Real-Time Precise IOT Positioning System Based on Chirp Spread Spectrum Technology for Transportation

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Real-time precise IOT positioning system based on CSS uses the way of bus or Ethernet with wireless CSS network. With its unique CSS technology to measure the distance, the console can achieve real-time communication and position monitoring of personnel and goods. The system has better comprehensive performance than active RFID, Zigbee and WiFi positioning systems and other technology on the market currently. The functional independence of its communication system makes it easy for the practical application and extensions, and the system has wide application value.

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983-986

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January 2015

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© 2015 Trans Tech Publications Ltd. All Rights Reserved

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[1] Zhenchao Wang, Yongqing Cao, Ting An, Liping Zhang. Review on RF positioning technology based on CSS[J]. WIT Transactions on Engineering Sciences, v 86, pp.971-977, (2014).

Google Scholar

[2] N. Patwari et al, Locating the Nodes: Cooperative localization in wireless sensor networks[J]. IEEE Signal Processing Magazine, July (2005).

DOI: 10.1109/msp.2005.1458287

Google Scholar

[3] Hangoo Kang, Geon Woong Seo, Jihong Lee. Error Compensation for CSS-based Localization System[C]. World Congress on Engineering and Computer Science 2009, pp.696-701, (2009).

Google Scholar

[4] Konrad Lorincz and Matt Welsh, MoteTrack. A Robust, Decentralized Approach to RF-Based Location Tracking Springer Personal and Ubiquitous Computing[J]. Special Issue on Location and Context-Awareness, October (2006).

DOI: 10.1007/s00779-006-0095-2

Google Scholar

[5] Kwang Hyun Lee, Sung Ho Cho. CSS based localization system using Kalman filter for multi-cell environment[C]. 2008 International Conference on Advanced Technologies for Communications. ATC 2008, pp.293-6, (2008).

DOI: 10.1109/atc.2008.4760579

Google Scholar

[6] Adam Smith, Hari Balakrishnan, Michel Goraczko, Nissanka Priyantha. Tracking Moving Devices with the Cricket Location System 2nd USENIX/ACM MOBISYS Conference[C], Boston, MA, June (2004).

DOI: 10.1145/990064.990088

Google Scholar

[7] De Dominicis, C.M.; Pivato, P.; Ferrari, P.; Macii, D.; Sisinni, E.; Flammini, A. Timestamping of IEEE 802. 15. 4a CSS signals for wireless ranging and time synchronization[J]. IEEE Transactions on Instrumentation and Measurement, v 62, n 8, pp.2286-96, Aug. (2013).

DOI: 10.1109/tim.2013.2255988

Google Scholar

[8] T. S. Rappaport. Wireless Communication Upper Saddle River. New Jersey: Prentice Hall, (1996).

Google Scholar

[9] Jihoon Kang, Daeyoung Kim, Sungjin Ahn. Mosaic Localization for Wireless Sensor Networks[C]. IEEE Wireless Communications and Networking Conference, Hongkong, March (2007).

DOI: 10.1109/wcnc.2007.717

Google Scholar

[10] Chang, A.Y.; Dwen-Ren Tsai; Tsung-Chi Liu; Chun- Jung Chen; I-Horng Jeng. Performance evaluation of real-time indoor positioning with active-RFID and CSS-based nano lock system[C]. Proceedings of the 2009 Fifth International Joint Conference on INC, IMS and IDC, pp.1896-8, (2009).

DOI: 10.1109/ncm.2009.308

Google Scholar

[11] Dongliang Lu, Qingsheng Yu, Guangling Liang, Youlian Chen. The research and application of chirp spread spectrum location technology[J]. Wireless Internet Technology, pp.159-162, Aug (2012).

Google Scholar