dc.contributorPedraza Bonilla, Cesar Augusto
dc.contributorPLaS - Programming Languages and Systems
dc.creatorQuintero Albornoz, Juan Sebastián
dc.date.accessioned2020-09-16T17:17:37Z
dc.date.available2020-09-16T17:17:37Z
dc.date.created2020-09-16T17:17:37Z
dc.date.issued2019-11-05
dc.identifierhttps://repositorio.unal.edu.co/handle/unal/78469
dc.description.abstractIn this document, an in-depth analysis is carried out that will allow us to know the importance of livestock identification, giving rise to a term that is currently well known, such as the internet of things, applied to the control of livestock mobility focused on rural areas of Colombia, through the identification by RFID in low frequency. With the result obtained from this research, a model applicable to the meat sector is established, building a business opportunity, thus expanding the markets to international trade, promoting not only the country's economic development in the agricultural sector, but also applying technology to the same sector.
dc.description.abstractEn el presente documento, se realiza un análisis profundo que permitirá conocer la importancia de identificación pecuaria, dando pie a un término bastante conocido actualmente, como es el internet de las cosas, aplicado al control de movilidad pecuaria enfocado a zonas rurales de Colombia, mediante la identificación por RFID en baja frecuencia. Con el resultado obtenido de la presente investigación, se establece un modelo aplicable al sector cárnico construyendo una oportunidad de negocio, ampliando así los mercados al comercio internacional, impulsando no solamente el desarrollo económico del país en el sector agropecuario, si no adicionalmente aplicando tecnología hacia el mismo sector.
dc.languagespa
dc.publisherBogotá - Ingeniería - Maestría en Ingeniería - Telecomunicaciones
dc.publisherUniversidad Nacional de Colombia - Sede Bogotá
dc.relation[1] Ahumada, O., y Villalobos, J. R. (2011). A tactical model for planning the production and distribution of fresh produce. Ann Oper Res, 190, 339–358. Descargado de https:// link.springer.com/content/pdf/10.1007%2Fs10479-009-0614-4.pdf doi: 10.1007/ s10479-009-0614
dc.relation[2] Al-Fuqaha, A., Guizani, M., Mohammadi, M., Aledhari, M., y Ayyash, M. (2015, 24). Internet of Things: A Survey on Enabling Technologies, Protocols, and Applications. IEEE Communications Surveys & Tutorials, 17(4), 2347–2376. Descargado de http:// ieeexplore.ieee.org/document/7123563/ doi: 10.1109/COMST.2015.2444095.
dc.relation[3] Ariff, M. H., & Ismail, I. (2013). Livestock information system using Android Smartphone. In Proceedings - 2013 IEEE Conference on Systems, Process and Control, ICSPC 2013. Descargado de https://doi.org/10.1109/SPC.2013.6735123
dc.relation[4] Atzori, L., Iera, A., y Morabito, G. (2017). Understanding the Internet of Things: denition, potentials, and societal role of a fast evolving paradigm. Ad Hoc Networks, 56, 122– 140. Descargado de http://dx.doi.org/10.1016/j.adhoc.2016.12.004.
dc.relation[5] Aung, M. M., y Chang, Y. S. (2014, 5). Traceability in a food supply chain: Safety and quality perspectives. Food Control, 39, 172–184. Descargado de http://linkinghub.elsevier .com/retrieve/pii/S0956713513005811 doi: 10.1016/j.foodcont.2013.11.00.
dc.relation[6] Azuara, G., Luis Tornos, J., & Luis Salazar, J. (2012). Improving RFID traceability systems with verifiable quality. Industrial Management & Data Systems. Descargado de https://doi.org/10.1108/02635571211210022
dc.relation[7] Balogh, Z., Bízik, R., Turcáni, M., & Koprda, Š. (2016). Proposal for spatial monitoring activities using the raspberry pi and lf rfid technology. Lecture Notes in Electrical Engineering. Descargado de https://doi.org/10.1007/978-81-322-2580-5_58.
dc.relation[8] Bertino, E., Choo, K.-K. R., Georgakopolous, D., & Nepal, S. (2016). Internet of Things (IoT). ACM Transactions on Internet Technology. Descargado de https://doi.org/10.1145/3013520
dc.relation[9] Boulos, M. N. K., Yassine, A., Shirmohammadi, S., Namahoot, C. S., & Brückner, M. (2015). Towards an “internet of food”: Food ontologies for the internet of things. Future Internet. Descargado de https://doi.org/10.3390/fi7040372
dc.relation[10] C. Bormann, “The Constrained Application Protocol (CoAP).” [Online]. Descargado de: http://coap.technology/
dc.relation[11] Chelloug, S. A. (2015). Energy-Efficient Content-Based Routing in Internet of Things. Journal of Computer and Communications.Descargado de https://doi.org/10.4236/jcc.2015.312002
dc.relation[12] Chougule, A., Jha, V. K., & Mukhopadhyay, D. (2016). Using IoT for integrated pest management. In 2016 International Conference on Internet of Things and Applications, IOTA 2016. Descargado de https://doi.org/10.1109/IOTA.2016.7562688
dc.relation[13] Cobertura Movistar Colombia. (2015). Mapas de Cobertura. Descargado de http://www.movistar.co/atencion-cliente/cobertura-tecnologia
dc.relation[14] Colella, R., Catarinucci, L., & Tarricone, L. (2016b). Improved RFID tag characterization system: Use case in the IoT arena. In 2016 IEEE International Conference on RFID Technology and Applications, RFID-TA 2016. Descargado de https://doi.org/10.1109/RFID-TA.2016.7750760
dc.relation[15] Dabbene, F., Gay, P., & Tortia, C. (2016). Radio-Frequency Identification Usage in Food Traceability. In Advances in Food Traceability Techniques and Technologies: Improving Quality Throughout the Food Chain. Descargado de https://doi.org/10.1016/B978-0-08-100310-7.00005-3
dc.relation[16] Diet, A., Biancheri-Astier, M., Le Bihan, Y., Conessa, C., Gbafa, K., Alves, F., … Pozzebon, A. (2017). A switched reader complementary-loops structure for detecting LF RFID tagged pebbles. In 2017 IEEE International Conference on RFID Technology and Application, RFID-TA 2017. Descargado de https://doi.org/10.1109/RFID-TA.2017.8304521.
dc.relation[17] Diet, A., Grześkowiak, M., Le Bihan, Y., & Conessa, C. (2014). Improving LF reader antenna volume of detection for RFID token tag thanks to Identical Coaxial Loops (ICLs) and in/out of phase multiple-loops structures. In 2014 IEEE RFID Technology and Applications Conference, RFID-TA 2014. Descargado de https://doi.org/10.1109/RFID-TA.2014.6934229
dc.relation[18] Dlodlo, N., & Kalezhi, J. (2015). The internet of things in agriculture for sustainable rural development. In 2015 International Conference on Emerging Trends in Networks and Computer Communications (ETNCC). Descargado de https://doi.org/10.1109/ETNCC.2015.7184801
dc.relation[19] Elshayeb, S. A., Hasnan, K. Bin, & Yen, C. Y. (2009b). RFID technology and zigbee networking in improving supply chain traceability. In International Conference on Instrumentation, Communication, Information Technology, and Biomedical Engineering 2009, ICICI-BME 2009. Descargado de https://doi.org/10.1109/ICICI-BME.2009.5417245
dc.relation[20] Fawzi, N. A., Sadeq, A., & Jalal, A. (2017). Design and Implementation of Smart Irrigation System Using Wireless Sensor Network Based on Internet of Things. Descargado de https://doi.org/10.1109/GLOCOMW.2017.8269115
dc.relation[21] Fenu, G., & Garau, P. (2009). RFID- based supply chain traceability system. In IECON Proceedings (Industrial Electronics Conference). Descargado de https://doi.org/10.1109/IECON.2009.5415251
dc.relation22] Fu, B. (2012). Research on the agriculture intelligent system based on IOT. In Proceedings of 2012 International Conference on Image Analysis and Signal Processing, IASP 2012. Descargado de https://doi.org/10.1109/IASP.2012.6425066
dc.relation[23] Gharat, V., Colin, E., Baudoin, G., & Richard, D. (2017a). Impact of ferromagnetic obstacles on LF-RFID based indoor positioning systems. In 2017 IEEE International Conference on RFID Technology and Application, RFID-TA 2017. Descargado de https://doi.org/10.1109/RFID-TA.2017.8098876
dc.relation[24] GSMA Latin America. (2018). Country overview: Colombia La colaboración público-privada para promover la innovación y la creación de nuevas empresas (Inf. Téc.). GSMA. Descargado de https://www.gsmaintelligence.com/research/?file= 96dd21c24a04e35db09df5d8db700817&download
dc.relation[25] I. E. T. F. (IETF), “The Constrained Application Protocol (CoAP).” Descargado de: https://tools.ietf.org/html/rfc7252
dc.relation[26] Jedermann, R., Ruiz-Garcia, L., y Lang, W. (2009, 3). Spatial temperature proling by semi-passive RFID loggers for perishable food transportation. Computers and Electronics in Agriculture, 65(2), 145–154. Descargado de http://linkinghub.elsevier.com/ retrieve/pii/S0168169908001993 doi: 10.1016/j.compag.2008.08.006
dc.relation[27] John, V., y Liu, X. (2017). A Survey of Distributed Message Broker Queues. Descargado de https://arxiv.org/pdf/1704.00411.pdf
dc.relation[28] Jover, R. P., y Murynets, I. (2015, 6). Connection-less communication of IoT devices over LTE mobile networks. En 2015 12th annual ieee international conference on sensing, communication, and networking (secon) (pp. 247–255). IEEE. Descargado de http:// ieeexplore.ieee.org/document/7338323/ doi: 10.1109/SAHCN.2015.7338323
dc.relation[29] Karagiannis, V., Chatzimisios, P., Vazquez-Gallego, F., y Alonso-Zarate, J. (2015). A Survey on Application Layer Protocols for the Internet of Things. Transaction on IoT and Cloud Computing. Descargado de https://jesusalonsozarate.files.wordpress.com/2015/ 01/2015-transaction-on-iot-and-cloud-computing.pdf
dc.relation[30] Kim, T., Shao, C., & Lee, W. (2015b). Promptly pinpointing mobile RFID tags for large-scale internet-of-things. In 2015 International Conference on Big Data and Smart Computing, BIGCOMP 2015. Descargado de https://doi.org/10.1109/35021BIGCOMP.2015.7072820
dc.relation[31] Lauridsen, M., Nguyen, H., Vejlgaard, B., Kovacs, I. Z., Mogensen, P., & Sorensen, M. (2017). Coverage Comparison of GPRS, NB-IoT, LoRa, and SigFox in a 7800 km Area. In IEEE Vehicular Technology Conference. Descargado de https://doi.org/10.1109/VTCSpring.2017.8108182
dc.relation[32] Li, J., Guo, M., & Gao, L. (2015). Application and innovation strategy of agricultural Internet of Things. Nongye Gongcheng Xuebao/Transactions of the Chinese Society of Agricultural Engineering. Descargado de https://doi.org/10.11975/j.issn.10026819.2015.z2.031
dc.relation[33] Li, L., Xiaoguang, H., Ke, C., & Ketai, H. (2011). The applications of WiFi-based Wireless Sensor Network in Internet of Things and Smart Grid. In 2011 6th IEEE Conference on Industrial Electronics and Applications. Descargado de https://doi.org/10.1109/ICIEA.2011.5975693
dc.relation[34] Liang, W., Cao, J., Fan, Y., Zhu, K., & Dai, Q. (2015). Modeling and implementation of cattle/beef supply chain traceability using a distributed RFID-based framework in China. PLoS ONE. Descargado de https://doi.org/10.1371/journal.pone.0139558
dc.relation[35] Mai, N., Gretar Bogason, S., Arason, S., Víkingur Árnason, S., & Geir Matthíasson, T. (2010). Benefits of traceability in fish supply chains – case studies. British Food Journal. Descargado de https://doi.org/10.1108/00070701011074354
dc.relation[36] Maia, R. F., Netto, I., & Tran, A. L. H. (2017). Precision agriculture using remote monitoring systems in Brazil. In 2017 IEEE Global Humanitarian Technology Conference (GHTC). Descargado de https://doi.org/10.1109/GHTC.2017.8239290
dc.relation[37] Miaji, Y., Mohamed, M. A. A., & Bin Daud, N. (2013). RFID based improving supply chain traceability. In 2013 IEEE International Conference on RFID-Technologies and Applications, RFID-TA 2013. Descargado de https://doi.org/10.1109/RFIDTA.2013.6694543
dc.relation[38] Michel, S., Vargo, S. L., y Lusch, R. F. (2008). Reconguration of the conceptual landscape: A tribute to the service logic of Richard Normann. Journal of the Academy of Marketing Science, 36(1), 152–155. Descargado de http://citeseerx.ist.psu.edu/viewdoc/ download?doi=10.1.1.630.2346&rep=rep1&type=pdf doi: 10.1007/s11747-007-0067-8
dc.relation[39] Mobile Networks Update: Colombia - OpenSignal. (2018). Descargado de https:// opensignal.com/reports/2018/01/colombia/mobile-networks-update
dc.relation[40] Namiot, D., Ventspils, M. S. S., & Daradkeh, Y. I. (2017). On internet of things education. In Conference of Open Innovation Association, FRUCT. Descargado de https://doi.org/10.23919/FRUCT.2017.8071327
dc.relation[41] Narsimhalu, U., Potdar, V., y Kaur, A. (2015, 5). A Case Study to Explore Inuence of Traceability Factors on Australian Food Supply Chain Performance. Procedia - Social and Behavioral Sciences, 189, 17–32. Descargado de http://linkinghub.elsevier.com/ retrieve/pii/S1877042815019813 doi: 10.1016/j.sbspro.2015.03.188
dc.relation[42] Nechifor, S., Tˆarnauc˘a, B., Sasu, L., y Puiu, D. (2014). Autonomic monitoring approach based on cep and ml for logistic of sensitive goods. (INES), 2014 18th .... Descargado de http://ieeexplore.ieee.org/abstract/document/6909343/
dc.relation[43] OASIS, “MQTT Versión 3.1.1,” p. 81, 2014. Descargado de: http://docs.oasis-open. org/mqtt/mqtt/v3.1.1/os/mqtt-v3.1.1-os.html
dc.relation[44] Oceasoft, “Wireless solutions for temperature & humidity monitoring, and beyond.” Descargado de http://www.oceasoft.com/
dc.relation[45] Olubusayo Richard Adeyemo Supervised by Paul Lin, B. I. (2016). INTERNET OF THINGS TECHNOLOGY AN INSIGHT FOR BUSINESS INTEGRATION Executive Summary cont. Descargado de http://www.etcs.ipfw.edu/~lin/CPET581-InternetOfThings/
dc.relation[46] Patrick Rempel, Patrick Mader, and Tobias Kuschke. An Empirical Study on Project-Specific Traceability Strategies (2016). Descargado de https://ieeexplore-ieee-org.ezproxy.unal.edu.co/stamp/stamp.jsp?tp
dc.relation[47] Palazzi, V., Alimenti, F., Virili, M., Mariotti, C., Orecchini, G., Mezzanotte, P., & Roselli, L. (2016). A novel compact harmonic RFID sensor in paper substrate based on a variable attenuator and nested antennas. In IEEE MTT-S International Microwave Symposium Digest. Descargado de https://doi.org/10.1109/MWSYM.2016.7540409
dc.relation[48] Papapostolou, A., & Chaouchi, H. (2011). RFID-assisted indoor localization and the impact of interference on its performance. Journal of Network and Computer Applications. Descargado de https://doi.org/10.1016/j.jnca.2010.04.009
dc.relation[49] R. Hajovsky and M. Pies, “Use of IQRF technology for large monitoring systems,” IFAC-PapersOnLine, 2015. Descargado de: http://dx.doi.org/10.1016/j.ifacol.2015.07.082
dc.relation[50] Ramzan, M., y Shaheen, J. A. (2017). Comparison: 3G Wireless Networks with 4G Wireless Networks Technology Wise. International Journal of Advanced Science and Technology Descargado de: http://dx.doi.org/10.14257/ijast.2017.108.01 doi:10.14257/ijast.2017.108.01
dc.relation[51] Sheng, Q.Z “A survey on LPWA technology: LoRa and NB-IoT,” ICT Express, vol. 3, no. 1, pp. 14–21, 2017. Descargado de http://dx.doi.org/10.1016/j.icte.2017.03.004
dc.relation[52] RF Micron, “Hermes Smart Edge IoT Platform for Smart Passive Sensing.” Descargado de http://rfmicron.com/wp-content/uploads/2016/06/
dc.relation[53] Ronald K. Mitchell, Bradley R. Agle and Donna J. Wood, “Toward a Theory of Stakeholder Identification and Salience: Defining the Principle of Who and What Really Counts” Descargado de http://www.jstor.org/stable/259247
dc.relation[54] Theodoras, D. T. (2006, 12). Customer service differentiation in the Greek food market: the case of chilled and ambient products. International Journal of Logistics Research and Applications, 9(4), 383–393. Descargado de https://www.tandfonline.com/doi/full/ 10.1080/13675560600727762 doi: 10.1080/13675560600727762
dc.relation[55] van der Vorst, J. G., y Beulens, A. J. (2002, 8). Identifying sources of uncertainty to generate supply chain redesign strategies. International Journal of Physical Distribution & Logistics Management, 32(6), 409–430. Descargado de http://www.emeraldinsight.com/doi/ 10.1108/09600030210437951 doi: 10.1108/09600030210437951
dc.relation[56] Vargheese, R., y Dahir, H. (2014). An IoT/IoE enabled architecture framework for precision on shelf availability: Enhancing proactive shopper experience. En Proceedings - 2014 ieee international conference on big data, ieee big data 2014. doi: 10.1109/BigData.2014 .7004418
dc.relation[57] Vermesan, O., y Friess, P. (2014). Internet of Things – From Research and Innovation to Market Deployment River Publishers Series in Communication. Descargado de http://www.internet-of-things-research.eu/pdf/IERC Cluster Book 2014 Ch.3 SRIA WEB.pdf
dc.relation[58] Wakenshaw, S. Y. (2017). The Internet-of-Things: Review and research directions. International Journal of Research in Marketing, 34(1), 3–21. Descargado de http://dx.doi.org/10.1016/j.ijresmar.2016.11.003 doi: 10.1016/j.ijresmar.2016 .11.003
dc.relation[59] Welbourne, E., Battle, L., Cole, G., Gould, K., Rector, K., Raymer, S., ... Borriello, G. (2009, 5).Building the Internet of Things Using RFID: The RFID Ecosystem Experience. IEEE Internet Computing, 13(3), 48–55. Descargado de http://ieeexplore.ieee.org/ document/4907686/ doi: 10.1109/MIC.2009.52
dc.relation[60] Wood, W. G. (2007). A Practical Example of Applying Attribute-Driven Design (ADD), Version 2.0 Software Architecture Technology Initiative. Descargado de http://www.sei .cmu.edu/publications/pubweb.html
dc.relation[61] Xu, R., Yang, L., y Yang, S.-H. (2013). Architecture design of internet of things in logistics management for emergency response. En Proceedings - 2013 ieee international conference on green computing and communications and ieee internet of things and ieee cyber, physical and social computing, greencom-ithings-cpscom 2013. doi: 10.1109/GreenCom-iThings -CPSCom.2013.85
dc.relation[62] Y., Peng, W., y Chen, X. (2013). Architecture design of food supply chain traceability system based on internet of things. Journal of Applied Sciences, 13(14). doi: 10.3923/ jas.2013.2848.2852
dc.relation[63] Zhao, X., Fan, H., Zhu, H., Fu, Z., y Fu, H. (2015). The Design of the Internet of Things Solution for Food Supply Chain. education, management, information and medicine. Paris, France: Atlantis Press. Descargado de http://www.atlantis-press.com/php/paper-details.php?id=21432 doi: 10.2991/emim-15.2015.61
dc.relation[64] Z Chang, H.-H., y Chang, C.-Y. (2011, 10). Why is the food traceability system unsuccessful in Taiwan? Empirical evidence from a national survey of fruit and vegetable farmers. Food Policy, 36(5), 686–693. Descargado de http://linkinghub.elsevier .com/retrieve/pii/S030691921100087X doi: 10.1016/j.foodpol.2011.06.010
dc.relation[65] Cobertura red Claro Colombia. (2018). Mapas de Cobertura. Descargado de https://www.claro.com.co/personas/soporte/mapas-de-cobertura/
dc.rightsAtribución-NoComercial 4.0 Internacional
dc.rightsAcceso abierto
dc.rightshttp://creativecommons.org/licenses/by-nc/4.0/
dc.rightsinfo:eu-repo/semantics/openAccess
dc.rightsDerechos reservados - Universidad Nacional de Colombia
dc.titleDispositivo IoT para el control de identificación y movilidad pecuaria
dc.typeOtro


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