The influence of software engineering on industrial automation processes

dc.creatorMejía-Neira, Ángel
dc.creatorJabba, Daladier
dc.creatorCarrillo Caballero, Garyn
dc.creatorCaicedo-Ortiz, José
dc.date2020-01-24T16:44:20Z
dc.date2020-01-24T16:44:20Z
dc.date2019-10
dc.date.accessioned2023-10-03T19:59:26Z
dc.date.available2023-10-03T19:59:26Z
dc.identifier0718-0764
dc.identifier0716-8756
dc.identifierhttp://hdl.handle.net/11323/5927
dc.identifierCorporación Universidad de la Costa
dc.identifierREDICUC - Repositorio CUC
dc.identifierhttps://repositorio.cuc.edu.co/
dc.identifier.urihttps://repositorioslatinoamericanos.uchile.cl/handle/2250/9173637
dc.descriptionThe topic dealt with in the document mainly covers the influence of service-oriented architecture and how services are orchestrated among themselves for the development of more robust and dynamic applications aimed at solving problems presented in the design of industrial automation systems. Currently, industries are compelling to use new systems that support the dynamics that organizations face. However, the current systems of companies lack this dynamism, which often makes it impossible to implement new functionalities to the processes of autonomous production, due to the lack of flexibility and agility to respond to the dynamics of production styles that are experienced today. Software engineering contributes to the dynamics in the area of industrial automation, highlighting significant improvements in the configuration of systems implemented in the field of industrial automation.
dc.descriptionLa temática tratada en el documento abarca principalmente la influencia de la arquitectura orientada al servicio y de cómo los servicios se orquestan entre sí para el desarrollo de aplicaciones más robustas y dinámicas orientadas a la solución de problemáticas presentadas en el diseño de sistemas de automatización industrial. En la actualidad, las industrias están obligadas a utilizar nuevos sistemas que soporten la dinámica a la que se enfrentan las organizaciones. Sin embargo, los sistemas actuales de las empresas carecen de este dinamismo, lo que muchas veces imposibilita la implementación de nuevas funcionalidades a los procesos de producción autónomos, debido a la poca flexibilidad y agilidad de responder a la dinámica de los estilos de producción que se experimentan hoy día. La ingeniería de software aporta a la dinámica en el área de la automatización industrial, resaltando mejoras significativas en la configuración de sistemas implementados en el campo de la automatización industrial.
dc.formatapplication/pdf
dc.languagespa
dc.publisherInformación Tecnológica
dc.relationhttp://dx.doi.org/10.4067/S0718-07642019000500221
dc.relationAcharya, V., S.K. Sharma y S. Kumar Gupta, Analyzing the factors in industrial automation using analytic hierarchy process, doi: 10.1016/J.COMPELECENG.2017.08.015, Computers y Electrical Engineering, 71, 877–886 (2018)
dc.relationAkdur, D., V. Garousi y O. Demirörs, A survey on modeling and model-driven engineering practices in the embedded software industry, doi: 10.1016/J.SYSARC.2018.09.007, Journal of Systems Architecture, 91, 62–82 (2018)
dc.relationAlcácer, V. y V. Cruz-Machado, Scanning the Industry 4.0: A Literature Review on Technologies for Manufacturing Systems, doi:10.1016/J.JESTCH.2019.01.006, Engineering Science and Technology, an International Journal, 2-21 (2019)
dc.relationAlphonsus, E.R. y M.O. Abdullah, A review on the applications of programmable logic controllers (PLCs), doi:/10.1016/j.rser.2016.01.025, Renewable and Sustainable Energy Reviews, 60, 1185-1205 (2016)
dc.relationBicocchi, N., G. Cabri, F. Mandreoli y M. Mecella, Dynamic digital factories for agile supply chains: An architectural approach, doi: 10.1016/J.JII.2019.02.001, Journal of Industrial Information Integration (2019)
dc.relationBohn, H., A. Bobek y F. Golatowski, SIRENA - Service Infrastructure for Real-time Embedded Networked Devices: A service-oriented framework for different domains, doi:10.1109/ICNICONSMCL.2006.196, International Conference on Networking, International Conference on Systems and International Conference on Mobile Communications and Learning Technologies, ICN/ICONS/MCL’06 (2006)
dc.relationBortolini, M., F. G. Galizia y C. Mora, Reconfigurable manufacturing systems: Literature review and research trend, doi: 10.1016/j.jmsy.2018.09.005, Journal of Manufacturing Systems (2018)
dc.relationBrandl, F.J., M. Kagerer y G. Reinhart, A Hybrid Innovation Management Framework for Manufacturing – Enablers for more Agility in Plants, doi: 10.1016/J.PROCIR.2018.04.022, Procedia CIRP, 72, 1154–1159 (2018)
dc.relationCampanelli, S., P. Foglia y C.A. Prete, An architecture to integrate IEC 61131-3 systems in an IEC 61499 distributed solution, doi: 10.1016/J.COMPIND.2015.04.002, Computers in Industry, 72, 47–67 (2015)
dc.relationCarmona, J.A.R., J.C.M. Benitez y J.L. Garcia-Gervacio, SCADA system design: A proposal for optimizing a production line, doi:10.1109/CONIELECOMP.2016.7438574, International Conference on Electronics, Communications and Computers (CONIELECOMP), 192–197 (2016)
dc.relationColombo, A.W., S. Karnouskos y J.M. Mendes, Factory of the Future: A Service-oriented System of Modular, Dynamic Reconfigurable and Collaborative Systems, doi: 10.1007/978-1-84996-119-6_15, Artificial Intelligence Techniques for Networked Manufacturing Enterprises Management, 459–481 (2010)
dc.relationDai, W., V. Vyatkin, J.H. Christensen y V.N. Dubinin, Bridging Service-Oriented Architecture and IEC 61499 for Flexibility and Interoperability, doi: 10.1109/TII.2015.2423495, IEEE Transactions on Industrial Informatics, 11(3), 771–781 (2015)
dc.relationDai, W., Wanqi Huang y V. Vyatkin, Enabling plug-and-play software components in industrial cyber-physical systems by adopting service-oriented architecture paradigm, doi:10.1109/IECON.2016.7793834, In IECON 2016 - 42nd Annual Conference of the IEEE Industrial Electronics Society, 5253–5258 (2016)
dc.relationDelaram, J. y O. Fatahi Valilai, An architectural view to computer integrated manufacturing systems based on Axiomatic Design Theory, doi: 10.1016/J.COMPIND.2018.04.009, Computers in Industry, 100, 96–114 (2018)
dc.relationEl Zaatari, S., M. Marei, W. Li y Z. Usman, Cobot programming for collaborative industrial tasks: An overview, doi: 10.1016/j.robot.2019.03.003, Robotics and Autonomous Systems (2019)
dc.relationEssers, M.S. y T.H.J. Vaneker, Design of a decentralized modular architecture for flexible and extensible production systems, doi: 10.1016/J.MECHATRONICS.2015.08.009, Mechatronics, 34, 160–169 (2016)
dc.relationFletcher, S., T. Johnson y otros cinco autores, Adaptive Automation Assembly: Identifying System Requirements for Technical Efficiency and Worker Satisfaction, doi: 10.1016/J.CIE.2019.03.036, Computers y Industrial Engineering (2019)
dc.relationGiret, A., E. Garcia y V. Botti, An engineering framework for Service-Oriented Intelligent Manufacturing Systems, doi: 10.1016/j.compind.2016.02.002, Computers in Industry, 81, 116–127 (2016)
dc.relationGopalakrishnan, A., K.P. Jithin y A.C. Biswal, Industrial Automation System on Device (IndASoD) -A device modeling industrial automation scenarios, doi:10.1109/INDICON.2014.7030500, Annual IEEE India Conference (INDICON), 1-6 (2014)
dc.relationGröhn, L., S. Metsälä y otros cinco autores, Manufacturing System Upgrade with Wireless and Distributed Automation, doi: 10.1016/j.promfg.2017.07.207, Procedia Manufacturing, 11, 1012-1018 (2017)
dc.relationHan, S.N. y N. Crespi, Semantic service provisioning for smart objects: Integrating IoT applications into the web, doi: 10.1016/J.FUTURE.2016.12.037, Future Generation Computer Systems, 76, 180–197 (2017)
dc.relationJammes, F., y H. Smit, Service-oriented paradigms in industrial automation, doi: 10.1109/TII.2005.844419, IEEE Transactions on Industrial Informatics, 1(1), 62–70 (2005)
dc.relationJamro, M. y D. Rzonca, Agile and hierarchical round-trip engineering of IEC 61131-3 control software, doi: 10.1016/j.compind.2018.01.004, Computers in Industry, 96, 1-9 (2018)
dc.relationJetley, R., A. Nair, P. Chandrasekaran y A. Dubey, Applying software engineering practices for development of industrial automation applications, doi:10.1109/INDIN.2013.6622945, IEEE International Conference on Industrial Informatics (INDIN), 558–563 (2013)
dc.relationJovanović, M., S. Zupan e I. Prebil, Holonic control approach for the “green”-tyre manufacturing system using IEC 61499 standard, doi:10.1016/J.JMSY.2016.06.008, Journal of Manufacturing Systems, 40, 119–136 (2016)
dc.relationJoyanes Aguilar, L., La transformación digital en las organizaciones y empresas, Industria 4.0 la cuarta revolución industrial, Alfaomega, 73-95, Bogotá, Colombia (2017)
dc.relationKacem, H.H., W. Sellami y A.H. Kacem, A formal approach for the validation of web service orchestrations, doi: 10.1109/WETICE.2012.53, Proceedings of the Workshop on Enabling Technologies: Infrastructure for Collaborative Enterprises, WETICE, 42–47 (2012)
dc.relationKoren, Y., X. Gu y W. Guo, Reconfigurable manufacturing systems: Principles, design, and future trends, doi: 10.1007/s11465-018-0483-0, Frontiers of Mechanical Engineering, 13(2), 121-136 (2018)
dc.relationLeitão, P., A.W. Colombo y S. Karnouskos, Industrial automation based on cyber-physical systems technologies: Prototype implementations and challenges, doi: 10.1016/j.compind.2015.08.004, Computers in Industry, 81, 11–25 (2016)
dc.relationLucas Silva, A., R. Ribeiro y M. Teixeira, Modeling and control of flexible context-dependent manufacturing systems, doi: 10.1016/j.ins.2017.08.084, Information Sciences, 421, 1–14 (2017)
dc.relationMaganha, I., C. Silva y L.M.D.F Ferreira, Understanding reconfigurability of manufacturing systems: An empirical analysis, doi: 10.1016/j.jmsy.2018.07.004, Journal of Manufacturing Systems, 48 (Part A), 120-130 (2018)
dc.relationMazzolini, M., F.A. Cavadini, G. Montalbano y A. Forni, Structured Approach to the Design of Automation Systems through IEC 61499 Standard, doi:10.1016/J.PROMFG.2017.07.194, Procedia Manufacturing, 11, 905–913 (2017)
dc.relationMendes, J.M., A. Bepperling y otros cuatro autores, Software methodologies for the engineering of service-oriented industrial automation: The continuum project, doi: 10.1109/COMPSAC.2009.66, Proceedings - International Computer Software and Applications Conference, 1, 452-459 (2009)
dc.relationMorel, G., C.E. Pereira y S.Y. Nof, Historical survey and emerging challenges of manufacturing automation modeling and control: A systems architecting perspective, doi: 10.1016/j.arcontrol.2019.01.002, Annual Reviews in Control (2019)
dc.relationPapp, J., D. Tokody y F. Flammini, From traditional manufacturing and automation systems to holonic intelligent systems, doi: 10.1016/j.promfg.2018.03.132, Procedia Manufacturing, 22, 931–935 (2018)
dc.relationPinto, S.M., P.E. Ramírez y E.E. Grandón, Antecedentes del Éxito de los Sistemas de Planificación de Recursos Empresariales en las Grandes Empresas Chilenas: un Modelo Factorial Exploratorio, doi:10.4067/S071807642017000300015, Información Tecnológica, 28(3), 139–146 (2017)
dc.relationPuttonen, J., A. Lobov y J.L.M. Lastra, An application of BPEL for service orchestration in an industrial environment, doi: 10.1109/ETFA.2008.4638450, IEEE International Conference on Emerging Technologies and Factory Automation, 530– 537 (2008)
dc.relationRitter, D., N. May y S. Rinderle-Ma, Patterns for emerging application integration scenarios: A survey, doi: 10.1016/J.IS.2017.03.003, Information Systems, 67, 36–57 (2017)
dc.relationSchmidt, J. P., T. Müller y M. Weyrich, Methodology for the model driven development of service oriented plant controls, doi: 10.1016/j.procir.2017.12.195, Procedia CIRP, 67, 173-178 (2018)
dc.relationTsiatsis, V., S. Karnouskos y otros tres autores, Industrial Automation, doi: 10.1016/B978-0-12-814435-0.00024-9, Internet of Things, 249–256 (2019)
dc.relationVyatkin, V., Software Engineering in Industrial Automation: State-of-the-Art Review, doi: 10.1109/TII.2013.2258165, IEEE Transactions on Industrial Informatics, 9(3), 1234–1249 (2013)
dc.relationWaris, M., S.A. Khan y M.Z. Fakhar, Factors effecting service-oriented architecture implementation, Proceedings of 2013 Science and Information Conference, ISBN: 978-0-9893193-0-0, 1–8 (2013)
dc.relationZeller, A. y M. Weyrich, Component based Verification of Distributed Automation Systems based on Model Composition, doi: 10.1016/j.procir.2018.03.183, Procedia CIRP, 72, 352-358 (2018)
dc.relationZernadji, T., C. Tibermacine, F. Cherif y A. Zouioueche, Integrating quality requirements in engineering web service orchestrations, doi: 10.1016/J.JSS.2015.11.009, Journal of Systems and Software, 122, 463–483 (2016)
dc.rightsCC0 1.0 Universal
dc.rightshttp://creativecommons.org/publicdomain/zero/1.0/
dc.rightsinfo:eu-repo/semantics/openAccess
dc.rightshttp://purl.org/coar/access_right/c_abf2
dc.subjectService-oriented architecture
dc.subjectIndustrial automation
dc.subjectPLC
dc.subjectSoftware engineering
dc.subjectCIM model
dc.subjectArquitectura orientada al servicio
dc.subjectAutomatización industrial
dc.subjectIngeniería de software
dc.subjectModelo CIM
dc.subjectArquitectura
dc.subjectArchitecture
dc.titleInfluencia de la ingeniería de software en los procesos de automatización industrial
dc.titleThe influence of software engineering on industrial automation processes
dc.typeArtículo de revista
dc.typehttp://purl.org/coar/resource_type/c_6501
dc.typeText
dc.typeinfo:eu-repo/semantics/article
dc.typeinfo:eu-repo/semantics/publishedVersion
dc.typehttp://purl.org/redcol/resource_type/ART
dc.typeinfo:eu-repo/semantics/acceptedVersion
dc.typehttp://purl.org/coar/version/c_ab4af688f83e57aa


Este ítem pertenece a la siguiente institución