Sub-GHz LPWAN Network Coexistence, Management and Virtualization: An Overview and Open Research Challenges

被引:41
作者
De Poorter, Eli [1 ]
Hoebeke, Jeroen [1 ]
Strobbe, Matthias [1 ]
Moerman, Ingrid [1 ]
Latre, Steven [2 ]
Weyn, Maarten [2 ]
Lannoo, Bart [2 ]
Famaey, Jeroen [2 ]
机构
[1] Univ Ghent, IDLab, IMEC, Ghent, Belgium
[2] Univ Antwerp, IDLab, IMEC, Antwerp, Belgium
基金
欧盟地平线“2020”;
关键词
Sub-GHz networks; LPWAN; LoRa; SigFox; IEEE; 802.11ah; DASH7; Coexistence; Network management; Virtualization; Scalability; QoS; Energy efficiency; WIRELESS NETWORKS; INTERNET; ARCHITECTURES; ENHANCEMENT; MAC;
D O I
10.1007/s11277-017-4419-5
中图分类号
TN [电子技术、通信技术];
学科分类号
0809 ;
摘要
The IoT domain is characterized by many applications that require low-bandwidth communications over a long range, at a low cost and at low power. Low power wide area networks (LPWANs) fulfill these requirements by using sub-GHz radio frequencies (typically 433 or 868 MHz) with typical transmission ranges in the order of 1 up to 50 km. As a result, a single base station can cover large areas and can support high numbers of connected devices (> 1000 per base station). Notorious initiatives in this domain are LoRa, Sigfox and the upcoming IEEE 802.11ah (or "HaLow") standard. Although these new technologies have the potential to significantly impact many IoT deployments, the current market is very fragmented and many challenges exists related to deployment, scalability, management and coexistence aspects, making adoption of these technologies difficult for many companies. To remedy this, this paper proposes a conceptual framework to improve the performance of LPWAN networks through in-network optimization, cross-technology coexistence and cooperation and virtualization of management functions. In addition, the paper gives an overview of state of the art solutions and identifies open challenges for each of these aspects.
引用
收藏
页码:187 / 213
页数:27
相关论文
共 59 条
  • [21] ViFi: Virtualizing WLAN using Commodity Hardware
    Guo, Katherine
    Sanadhya, Shruti
    Woo, Thomas
    [J]. MOBILE COMPUTING AND COMMUNICATIONS REVIEW, 2014, 18 (03) : 41 - 48
  • [22] RETRACTED: Standardization of wireless coexistence in industrial automation (Retracted Article)
    Hayashi, Hisanori
    [J]. 2015 54TH ANNUAL CONFERENCE OF THE SOCIETY OF INSTRUMENT AND CONTROL ENGINEERS OF JAPAN (SICE), 2015, : 968 - 973
  • [23] Hermans F., 2012, ACM SIGBED REV SPEC
  • [24] Observing CoAP groups efficiently
    Ishaq, Isam
    Hoebeke, Jeroen
    Moerman, Ingrid
    Demeester, Piet
    [J]. AD HOC NETWORKS, 2016, 37 : 368 - 388
  • [25] Flexible Unicast-Based Group Communication for CoAP-Enabled Devices
    Ishaq, Isam
    Hoebeke, Jeroen
    Van den Abeele, Floris
    Rossey, Jen
    Moerman, Ingrid
    Demeester, Piet
    [J]. SENSORS, 2014, 14 (06): : 9833 - 9877
  • [26] CHAMELEON: A Framework for Coexistence of Wireless Technologies in an Unlicensed Band
    Javed, Qasim
    Prakash, Ravi
    [J]. WIRELESS PERSONAL COMMUNICATIONS, 2014, 77 (01) : 777 - 808
  • [27] Jun Huang, 2010, 2010 18th IEEE International Conference on Network Protocols (ICNP 2010), P305, DOI 10.1109/ICNP.2010.5762779
  • [28] Data-Driven Design of Intelligent Wireless Networks: An Overview and Tutorial
    Kulin, Merima
    Fortuna, Carolina
    De Poorter, Eli
    Deschrijver, Dirk
    Moerman, Ingrid
    [J]. SENSORS, 2016, 16 (06)
  • [29] Lakshminarayanan K., 2009, P 5 ACM INT C EM NET
  • [30] Performance Improvement of Sub 1 GHz WLANs for Future IoT Environments
    Lei, Xiaoying
    Rhee, Seung Hyong
    [J]. WIRELESS PERSONAL COMMUNICATIONS, 2017, 93 (04) : 933 - 947