Design and Implementation of an Edge Computing Testbed to Simplify Experimental Environment Setup

被引:0
作者
Yamanaka, Hiroaki [1 ]
Teranishi, Yuuichi [1 ]
Kawai, Eiji [1 ]
Nagano, Hidehisa [1 ]
Harai, Hiroaki [1 ]
机构
[1] Natl Inst Informat & Commun Technol, Koganei, Tokyo 1848795, Japan
关键词
edge computing; testbed; Kubernetes; low response time;
D O I
10.1587/transinf.2022EDK0003
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Running IoT applications on edge computing infrastructures has the benefits of low response times and efficient bandwidth usage. System verification on a testbed is required to deploy IoT applications in production environments. In a testbed, Docker containers are preferable for a smooth transition of tested application programs to production environments. In addition, the round-trip times (RTT) of Docker containers to clients must be ensured, according to the target application's response time requirements. However, in existing testbed systems, the RTTs between Docker containers and clients are not ensured. Thus, we must undergo a large amount of configuration data including RTTs between all pairs of wireless base station nodes and servers to set up a testbed environment. In this paper, we present an edge computing testbed system with simple application programming interfaces (API) for testbed users that ensures RTTs between Docker containers and clients. The proposed system automatically determines which servers to place Docker containers on according to virtual regions and the RTTs specified by the testbed users through APIs. The virtual regions provide reduced size information about the RTTs in a network. In the proposed system, the configuration data size is reduced to one divided by the number of the servers and the command arguments length is reduced to approximately one-third or less, whereas the increased system running time is 4.3 s.
引用
收藏
页码:1516 / 1528
页数:13
相关论文
共 30 条
[11]   Sharpening Kubernetes for the Edge [J].
Haja, David ;
Szalay, Mark ;
Sonkoly, Balazs ;
Pongracz, Gergely ;
Toka, Laszlo .
PROCEEDINGS OF THE 2019 ACM SIGCOMM CONFERENCE POSTERS AND DEMOS (SIGCOMM '19), 2019, :136-137
[12]  
iana, SERVICE NAME TRANSPO
[13]  
Krishnaswamy D, 2015, 2015 IEEE CONFERENCE ON NETWORK FUNCTION VIRTUALIZATION AND SOFTWARE DEFINED NETWORK (NFV-SDN), P205, DOI 10.1109/NFV-SDN.2015.7387428
[14]  
Kubernetes, Kubernetes
[15]  
lfedge, Akraino-LF edge
[16]  
man7, SYSSTAT 5 LINUX MANU
[17]  
man7, tc(8)-Linux manual page
[18]   Cross-site edge framework for location-awareness distributed edge-computing applications [J].
Nakata, Yu ;
Takai, Mayuko ;
Konoura, Hiroaki ;
Kinoshita, Masafumi .
2020 8TH IEEE INTERNATIONAL CONFERENCE ON MOBILE CLOUD COMPUTING, SERVICES, AND ENGINEERING (MOBILE CLOUD 2020), 2020, :63-68
[19]  
openairinterface, OpenAirInterface
[20]  
openvswitch, OPEN SWITCH