A Sustainable Solution to Support Data Security in High Bandwidth Healthcare Remote Locations by Using TCP CUBIC Mechanism

被引:9
作者
Ahmad, Mudassar [1 ]
Jabbar, Sohail [2 ]
Ahmad, Awais [3 ]
Piccialli, Francesco [4 ]
Jeon, Gwanggil [5 ]
机构
[1] Natl Text Univ, Dept Comp Sci, Faisalabad 37610, Punjab, Pakistan
[2] Manchester Metropolitan Univ, Dept Comp & Math, CfACS IoT Lab, Manchester, Lancs, England
[3] Univ Milano Statale, Dipartimento Informat DI, Via Celoria 18, I-20133 Milan, Italy
[4] Univ Naples Federico II, I-80138 Naples, Italy
[5] Incheon Natl Univ, Dept Embedded Syst Engn, Incheon 402749, South Korea
来源
IEEE TRANSACTIONS ON SUSTAINABLE COMPUTING | 2020年 / 5卷 / 02期
基金
新加坡国家研究基金会;
关键词
Security; congestion control; protocol fairness; goodput; convergence time; TCP CUBIC; healthcare centers; CONGESTION CONTROL; HIGH-SPEED; FRIENDLINESS; PERFORMANCE; MODEL;
D O I
10.1109/TSUSC.2018.2841998
中图分类号
TP3 [计算技术、计算机技术];
学科分类号
0812 ;
摘要
Long distance high bandwidth networks are spanning several continents and many remote Healthcare centers are centralizing their data centers for economic reasons. For the best performance of their data centers, TCP (Transmission Control Protocol) performance and data security are the main critical issues in these network scenarios. TCP performance is directly related to its congestion control mechanism which is responsible for detecting and reacting to the overload traffic on the network. Data security is related to the security mechanism being used by sender and receiver nodes during communication. Linux users, which have rapidly increased in the last five years and most of the Healthcare data centers are being deployed on the Linux operating system, focus the researchers to work on Linux to enhance its performance and security accordingly. The Linux operating system uses TCP CUBIC as a congestion control mechanism with TCP during communication. TCP CUBIC became the default congestion control mechanism of Linux in 2006 after kernel 2.6.18. TCP CUBIC is fundamentally a loss based TCP congestion control mechanism and at each packet loss detection, it reduces its Congestion Window (cwnd) size 20 percent instead of 50 percent as in trademark congestion control mechanism Standard TCP. The aim of this paper is to design a new security mechanism that will work with TCP CUBIC to achieve the maximum possible performance and security over the network link. In this paper, Network Simulator 2 (NS-2) is used to compare the performance of TCP CUBIC with state-of-the-art mechanisms in long and short Round Trip Time (RTT), high bandwidth network scenarios. Results show that when new security mechanism is used with TCP CUBIC, overall better performance in the form of protocol fairness, TCP friendliness, goodput, and convergence time is achieved over the network link.
引用
收藏
页码:249 / 259
页数:11
相关论文
共 42 条
[11]  
Hamilton Institute TCP benchmark suite, 2011, HAM LIN BAS CONG CON
[12]  
Holohan Edmond, 2010, Proceedings 2010 Ninth IEEE International Symposium on Network Computing and Applications (NCA), P92, DOI 10.1109/NCA.2010.19
[13]   Tuning the Aggressive TCP Behavior for Highly Concurrent HTTP Connections in Data Center [J].
Huang, Jiawei ;
Wang, Jianxin ;
Zhang, Tao ;
Chen, Jianer ;
Pan, Yi .
PROCEEDINGS 2016 IEEE 36TH INTERNATIONAL CONFERENCE ON DISTRIBUTED COMPUTING SYSTEMS ICDCS 2016, 2016, :98-107
[14]  
Jain R., 1991, ART COMPUTER SYSTEMS, V182
[15]   Using rough set theory to achieve reliable chemical solvents selection: A multi-attribute decision case study [J].
Jiang, Chaozhe ;
Hu, Pei ;
Liu, Dun ;
Xu, Fang ;
Yuan, Jixue .
PROCEEDINGS OF THE INTERNATIONAL CONFERENCE ON INTELLIGENT SYSTEMS AND KNOWLEDGE ENGINEERING (ISKE 2007), 2007,
[16]  
Ko LC, 2008, 2008 IEEE INTERNATIONAL SYMPOSIUM ON WIRELESS COMMUNICATION SYSTEMS (ISWCS 2008), P191
[17]   A Comparison of TCP Congestion Control Algorithms in 10G Networks [J].
Lukaseder, Thomas ;
Bradatsch, Leonard ;
Erb, Benjamin ;
van der Heijden, Rens W. ;
Kargl, Frank .
2016 IEEE 41ST CONFERENCE ON LOCAL COMPUTER NETWORKS (LCN), 2016, :706-714
[18]   TCP Libra: Derivation, analysis, and comparison with other RTT-fair TCPs [J].
Marfia, Gustavo ;
Palazzi, Claudio E. ;
Pau, Giovanni ;
Gerla, Mario ;
Roccetti, Marco .
COMPUTER NETWORKS, 2010, 54 (14) :2327-2344
[19]  
Masaki J, 2010, INT CONF ADV COMMUN, P174
[20]  
Nguyen T. A. N., 2016, P 11 INT C FUTURE IN, V15-17, P21, DOI [10.1145/2935663.2935669, DOI 10.1145/2935663.2935669]