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Experimental Study of the Positioning System in the Centralized Wi-Fi Network

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Advances in Artificial Systems for Medicine and Education V (AIMEE 2021)

Abstract

The task before the developers was to create a geolocation system using the Russian-produced equipment, so that the positioning error would not exceed 5 m. A pilot area for conducting the experiments was defined and a test Wi-Fi network was designed and built for the local positioning system implementation as the parts of the project. The signal strength level at the input of the receiving device was chosen as a physical parameter, which must be measured to calculate the coordinated of the target object. Then a combined positioning algorithm, based on the closest access point, spatial patterns differentiation and trilateration mechanisms, was developed. More than a thousand measurements were carried out in the test network, and during that process the main problems of the location system were identified and the ways to solve them were proposed.

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References

  1. Bensky, A.: Wireless Positioning Technologies and Applications, 2nd edn. Artech House, Boston, London (2016)

    Google Scholar 

  2. Yang, G.: Principle of satellite navigation orbit and positioning. Int. J. Educ. Manage. Eng. 3(2), 40–45 (2013)

    Google Scholar 

  3. Galileo. Open service. Service definition document [EB], (1.1) (2019). https://galileognss.eu/wp-content/uploads/2020/08/Galileo-OS-SDD_v1.1.pdf

  4. Cisco: Cisco connected mobile experiences data sheet [EB] (2015). (in Russian). https://www.cisco.com/assets/global/RU/about/brochures/datasheet-c78-734648.pdf

  5. Huawei technologies co. ltd. Huawei CloudCampus WLAN location technology white paper [EB] (2021). https://e.huawei.com/ru/material/networking/wlan/9dc74c8ef89f4bdab96382f6028ea78d

  6. Ubitel: RLTS systems[EB]. https://ubitel.ru/services/rtls-systems/

  7. Aruba: location services[EB]. https://www.arubanetworks.com/products/location-services/

  8. Li, G., Geng, E., Ye, Z., Xu, Y., Yu, J.L.P.: Indoor positioning algorithm based on the improved RSSI distance model. Sensors 18(9), 2820 (2018). https://doi.org/10.3390/s18092820

    Article  Google Scholar 

  9. Bullmann, M., Fetzer, T., Ebner, F., Ebner, M., Deinzer, F., Grzegorzek, M.: Comparison of 2.4 GHz WiFi FTM- and RSSI-based indoor positioning methods in realistic scenarios. Sensors 20(16), 4515 (2020). https://doi.org/10.3390/s20164515

    Article  Google Scholar 

  10. Kokoreva, E., Kostyukovich, A., Doshchinsky, I., Shurygina, K.: A combined location method with indoor signal strength measurement. In: Proceedings of the 1st International Conference Problems of Informatics, Electronics and Radio Engineering PIERE-2020 in Novosibirsk. IEEE, pp. 281–286 (2020)

    Google Scholar 

  11. Kokoreva, E., Kostyukovich, A., Doshchinsky, I.: Analysis of the error in determining the location inside the logistics warehouse complexes. In: Popovic, Z., Manakov, A., Breskich, V. (eds.) VIII International Scientific Siberian Transport Forum: TransSiberia 2019, Volume 2, pp. 1086–1094. Springer International Publishing, Cham (2020). https://doi.org/10.1007/978-3-030-37919-3_106

    Chapter  Google Scholar 

  12. Hosseinzadeh, S.: Multi wall (COST231) signal propagation [EB]. https://www.mathworks.com/MatLabcentral/fileexchange/61340-multi-wall-cost231-signal-propagation-models-python-code

  13. Recommendation ITU-R P.525–4: Calculation of free-space attenuation. Electronic Publication, Geneva (2019)

    Google Scholar 

  14. Recommendation ITU-R P.1238–10: Propagation data and prediction methods for the planning of indoor radio communication systems and the radio local area networks in the frequency range 300 MHz to 450 GHz[S]. Electronic Publication, Geneva (2019)

    Google Scholar 

  15. Kumari, P., Prabha, I.S.: Signal Propagation analysis at 28 GHz and 73 GHz millimeter wave bands for next generation networks. Int. J. Image Graph. Signal Process. 11, 19–27 (2019)

    Article  Google Scholar 

  16. Kostyukovich, A.E., Doshchinsky, I.V.: Selection of a radio waves propagation model when determining the location. In: Proceedings of the Modern Telecommunications Problems. Novosibirsk: SibSUTIS, pp. 459–466 (2020). (in Russian)

    Google Scholar 

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Kokoreva, E., Kostyukovich, A., Shurygina, K., Doshchinsky, I. (2022). Experimental Study of the Positioning System in the Centralized Wi-Fi Network. In: Hu, Z., Petoukhov, S., He, M. (eds) Advances in Artificial Systems for Medicine and Education V. AIMEE 2021. Lecture Notes on Data Engineering and Communications Technologies, vol 107 . Springer, Cham. https://doi.org/10.1007/978-3-030-92537-6_32

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