scholarly journals Utilising urgent computing to tackle the spread of mosquito-borne diseases

Author(s):  
Nick Brown ◽  
Rupert Nash ◽  
Piero Poletti ◽  
Giorgio Guzzetta ◽  
Mattia Manica ◽  
...  
Keyword(s):  
2020 ◽  
Author(s):  
Marisol Monterrubio-Velasco ◽  
José Carlos Carrasco-Jimenez ◽  
Otilio Rojas ◽  
Juan Esteban Rodríguez ◽  
Josep de la Puente

<p>Earthquake and tsunami early warning systems and post-event urgent computing simulations require of fast and accurate quantification of earthquake parameters such as magnitude, location and Focal Mechanism (FM). Methodologies to estimate earthquake location and magnitude are well-established and in place. However, automatic solutions of FMs are not always provided by operational institutions and are, in some cases, available only after a time-consuming inversion of the wave-forms needed to determine the moment tensor components. This precludes urgent seismic simulations, which aim at providing ground shaking maps with severe time constraints. We propose a new strategy for fast (<60 s) determination of FM based on historical data sets, tested it at five different active seismic regions, Japan, New Zealand, California, Iceland, and Italy. The methodology includes the k-nearest neighbor's algorithm in a spatial dimension domain to search the most similar FMs between the data set. In our research, we focus on moderate to large earthquakes. The comparison algorithm includes the four closest events, and also a hypothetical event building by the median values of strike, dip, and rake of the k-neighbors. The validation stage includes the minimum rotated angle measure to compute the similitude between a pair of FMs. We find three model parameters, such as the minimum number of neighbors, the threshold radius that defines the neighboring sphere, and the magnitude threshold, that could improve the statistical similitude results. Our fast methodology has a 75%-90% agreement with traditional inversion mechanisms, depending on the particular tectonic region and dataset size. Our work is a key component of an urgent computing workflow, where the FM information will be used as input for ground motion simulations. Future work will assess the sensitivity of FM uncertainty in the resulting ground-shaking maps.</p>


2016 ◽  
Vol 80 ◽  
pp. 2062-2073
Author(s):  
Siew Hoon Leong ◽  
Dieter Kranzlmüller
Keyword(s):  

Author(s):  
Yu.I. Nechaev ◽  
O.N. Petrov

Рассматривается повышение эффективности функционирования бортовой интеллектуальной системы (ИС) при использовании комплекса управляемого дистанционного эксперимента (УДЭ). Такая технология интеллектуальной поддержки обеспечивают анализ и прогноз развития экстремальных ситуаций на основе данных физического моделирования и динамической модели современной теории катастроф (СТК), интегрирующей интеллектуальных технологии и высокопроизводительные вычисления. Особенности построения комплекса УДЭ связаны с развитием новых подходов к интеграции знаний сложных систем в эволюционирующей нестационарной среде. Программный комплекс УДЭ представляет собой активную динамическую систему (АДС), обеспечивающую оперативный контроль динамики судна на основе взаимодействия динамической базы знаний бортовой ИС и комплекса УДЭ в режиме экстренных вычислений (Urgent Computing UC) 1 8. Динамика взаимодействия имитируется с помощью системы управления, реализующей физические эффекты в процессе развития аварийной ситуации. Приведены примеры реализации разработанной стратегии при контроле экстремальных ситуаций в бортовых ИС новых поколений.An increase in the functioning efficiency of an onboard intellectual system (IS) when using a complex of controlled remote experiment (CRE) is considered. Such intellectual support technology provides analysis and forecast of the development of extreme situations on the basis of physical modeling data and a dynamic model of modern catastrophe theory (MCT), integrating intellectual technologies and high-performance computing. The features of constructing the CRE complex are associated with the development of new approaches to the integration of knowledge of complex systems in an evolving non-stationary environment. The CRE software package is an active dynamic system (ADS) that provides operational control of the vessels dynamics based on the interaction of the onboard intellectual system dynamic knowledge base and the CRE complex in urgent computing mode (Urgent Computing - UC) 1 - 8. The dynamics of interaction is simulated using a control system that implements physical effects in the process of emergency situation evolution. Examples of the implementation of the developed strategy for the control of extreme situations in the onboard intellectual systems of new generations are given.


2021 ◽  
Vol 11 (1) ◽  
pp. 117-125
Author(s):  
Yu.I. Nechaev ◽  

An ontological synthesis of models for interpreting non-stationary dynamics in onboard intelligence systems operating in the emergency computing mode (Urgent Computing - UC) is considered. The ontological system of a dynamic knowledge base is formulated on the basis of theoretical models of the modern catastrophe theory (СT). The analysis and forecast of the evolutionary dynamics of a non-stationary object is implemented in a multiprocessor computing environment. Within the framework of the ontological system, an approach to the interpretation of non-stationary dy-namics using fractal geometry and the theory of dynamical systems stability is formulated. The practical application of the developed ontology model is discussed in relation to the interpretation of the interaction of a marine dynamic object (MDO) with the external environment at a given time interval. The dynamic СT model determines the motion of the MDO system to the target attractor and in case of stability loss. Examples of the implementation of the ontological synthesis of non-stationary dynamics in safety systems for navigation and landing of ship-based aircraft are given.


2021 ◽  
Vol 118 (46) ◽  
pp. e2024891118
Author(s):  
Núria López ◽  
Luigi Del Debbio ◽  
Marc Baaden ◽  
Matej Praprotnik ◽  
Laura Grigori ◽  
...  

PRACE (Partnership for Advanced Computing in Europe), an international not-for-profit association that brings together the five largest European supercomputing centers and involves 26 European countries, has allocated more than half a billion core hours to computer simulations to fight the COVID-19 pandemic. Alongside experiments, these simulations are a pillar of research to assess the risks of different scenarios and investigate mitigation strategies. While the world deals with the subsequent waves of the pandemic, we present a reflection on the use of urgent supercomputing for global societal challenges and crisis management.


2013 ◽  
Vol 18 ◽  
pp. 2223-2232 ◽  
Author(s):  
Konstantin V. Knyazkov ◽  
Denis A. Nasonov ◽  
Timofey N. Tchurov ◽  
Alexander V. Boukhanovsky
Keyword(s):  

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