Identyfikatory
Warianty tytułu
Języki publikacji
Abstrakty
This paper presents the recent advances in development and utilization of remote laboratories, which can be controlled without physical access to the equipment. Currently observed rapid in-crease of number of such systems is mostly owed to high-speed Internet expansion, as well as the continuous tendency to ensure the open access to modern knowledge. In this paper, various arranges of equipment in such testing rooms are ad-dressed in areas such as electrical engineering, electronics, mechanical engineering. A comprehensive survey of currently most popular remote laboratories worldwide is provided. The paper is concluded by the dis-cussion that presents the authors view point on how remote laboratories may evolve in the future.
Słowa kluczowe
Czasopismo
Rocznik
Tom
Strony
85--96
Opis fizyczny
Bibliogr. 26 poz., fig., tab.
Twórcy
autor
- Electrical Engineering and Computer Science Faculty, Lublin University of Technology, Nadbystrzycka 38A, Lublin, Poland
autor
- Electrical Engineering and Computer Science Faculty, Lublin University of Technology, Nadbystrzycka 38A, Lublin, Poland
Bibliografia
- 1. Ayodele, K. P., Inyang, I. A., & Kehinde, L. O. (2015). An iLab for Teaching Advanced Logic Concepts With Hardware Descriptive Languages. IEEE Transactions on Education, 58(4), 262–268. doi:10.1109/te.2015.2395996
- 2. Barrios, A., Panche, S., Duque, M., Grisales, V. H., Prieto, F., Villa, J. L., Chevrel, P., Canu, M. (2013). A multi-user remote academic laboratory system. Computers & Education, 62, 111-122. doi:10.1016/j.compedu.2012.10.011
- 3. Beghi, A., Cervato, A., & Rampazzo, M. (2015). A Remote Refrigeration Laboratory for Control Engineering Education. IFAC PapersOnLine, 48(29), 25–30. doi:10.1016/j.ifacol.2015.11.208
- 4. Cazacu, D. (2014). A remote laboratory for frequency-response analysis of vibrating mechanical systems. 7th International Conference Interdisciplinarity in Engineering (Inter-Eng 2013), 12, 675–680. doi:10.1016/j.protcy.2013.12.548
- 5. Chen, X. M., & Gao, H. Y. (2012). A Remote PLC Laboratory Design and Realization. International Conference on Advances in Computational Modeling and Simulation, 31, 1168–1172. doi:10.1016/j.proeng.2012.01.1158
- 6. Del Canto, C. J., Prada, M. A., Fuertes, J. J., Alonso, S., & Dominguez, M. (2015). Remote Laboratory for Cybersecurity of Industrial Control Systems. IFAC PapersOnLine, 48(29), 13–18. doi:10.1016/j.ifacol.2015.11.206
- 7. DeLong, K., Harward, V. J., Bailey, P., Hardison, J., Kohse, G., & Ostrocsky, Y. (2010). Three online neutron beam experiments based on the iLab Shared Architecture. IEEE EDUCON 2010 Conference, 7(1), 145–150. doi:10.1109/EDUCON.2010.5492587
- 8. Estevez, C., & Wu, J. (2015). Recent advances in Green Internet of Things. 2015 7th IEEE Latin-American Conference on Communications (LATINCOM), 1–5. doi:10.1109/LATINCOM.2015.7430133
- 9. Exel, M., Gentil, S., Michau, F., & Rey, D. (2000). Simulation workshop and remote laboratory: Two web-based training approaches for control. Proceedings of the 2000 in American Control Conference, 5, 3468–3472. doi:10.1109/ACC.2000.879213
- 10. Gadzhanov, S. D., Nafalski, A., & Nedic, Z. (2014). LabVIEW based remote laboratory for advanced motion control. 2014 11th International Conference on Remote Engineering and Virtual Instrumentation (REV), 129–136. doi:10.1109/REV.2014.6784237
- 11. German-Sallo, Z., Grif, H. S., & Gligor, A. (2015). Technical evaluation of remote laboratories in an engineering educational network. 8th International Conference Interdisciplinarity in Engineering, Inter-Eng 2014, 19, 1136–1141. doi:10.1016/j.protcy.2015.02.162
- 12. Guimaraes, E. G., Cardozo, E., Moraes, D. H., & Coelho, P. R. (2011). Design and Implementation Issues for Modern Remote Laboratories. IEEE Transactions on Learning Technologies, 4(2), 149–161. doi:10.1109/tlt.2010.22
- 13. Hardison, J. L., DeLong, K., Bailey, P. H., & Harward, V. J. (2008). Deploying interactive remote labs using the iLab Shared Architecture. 2008 38th Annual Frontiers in Education Conference, S2A-1-S2A-6. doi:10.1109/FIE.2008.4720536
- 14. Henke, K., Ostendorff, S., Wuttke, H., & Vogel, S. (2012). A grid concept for reliable, flexible and robust remote engineering laboratories. 9th International Conference on Remote Engineering and Virtual Instrumentation, 8, 42–49.
- 15. Hercog, D., Gergic, B., Uran, S., & Jezernik, K. (2007). A DSP-based remote control laboratory. IEEE Transactions on Industrial Electronics, 54(6), 3057–3068. doi:10.1109/tie.2007.907009
- 16. Nafalski, A., (2012). Remote Laboratories Developments in Electrical Engineering. Lublin: Politechnika Lubelska.
- 17. Nedic, Z., Machotka, J., & Nafalski, A. (2003). Remote laboratories versus virtual and real laboratories. 33rd Annual Frontiers in Education, 2003. FIE 2003, 1, T3E-1-T3E-6. doi:10.1109/FIE.2003.1263343
- 18. Orduna, P., Garcia-Zubia, J., Irurzun, J., Lopez-de-Ipina, D., & Rodriguez-Gil, L. (2011). Enabling mobile access to Remote Laboratories. 2011 IEEE Global Engineering Education Conference (EDUCON), 312–318. doi:10.1109/EDUCON.2011.5773154
- 19. Orduña, P., Rodriguez-Gil, L., Angulo, I., Dziabenko, O., López-de-Ipiña, D., & García-Zubia, J. (2012). Exploring students collaboration in remote laboratory infrastructures. 2012 9th International Conference on Remote Engineering and Virtual Instrumentation (REV), 1–5. doi:10.1109/REV.2012.6293159
- 20. Orduna, P., Zutin, D., Govaerts, S., Zorrozua, I. L., Bailey, P.H., Sancristobal, E., Salzmann, C., Rodriguez-Gil, L., DeLong, K., Gillet, D., Castro, M., Lopez-de-Ipina, D., & Garcia-Zubia, J. (2015). An Extensible Architecture for the Integration of Remote and Virtual Laboratories in Public Learning Tools. IEEE Revista Iberoamericana De Tecnologias Del Aprendizaje-Ieee Rita, 10(4), 223–233. doi:10.1109/rita.2015.2486338
- 21. Richter, G. M., Agostini, F., Barker, A., Costomiris, D., & Qi, A. M. (2016). Assessing on-farm productivity of Miscanthus crops by combining soil mapping, yield modelling and remote sensing. Biomass & Bioenergy, 85, 252–261. doi:10.1016/j.biombioe.2015.12.024
- 22. Santana, I., Ferre, M., Izaguirre, E., Aracil, R., & Hernandez, L. (2013). Remote Laboratories for Education and Research Purposes in Automatic Control Systems. IEEE Transactions on Industrial Informatics, 9(1), 547–556. doi:10.1109/tii.2011.2182518
- 23. Sivakumar, S. C., Robertson, W., Artimy, M., & Aslam, N. (2005). A web-based remote interactive laboratory for Internetworking education. IEEE Transactions on Education, 48(4), 586–598. doi:10.1109/te.2005.858393
- 24. Tirado, R., Herrera, R. S., Marquez, M. A., Mejias, A., & Andujar, J. M. (2015). Comparing Remote Laboratories from the Student Perspective. IFAC PapersOnLine, 48(29), 176–181. doi:10.1016/j.ifacol.2015.11.233
- 25. Wang, D., Zhang, C., Huang, Y., & Li, W. (2010). Visualizing Air Pollutants through Image Processing. 2010 2nd International Conference on Information Engineering and Computer Science, 1–4. doi:10.1109/ICIECS.2010.5678349
- 26. Wong, C. J., MatJafri, M. Z., Abdullah, K., & Lim, H. S. (2009). Determination of aerosol concentration using an internet protocol camera. 2009 IEEE Aerospace conference, 1–7. doi:10.1109/AERO.2009.4839344
Uwagi
Opracowanie ze środków MNiSW w ramach umowy 812/P-DUN/2016 na działalność upowszechniającą naukę (zadania 2017)
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-f4a05a38-b715-4517-898b-a93d4085bf8a
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