Planning and Design of Transshipment Center Platform Based on Internet of Things

With the development of the logistics industry, competition between logistics companies is becoming increasingly fierce. In addition to establishing a mature and perfect logistics system, the pursuit of customer satisfaction is also one of the goals reached by modern logistics companies. The purpose of this article is to plan and design the IoT-based transfer center platform. Aiming at the disadvantages of the existing logistics transfer mode, this article analyzes the advantages of applying the Internet of Things-related technologies to the logistics industry, and based on the theoretical basis of Internet of Things technology, RFID technology and two-dimensional code technology, combined with server development language (JAVA) and Front-end development language (HTML + CSS), two development languages, designed and implemented the IoT-based transfer center platform. The performance test of this platform is conducted in this paper. The test results show that the platform can provide convenient management services for warehouse management personnel, and improve the informationization level and core competitiveness of logistics transshipment. This paper analyzes the time consuming of 10, 50, 100, 500, 1000, 2000, 4000 pieces of data at the same time, and obtains that when the amount of data reaches 4000 pieces, the running time is 10.586 s. It can be seen that the performance of the system in this paper is high, which can meet the needs of logistics transfer.

[1]  Rong-Shue Hsiao,et al.  A passive RFID-based location system for personnel and asset monitoring. , 2018, Technology and health care : official journal of the European Society for Engineering and Medicine.

[2]  Niklas Sandler,et al.  QR encoded smart oral dosage forms by inkjet printing. , 2018, International journal of pharmaceutics.

[3]  Jeffrey M. Perkel,et al.  The Internet of Things comes to the lab , 2017, Nature.

[4]  Siobhán Clarke,et al.  Middleware for Internet of Things: A Survey , 2016, IEEE Internet of Things Journal.

[5]  John C. Batchelor,et al.  Effect of skin dielectric properties on the read range of epidermal ultra-high frequency radio-frequency identification tags , 2017, Healthcare technology letters.

[6]  Ying Liu,et al.  A Framework for Smart Production-Logistics Systems Based on CPS and Industrial IoT , 2018, IEEE Transactions on Industrial Informatics.

[7]  Muhammad Azam Zia,et al.  HB-protocol based advance security system for PKES using multiple antennas , 2018, China Communications.

[8]  Yier Jin,et al.  Privacy and Security in Internet of Things and Wearable Devices , 2015, IEEE Transactions on Multi-Scale Computing Systems.

[9]  Edwin Cartlidge The Internet of Things: From Hype to Reality , 2017 .

[10]  Gerhard P. Hancke,et al.  A Survey on 5G Networks for the Internet of Things: Communication Technologies and Challenges , 2018, IEEE Access.