Context-aware self-adaptive routing for delay tolerant network in disaster scenarios
| dc.contributor.affiliation | Departamento de Informática de Sistemas y Computadores | |
| dc.contributor.affiliation | Grupo de Redes de Computadores | |
| dc.contributor.author | Rosas-Olivos, Erika Susana | |
| dc.contributor.author | Garay, Felipe | es_ES |
| dc.contributor.author | Hidalgo, Nicolas | es_ES |
| dc.contributor.funder | Fondo Nacional de Desarrollo Científico y Tecnológico, Chile | es_ES |
| dc.date.accessioned | 2026-02-25T06:25:02Z | |
| dc.date.available | 2026-02-25T06:25:02Z | |
| dc.date.issued | 2020-05 | es_ES |
| dc.description.abstract | [EN] In the generalized loss of communication as a result of extensive damage to the communication infrastructure in disaster or emergency scenarios, mobile ad-hoc networks can play an important role in improving communication in the affected areas and working around network disruptions. Communication protocols face a highly dynamic and congested network topology that require highly adaptable solutions. This article proposes a context-aware self-adaptive routing protocol for Delay Tolerant Networks that is able to adapt to different scenarios, allowing the participants of the network to automatically select a DTN protocol according to past performance of routing protocols under the current scenario. We define metrics to implement this approach in a disaster scenario and evaluate our proposal with simulation over three different mobility models. The proposed protocol shows a significant reduction of energy consumption with a good tradeoff with the delivery rate. | en_EN |
| dc.description.accrualMethod | S | es_ES |
| dc.description.bibliographicCitation | Rosas-Olivos, Erika Susana; Garay, F.; Hidalgo, N. (2020). Context-aware self-adaptive routing for delay tolerant network in disaster scenarios. Ad Hoc Networks. 102. https://doi.org/10.1016/j.adhoc.2020.102095 | es_ES |
| dc.description.references | B. R., W. P., Annual disaster statistical review 2017, 2018, Brussels: CRED. | es_ES |
| dc.description.references | Google Crisis Response, http://www.google.org/crisisresponse/. | es_ES |
| dc.description.references | Red Cross Apps, http://www.redcross.org/prepare/mobile-apps. | es_ES |
| dc.description.references | G. Association, The mobile economy 2018, tech report, 2018, (https://www.gsma.com/mobileeconomy/). | es_ES |
| dc.description.references | George, S., Zhou, W., Chenji, H., Won, M., Lee, Y., Pazarloglou, A., Stoleru, R., & Barooah, P. (2010). DistressNet: a wireless ad hoc and sensor network architecture for situation management in disaster response. IEEE Communications Magazine, 48(3), 128-136. https://doi.org/10.1109/mcom.2010.5434384 | es_ES |
| dc.description.references | Hossmann. (2011). Twitter in disaster mode: Security architecture. | es_ES |
| dc.description.references | Mahiddin, N. A., Sarkar, N. I., & Cusack, B. (2017). An Internet Access Solution: MANET Routing and a Gateway Selection Approach for Disaster Scenarios. The Review of Socionetwork Strategies, 11(1), 47-64. https://doi.org/10.1007/s12626-017-0004-3 | es_ES |
| dc.description.references | Coriat. (2016). Crowdsourcing-based architecture for post-disaster geolocation: a comparative performance evaluation. | es_ES |
| dc.description.references | Lu. (2016). Networking smartphones for disaster recovery. | es_ES |
| dc.description.references | Martín-Campillo, A., Crowcroft, J., Yoneki, E., & Martí, R. (2013). Evaluating opportunistic networks in disaster scenarios. Journal of Network and Computer Applications, 36(2), 870-880. https://doi.org/10.1016/j.jnca.2012.11.001 | es_ES |
| dc.description.references | Rosas, E., Hidalgo, N., Gil-Costa, V., Bonacic, C., Marin, M., Senger, H., Arantes, L., Marcondes, C., & Marin, O. (2016). Survey on Simulation for Mobile Ad-Hoc Communication for Disaster Scenarios. Journal of Computer Science and Technology, 31(2), 326-349. https://doi.org/10.1007/s11390-016-1630-x | es_ES |
| dc.description.references | Rosas. (2015). Mobility-aware DTN protocols for post-disaster scenarios. | es_ES |
| dc.description.references | Vahdat. (2000). Epidemic Routing for Partially Connected Ad Hoc Networks. | es_ES |
| dc.description.references | Burgess. (2006). Maxprop: Routing for vehicle-based disruption-tolerant networks. | es_ES |
| dc.description.references | Spyropoulos. (2005). Spray and wait: An efficient routing scheme for intermittently connected mobile networks. | es_ES |
| dc.description.references | Spyropoulos. (2007). Spray and focus: Efficient mobility-assisted routing for heterogeneous and correlated mobility. | es_ES |
| dc.description.references | Lindgren, A., Doria, A., & Schelén, O. (2003). Probabilistic routing in intermittently connected networks. ACM SIGMOBILE Mobile Computing and Communications Review, 7(3), 19-20. https://doi.org/10.1145/961268.961272 | es_ES |
| dc.description.references | Keränen. (2009). The ONE simulator for DTN protocol evaluation. | es_ES |
| dc.description.references | Uddin. (2009). A post-disaster mobility model for delay tolerant networking. | es_ES |
| dc.description.references | Garay. (2017). When a tsunami strikes: A mobility model for coastline cities. | es_ES |
| dc.description.references | Saha. (2011). Post Disaster Management Using Delay Tolerant Network. 162. | es_ES |
| dc.description.references | Zhao. (2014). Caor: Context-aware adaptive opportunistic routing in mobile ad-hoc networks. | es_ES |
| dc.description.references | Elias. (2015). Corb: Context-aware opportunistic resource-based routing for stationary wireless sensor networks. | es_ES |
| dc.description.references | Boldrini, C., Conti, M., Delmastro, F., & Passarella, A. (2010). Context- and social-aware middleware for opportunistic networks. Journal of Network and Computer Applications, 33(5), 525-541. https://doi.org/10.1016/j.jnca.2010.03.017 | es_ES |
| dc.description.references | Yasmin. (2014). A multi-attribute routing protocol for opportunistic network environments. | es_ES |
| dc.description.references | Cabacas, R., & Ra, I.-H. (2014). CMP: A Context Information-based Routing Scheme with Energy-based Message Prioritization for Delay Tolerant Networks. International Journal of Fuzzy Logic and Intelligent Systems, 14(4), 295-304. https://doi.org/10.5391/ijfis.2014.14.4.295 | es_ES |
| dc.description.references | Musolesi, M., & Mascolo, C. (2009). CAR: Context-Aware Adaptive Routing for Delay-Tolerant Mobile Networks. IEEE Transactions on Mobile Computing, 8(2), 246-260. https://doi.org/10.1109/tmc.2008.107 | es_ES |
| dc.description.references | de Oliveira, E. C. R., Silva, E. F., Passos, D., Naves, J., Muchaluat-Saade, D. C., Moraes, I. M., & Albuquerque, C. (2016). Context-Aware Routing in Delay and Disruption Tolerant Networks. International Journal of Wireless Information Networks, 23(3), 231-245. https://doi.org/10.1007/s10776-016-0315-2 | es_ES |
| dc.description.references | Gao. (2010). Energy-aware spray and wait routing in mobile opportunistic sensor networks. | es_ES |
| dc.description.references | Rango. (2013). Enhancements of epidemic routing in delay tolerant networks from an energy perspective. | es_ES |
| dc.description.references | Bista. (2017). Ea-prophet: An energy aware prophet-based routing protocol for delay tolerant networks. | es_ES |
| dc.description.references | Uddin. (2009). A low-energy, multi-copy inter-contact routing protocol for disaster response networks. | es_ES |
| dc.description.references | Zeng. (2012). Energy-efficient routing and rate allocation for delay tolerant networks. | es_ES |
| dc.description.references | Maia. (2015). A bayesian game based optimization strategy proposal for routing in energy constrained dtns. | es_ES |
| dc.description.references | Martín-Campillo, A., & Martí, R. (2012). Energy-efficient forwarding mechanism for wireless opportunistic networks in emergency scenarios. Computer Communications, 35(14), 1715-1724. https://doi.org/10.1016/j.comcom.2012.04.028 | es_ES |
| dc.description.references | Lakkakorpi. (2010). Adaptive routing in mobile opportunistic networks. | es_ES |
| dc.description.references | Raffelsberger. (2013). Overview of hybrid manet-dtn networking and its potential for emergency response operations. Electr. Commun. EASST. 56. | es_ES |
| dc.description.references | Kawamoto. (2013). Toward terminal-to-terminal communication networks: A hybrid manet and dtn approach. | es_ES |
| dc.description.references | Miyakawa. (2015). A hybrid type dtn routing method using delivery predictability and maximum number of replication. | es_ES |
| dc.description.references | Garay. (2015). Reliable routing protocol for delay tolerant networks. | es_ES |
| dc.description.references | San Francisco Department of Emergency Management, https://www.sf72.org/hazard/tsunamis. | es_ES |
| dc.description.references | Luo. (2008). Performance evaluation of vehicular dtn routing under realistic mobility models. | es_ES |
| dc.description.references | Schwamborn. (2010). A realistic trace-based mobility model for first responder scenarios. | es_ES |
| dc.description.references | Levi, T., Salamon, A., Bausch, D., Rozelle, J., Cutrell, A., Hoyland, S., Hamiel, Y., Katz, O., Calvo, R., Gvirtzman, Z., Ackerman, B., & Gavrieli, I. (2018). Earthquake scenario in a national drill, the case of “Turning Point 6”, 2012, Israel. Natural Hazards, 92(1), 113-132. https://doi.org/10.1007/s11069-018-3194-2 | es_ES |
| dc.description.references | Great ShakeOut Earthquake Drills, https://www.shakeout.org. | es_ES |
| dc.description.references | Earthquake Country Alliance (ECA), http://www.earthquakecountry.org. | es_ES |
| dc.description.references | Oficina Nacional de Emergencia del Ministerio del Interior y Seguridad Pública, https://www.onemi.gov.cl/simulacros. | es_ES |
| dc.description.sponsorship | Erika Rosas wants to thank the project CONICYT FONDECYT N◦ 11181028, Chile. Nicolas Hidalgo wants to thank the project CONICYT FONDECYT N◦ 11190314, Chile. | es_ES |
| dc.description.volume | 102 | es_ES |
| dc.identifier.doi | 10.1016/j.adhoc.2020.102095 | es_ES |
| dc.identifier.eissn | 1570-8705 | es_ES |
| dc.identifier.uri | https://riunet.upv.es/handle/10251/232900 | |
| dc.language | Inglés | es_ES |
| dc.publisher | Elsevier | es_ES |
| dc.relation.ispartof | Ad Hoc Networks | es_ES |
| dc.relation.pasarela | S\575055 | es_ES |
| dc.relation.projectID | info:eu-repo/grantAgreement/FONDECYT//11190314/ | es_ES |
| dc.relation.projectID | info:eu-repo/grantAgreement/FONDECYT//11181028/ | es_ES |
| dc.relation.publisherversion | https://doi.org/10.1016/j.adhoc.2020.102095 | es_ES |
| dc.rights | Reconocimiento - No comercial - Sin obra derivada (by-nc-nd) | es_ES |
| dc.rights.accessRights | Abierto | es_ES |
| dc.subject | Mobile ad-hoc communication | es_ES |
| dc.subject | Delay tolerant networks | es_ES |
| dc.subject | Disaster scenario | es_ES |
| dc.subject.ods | 09.- Desarrollar infraestructuras resilientes, promover la industrialización inclusiva y sostenible, y fomentar la innovación | es_ES |
| dc.subject.ods | 11.- Conseguir que las ciudades y los asentamientos humanos sean inclusivos, seguros, resilientes y sostenibles | es_ES |
| dc.title | Context-aware self-adaptive routing for delay tolerant network in disaster scenarios | es_ES |
| dc.type | Artículo | es_ES |
| dc.type.version | info:eu-repo/semantics/publishedVersion | es_ES |
| dspace.entity.type | Publication | es_ES |
| person.identifier | 745231 | |
| relation.isAuthorOfPublication | b50fdaaf-e32b-4327-afdd-eea20832b728 | |
| relation.isAuthorOfPublication.latestForDiscovery | b50fdaaf-e32b-4327-afdd-eea20832b728 | |
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| upv.uuid | ce47bb07-8bbe-409f-b43d-2dbee29e141f | es_ES |
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