Big data, modeling, simulation, computational platform and holistic approaches for the fourth industrial revolution
Naturally, the mathematical process starts from proving the existence and uniqueness of the solution by the using the theorem, corollary, lemma, proposition, dealing with the simple and non-complex model. Proving the existence and uniqueness solution are guaranteed by governing the infinite amount o...
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my.utm.851842020-03-04T01:30:47Z http://eprints.utm.my/id/eprint/85184/ Big data, modeling, simulation, computational platform and holistic approaches for the fourth industrial revolution Alias, Norma Al-Rahmi, Waleed Mugahed Yahaya, Noraffandy Al-Maatouk, Qusay Q Science (General) Naturally, the mathematical process starts from proving the existence and uniqueness of the solution by the using the theorem, corollary, lemma, proposition, dealing with the simple and non-complex model. Proving the existence and uniqueness solution are guaranteed by governing the infinite amount of solutions and limited to the implementation of a small-scale simulation on a single desktop CPU. Accuracy, consistency and stability were easily controlled by a small data scale. However, the fourth industrial can be described the mathematical process as the advent of cyber-physical systems involving entirely new capabilities for researcher and machines (Xing, 2017). In numerical perspective, the fourth industrial revolution (4iR) required the transition from a uncomplex model and small scale simulation to complex model and big data for visualizing the real-world application in digital dialectical and exciting opportunity. Thus, a big data analytics and its classification are a problem solving for these limitations. Some applications of 4iR will highlight the extension version in terms of models, derivative and discretization, dimension of space and time, behavior of initial and boundary conditions, grid generation, data extraction, numerical method and image processing with high resolution feature in numerical perspective. In statistics, a big data depends on data growth however, from numerical perspective, a few classification strategies will be investigated deals with the specific classifier tool. This paper will investigate the conceptual framework for a big data classification, governing the mathematical modeling, selecting the superior numerical method, handling the large sparse simulation and investigating the parallel computing on high performance computing (HPC) platform. The conceptual framework will benefit to the big data provider, algorithm provider and system analyzer to classify and recommend the specific strategy for generating, handling and analyzing the big data. All the perspectives take a holistic view of technology. Current research, the particular conceptual framework will be described in holistic terms. 4iR has ability to take a holistic approach to explain an important of big data, complex modeling, large sparse simulation and high performance computing platform. Numerical analysis and parallel performance evaluation are the indicators for performance investigation of the classification strategy. This research will benefit to obtain an accurate decision, predictions and trending practice on how to obtain the approximation solution for science and engineering applications. As a conclusion, classification strategies for generating a fine granular mesh, identifying the root causes of failures and issues in real time solution. Furthermore, the big data-driven and data transfer evolution towards high speed of technology transfer to boost the economic and social development for the 4iR (Xing, 2017; Marwala et al., 2017). Science Publishing Corporation Inc. 2018 Article PeerReviewed application/pdf en http://eprints.utm.my/id/eprint/85184/1/NormaAlias2018_BigDataModelingSimulationComputational.pdf Alias, Norma and Al-Rahmi, Waleed Mugahed and Yahaya, Noraffandy and Al-Maatouk, Qusay (2018) Big data, modeling, simulation, computational platform and holistic approaches for the fourth industrial revolution. International Journal of Engineering & Technology, 7 (4). pp. 3722-3725. ISSN 2227-524X https://www.sciencepubco.com/index.php/ijet/article/view/21759 |
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Naturally, the mathematical process starts from proving the existence and uniqueness of the solution by the using the theorem, corollary, lemma, proposition, dealing with the simple and non-complex model. Proving the existence and uniqueness solution are guaranteed by governing the infinite amount of solutions and limited to the implementation of a small-scale simulation on a single desktop CPU. Accuracy, consistency and stability were easily controlled by a small data scale. However, the fourth industrial can be described the mathematical process as the advent of cyber-physical systems involving entirely new capabilities for researcher and machines (Xing, 2017). In numerical perspective, the fourth industrial revolution (4iR) required the transition from a uncomplex model and small scale simulation to complex model and big data for visualizing the real-world application in digital dialectical and exciting opportunity. Thus, a big data analytics and its classification are a problem solving for these limitations. Some applications of 4iR will highlight the extension version in terms of models, derivative and discretization, dimension of space and time, behavior of initial and boundary conditions, grid generation, data extraction, numerical method and image processing with high resolution feature in numerical perspective. In statistics, a big data depends on data growth however, from numerical perspective, a few classification strategies will be investigated deals with the specific classifier tool. This paper will investigate the conceptual framework for a big data classification, governing the mathematical modeling, selecting the superior numerical method, handling the large sparse simulation and investigating the parallel computing on high performance computing (HPC) platform. The conceptual framework will benefit to the big data provider, algorithm provider and system analyzer to classify and recommend the specific strategy for generating, handling and analyzing the big data. All the perspectives take a holistic view of technology. Current research, the particular conceptual framework will be described in holistic terms. 4iR has ability to take a holistic approach to explain an important of big data, complex modeling, large sparse simulation and high performance computing platform. Numerical analysis and parallel performance evaluation are the indicators for performance investigation of the classification strategy. This research will benefit to obtain an accurate decision, predictions and trending practice on how to obtain the approximation solution for science and engineering applications. As a conclusion, classification strategies for generating a fine granular mesh, identifying the root causes of failures and issues in real time solution. Furthermore, the big data-driven and data transfer evolution towards high speed of technology transfer to boost the economic and social development for the 4iR (Xing, 2017; Marwala et al., 2017). |
format |
Article |
author |
Alias, Norma Al-Rahmi, Waleed Mugahed Yahaya, Noraffandy Al-Maatouk, Qusay |
author_facet |
Alias, Norma Al-Rahmi, Waleed Mugahed Yahaya, Noraffandy Al-Maatouk, Qusay |
author_sort |
Alias, Norma |
title |
Big data, modeling, simulation, computational platform and holistic approaches for the fourth industrial revolution |
title_short |
Big data, modeling, simulation, computational platform and holistic approaches for the fourth industrial revolution |
title_full |
Big data, modeling, simulation, computational platform and holistic approaches for the fourth industrial revolution |
title_fullStr |
Big data, modeling, simulation, computational platform and holistic approaches for the fourth industrial revolution |
title_full_unstemmed |
Big data, modeling, simulation, computational platform and holistic approaches for the fourth industrial revolution |
title_sort |
big data, modeling, simulation, computational platform and holistic approaches for the fourth industrial revolution |
publisher |
Science Publishing Corporation Inc. |
publishDate |
2018 |
url |
http://eprints.utm.my/id/eprint/85184/1/NormaAlias2018_BigDataModelingSimulationComputational.pdf http://eprints.utm.my/id/eprint/85184/ https://www.sciencepubco.com/index.php/ijet/article/view/21759 |
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