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Desarrollo de Sistemas Distribuidos de Tiempo Real y de Criticidad Mixta a través del Estándar DDS

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Desarrollo de Sistemas Distribuidos de Tiempo Real y de Criticidad Mixta a través del Estándar DDS

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Pérez Tijero, H.; Gutiérrez, JJ. (2018). Desarrollo de Sistemas Distribuidos de Tiempo Real y de Criticidad Mixta a través del Estándar DDS. Revista Iberoamericana de Automática e Informática industrial. 15(4):439-447. https://doi.org/10.4995/riai.2017.9000

Por favor, use este identificador para citar o enlazar este ítem: http://hdl.handle.net/10251/142831

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Título: Desarrollo de Sistemas Distribuidos de Tiempo Real y de Criticidad Mixta a través del Estándar DDS
Otro titulo: Development of Real-Time and Mixed Criticality Distributed Systems through the DDS Standard
Autor: Pérez Tijero, Héctor Gutiérrez, J. Javier
Fecha difusión:
Resumen:
[EN] The use of distribution middleware facilitates the programming of heterogeneous real-time distributed systems, and it can also facilitate the automatic generation of source code when integrated as a part of a general ...[+]


[ES] El uso de middleware de distribución facilita la programación de sistemas distribuidos de tiempo real heterogéneos, y por extensión también puede facilitar la generación automática de código como parte de una estrategia ...[+]
Palabras clave: Real-Time , Safety-critical , Distributed Systems , Embedded Systems , Distribution Middleware , Tiempo Real , Sistemas críticos , Sistemas distribuidos , Sistemas empotrados , Middleware de comunicaciones
Derechos de uso: Reconocimiento - No comercial - Sin obra derivada (by-nc-nd)
Fuente:
Revista Iberoamericana de Automática e Informática industrial. (issn: 1697-7912 ) (eissn: 1697-7920 )
DOI: 10.4995/riai.2017.9000
Editorial:
Universitat Politècnica de València
Versión del editor: https://doi.org/10.4995/riai.2017.9000
Código del Proyecto:
info:eu-repo/grantAgreement/MINECO//TIN2014-56158-C4-2-P/ES/SISTEMAS CIBER-FISICOS DE CRITICIDAD MIXTA SOBRE PLATAFORMAS MULTINUCLEO/
Agradecimientos:
Este trabajo ha sido financiado en parte por el Gobierno de España en el proyecto TIN2014-56158-C4-2-P (M2C2).
Tipo: Artículo

References

Airlines Electronic Engineering Committee, Aeronautical Radio INC, 2009. Aircraft Data Network, Part 7 - Avionics Full Duplex Switched Ethernet (AFDX) Network. ARINC Specification 664-7. September, 2009.

Airlines Electronic Engineering Committee, Aeronautical Radio INC, 2010. Avionics Application Software Interface, required Services. ARINC Specification 653-1.

Aldea, M., González Harbour, M, 2001. MaRTE OS: An Ada Kernel for Real-Time Embedded Applications. In: Proc. of the Int. Conference on Reliable Software Technologies, Ada-Europe, Leuven (Belgium), LNCS 2043, pp. 305-316. ttps://doi.org/10.1007/3-540-45136-6_24 [+]
Airlines Electronic Engineering Committee, Aeronautical Radio INC, 2009. Aircraft Data Network, Part 7 - Avionics Full Duplex Switched Ethernet (AFDX) Network. ARINC Specification 664-7. September, 2009.

Airlines Electronic Engineering Committee, Aeronautical Radio INC, 2010. Avionics Application Software Interface, required Services. ARINC Specification 653-1.

Aldea, M., González Harbour, M, 2001. MaRTE OS: An Ada Kernel for Real-Time Embedded Applications. In: Proc. of the Int. Conference on Reliable Software Technologies, Ada-Europe, Leuven (Belgium), LNCS 2043, pp. 305-316. ttps://doi.org/10.1007/3-540-45136-6_24

Gutiérrez, J. J., Palencia, J. C., González Harbour, M., 2014. Holistic schedulability analysis for multipacket messages in AFDX networks. Journal of Real-Time Systems 50(2), pp. 230-269. https://doi.org/10.1007/s11241-013-9192-2

Han, S., Jin, H., 2014. Resource partitioning for Integrated Modular Avionics: comparative study of implementation alternatives. Software: Practice and Experience (SPE) 44(12), pp. 1441-1466. https://doi.org/10.1002/spe.2210

IEEE Portable Application Standards Committee (PASC), 2003. Standard for Information Technology-Portable Operating System Interface (POSIX) Realtime and Embedded Application Support. Std. 1003.13.

Masmano, M., Ripoll, I., Crespo, A., Metge, J. J., 2009. Xtratum a hypervisor for safety critical embedded systems. In: Proc. of the 11th Real-Time Linux Workshop, Dresden (Germany).

Object Management Group, 2011. A UML Profile for MARTE: Modeling and Analysis of Real-Time Embedded Systems, v1.1.

Object Management Group. 2014. The Real-time Publish-Subscribe Wire Protocol. DDS Interoperability Wire Protocol Specification. v2.2, formal/2014-09-01.

Object Management Group, 2015. Data Distribution Service for Real-time Systems. v1.4, formal/15-04-10.

Open and cost-effective virtualization techniques and supporting separation kernel for the embedded systems industry (VOS4ES) European Project, 2013. 7th Framework Prog.

Open VEhiculaR SEcurE platform (OVERSEE) European Project, 2013. 7th Framework Prog.

Palencia, J. C., González Harbour, M., Gutiérrez, J. J., Rivas, J. M., 2017. Response-Time Analysis in Hierarchically-Scheduled Time-Partitioned Distributed Systems. IEEE Transactions on Parallel and Distributed Systems, 28(7), pp. 2017-2030. https://doi.org/10.1109/TPDS.2016.2642960

Pérez, H., Aldea, M., Medina, D., 2017. Multiprocessor platform for partitioned real-time systems. Software: Practice and Experience, 47(1), pp. 61-78.https://doi.org/10.1002/spe.2404

Pérez, H., Gutiérrez, J. J., 2012. On the schedulability of a data-centric real-time distribution middleware. Computer Standards and Interfaces 34 (1), pp. 203-211. https://doi.org/10.1016/j.csi.2011.08.005

Pérez, H., Gutiérrez, J. J., 2015. Modeling the QoS parameters of DDS for event-driven real-time applications. Journal of Systems and Software 104, pp. 126-140. https://doi.org/10.1016/j.jss.2015.03.008

Pérez, H., Gutiérrez, J. J., 2016. Enabling data-centric distribution technology for partitioned embedded systems. IEEE ans. on Parallel and Distributed Systems 27(11), pp. 3186-3198. https://doi.org/10.1109/TPDS.2016.2531695

Pérez, H., Gutiérrez, J. J., 2017. Handling heterogeneous partitioned systems through ARINC-653 and DDS. Computer Standards & Interfaces 50, pp. 258-268. https://doi.org/10.1016/j.csi.2016.10.012

Pérez, H., Gutiérrez, J. J., Peiró, S., Crespo, A., 2017. Distributed architecture for developing mixed-criticality systems in multi-core platforms. The Journal of Systems and Software 123, pp. 145-159. https://doi.org/10.1016/j.jss.2016.08.088

Pérez, J., González, D, Trujillo, S., Trapman, T., 2015. A Safety Concept for an IEC-61508 Compliant Fail-Safe Wind Power Mixed-Criticality System Based on Multicore and Partitioning. Proc. of the Int. Conference on Reliable Software Technologies, Ada-Europe, Madrid (Spain), LNCS 9111, pp. 3-17. https://doi.org/10.1007/978-3-319-19584-1_1

Poza, J. L., Posadas, J. L., Simó, J.E., 2009. From the Queue to the Quality of Service Policy: A Middleware Implementation. In: Proc. of the. International Work-Conference on Artificial Neural Networks (IWANN 2009), Salamaca (Spain), LNCS 5518, pp. 432-437. https://doi.org/10.1007/978-3-642-02481-8_61

Rioux, L., Henia, R., Sordon, N., González Harbour, M., Gutiérrez, J. J., Rivas, J. M., Cuevas, C., Drake, J. M., Medina, J. L., 2015. Schedulability analysis and optimization in a model-based integrated tool-chain: Synthetic MARTE models for optimizing real-time design with MAST and TEMPO. In: Conf. on Forum on specification & Design Languages, Demo Night Session, Barcelona (Spain).

RTI Connext DDS Micro, 2017. Available at http://www.rti.com. Last access in June, 2017.

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