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dc.creatorBabović, Zoran
dc.creatorBajat, Branislav
dc.creatorĐokić, Vladan
dc.creatorĐorđević, Filip
dc.creatorDrašković, Dražen
dc.creatorFilipović, Nenad
dc.creatorFurht, Borko
dc.creatorGačić, Nikola
dc.creatorIkodinović, Igor
dc.creatorIlić, Marija
dc.creatorIrfanoglu, Ayhan
dc.creatorJelenković, Branislav
dc.creatorKartelj, Aleksandar
dc.creatorKlimeck, Gerhard
dc.creatorKorolija, Nenad
dc.creatorKotlar, Miloš
dc.creatorKovačević, Miloš
dc.creatorKuzmanović, Vladan
dc.creatorMarinković, Marko
dc.creatorMarković, Slobodan
dc.creatorMendelson, Avi
dc.creatorMilutinović, Veljko
dc.creatorNešković, Aleksandar
dc.creatorNešković, Nataša
dc.creatorMitić, Nenad
dc.creatorNikolić, Boško
dc.creatorNovoselov, Konstantin
dc.creatorPrakash, Arun
dc.creatorRatković, Ivan
dc.creatorStojadinović, Zoran
dc.creatorUstyuzhanin, Andrey
dc.creatorZak, Stan
dc.date.accessioned2023-06-06T11:52:49Z
dc.date.available2023-06-06T11:52:49Z
dc.date.issued2023
dc.identifier.issn2196-1115
dc.identifier.urihttps://grafar.grf.bg.ac.rs/handle/123456789/3113
dc.description.abstractThis article presents a taxonomy and represents a repository of open problems in computing for numerically and logically intensive problems in a number of disciplines that have to synergize for the best performance of simulation-based feasibility studies on nature-oriented engineering in general and civil engineering in particular. Topics include but are not limited to: Nature-based construction, genomics supporting nature-based construction, earthquake engineering, and other types of geophysical disaster prevention activities, as well as the studies of processes and materials of interest for the above. In all these fields, problems are discussed that generate huge amounts of Big Data and are characterized with mathematically highly complex Iterative Algorithms. In the domain of applications, it has been stressed that problems could be made less computationally demanding if the number of computing iterations is made smaller (with the help of Artificial Intelligence or Conditional Algorithms), or if each computing iteration is made shorter in time (with the help of Data Filtration and Data Quantization). In the domain of computing, it has been stressed that computing could be made more powerful if the implementation technology is changed (Si, GaAs, etc.…), or if the computing paradigm is changed (Control Flow, Data Flow, etc.…).sr
dc.language.isoensr
dc.publisherSpringersr
dc.rightsrestrictedAccesssr
dc.sourceJournal of Big Datasr
dc.subjectComputing paradigmssr
dc.subjectArtificial intelligencesr
dc.subjectControl flowsr
dc.subjectData flowsr
dc.subjectBig datasr
dc.titleResearch in computing‑intensive simulations for nature‑oriented civil‑engineering and related scientific fields, using machine learning and big data: an overview of open problemssr
dc.typearticlesr
dc.rights.licenseARRsr
dc.citation.rankaM21~
dc.citation.volume10
dc.identifier.doi10.1186/s40537-023-00731-6
dc.type.versionpublishedVersionsr


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