., Bouten, S., Van Mele, T. and Block, P. (2021) Find in CUMINCAD Striatus-3D concrete printed masonry bridge , Venice, Italy, 2021 [Online]. Available at: https://block.arch.ethz.ch/brg/project/striatus-3d-concrete-printed-masonry-bridge-venice-italy-2021 (Accessed 31 March 2022)

50%; open Bi M, Xia L, Tran P, et al (2022) Find in CUMINCAD Continuous contour-zigzag hybrid toolpath for large format additive manufacturing , Addit Manuf 2022; 55: 102822

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