Efficient bandwidth-aware routing protocol in wireless sensor networks (EBARP)

被引:2
作者
Agarkhed J. [1 ]
Kadrolli V. [1 ]
Patil S.R. [2 ]
机构
[1] Department of CSE, P.D.A College of Engineering, Kalaburagi
[2] Department of ECE, P.D.A College of Engineering, Kalaburagi
关键词
Bandwidth; Multipath; QoS; Routing; WSN;
D O I
10.1007/s41870-021-00828-2
中图分类号
学科分类号
摘要
The parameters bandwidth (bw), energy (en) and delay (dl) of wireless sensor network (WSN) is recognized as the major source of quality of service (QoS). One of the important features is a bandwidth limitation that has a major influence on the configuration of the routing algorithm. Paths in traditional routing protocols are chosen to provide transmission performance for the current flow while focusing on bandwidth efficiency to a limited extent. This approach results in significant amounts of bandwidth fragments that cannot be practiced completely, as a result, ignoring bandwidth results in infeasible solutions. In this paper, the novel routing algorithm efficient bandwidth aware routing protocol (EBARP) in WSN is proposed, which includes initially cluster formation and cluster head (CH) selection based on bandwidth (bw), residual energy(re) and delay(d) between the node and CH via fuzzy logic, to improve sensor node energy. It also takes into account multilevel energy, bandwidth, and delay for data transmission from source to destination using the Lagrange relaxation method. © 2021, Bharati Vidyapeeth's Institute of Computer Applications and Management.
引用
收藏
页码:1967 / 1979
页数:12
相关论文
共 29 条
[1]  
Marina M.K., Das S.R., On-demand multi-path distance vector routing in ad hoc networks, In: Ninth International Conference on Network Protocols. IEEE, pp. 14-23, (2001)
[2]  
Layuan L., Chunlin L., Peiyan Y., Performance evaluation and simulations of routing protocols in ad hoc networks, Comput Commun, 30, 8, pp. 1890-1898, (2007)
[3]  
Wang X., Wang X., Liu L., Et al., DutyCon: a dynamic duty-cycle control approach to end-to-end delay guarantees in wireless sensor networks, ACM Trans Sens Netw, 9, 4, pp. 1-33, (2013)
[4]  
Zhong Z., Wang J., Nelakuditi S., Lu G.-H., On selection of candidates for opportunistic any path forwarding, ACM SIGMOBILE Mob Comput Commun Rev, 10, 4, pp. 1-2, (2006)
[5]  
Dubois-Ferri'ere H., Grossglauser M., Vetterli M., Valuable detours: least-cost any path routing, IEEE/ACM Trans Netw, 19, 2, pp. 333-346, (2011)
[6]  
Naghshvar M., Javidi T., Opportunistic routing with congestion diversity in wireless multi-hop networks, In: Proc. INFOCOM, pp. 1-5, (2010)
[7]  
Plasma: A new routing paradigm for wireless multi hop networks, In: Proc. INFOCOM 2012, pp. 2706-2710, (2012)
[8]  
Wu W., Zhang Z., Sha X., He C., Auto rate MAC protocol based on congestion detection for wireless ad hoc networks, Inf Technol J, 8, 8, pp. 1205-1212, (2009)
[9]  
Mehmood T., Libman L., Dehkordi H.R., Jha S.K., Optimal opportunistic routing and network coding for bidirectional wireless flows, Comput Netw, 57, 18, pp. 4030-4046, (2013)
[10]  
Mao X., Tang S., Xu X., Li X.-Y., Ma H., Energy-efficient opportunistic routing in wireless sensor networks, IEEE Trans Parallel Distrib Syst, 22, 11, pp. 1934-1942, (2011)