LiMCA: an optimal clustering algorithm for lifetime maximization of internet of things

被引:25
作者
Halder, Subir [1 ]
Ghosal, Amrita [1 ]
Conti, Mauro [1 ]
机构
[1] Univ Padua, Dept Math, Padua, Italy
关键词
Internet of things; Energy balance; Network lifetime; Static clustering; Wireless sensor network; WIRELESS SENSOR NETWORKS; ENERGY-EFFICIENT; TRANSMISSION; OPTIMIZATION; DEPLOYMENT; PROTOCOL; SCHEME; HYBRID;
D O I
10.1007/s11276-018-1741-0
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
The idea of Internet of Things (IoT) is that many of the live objects (e.g., appliances) in the network are accessible, sensed, and interconnected. However, energy-constrained IoT nodes limit the performance of the IoT network. Hence, preserving energy in IoT network requires utmost attention. Unequal clustering is commonly considered as one of the efficient energy saving technique. Here, the traffic load is evenly distributed among the nodes using variable size clusters across the network. However, none of the existing solutions considered (1) realistic factors like fading model, routing protocol etc., or (2) optimization of cluster radius while devising clustering structure. The contribution of this paper is two-fold. First, we analyze the maximization of network lifetime by balancing the energy consumption among Cluster Heads (CHs). We found that cluster radius of each level has significant role in maximization of network lifetime. Second, to meet the requirement of maximization of network lifetime, this paper proposes a novel Lifetime Maximizing optimal Clustering Algorithm (LiMCA) for battery-powered IoT devices. Particularly, LiMCA includes a novel stochastic deployment scheme for Member Nodes (MNs) and CHs and a training protocol to train CHs and MNs about their coarse-grain location. Extensive simulation study shows that our algorithm improves the network lifetime by more than 30%, compared to other existing approaches.
引用
收藏
页码:4459 / 4477
页数:19
相关论文
共 40 条
[1]   Clustering in sensor networks: A literature survey [J].
Afsar, M. Mehdi ;
Tayarani-N, Mohammad-H. .
JOURNAL OF NETWORK AND COMPUTER APPLICATIONS, 2014, 46 :198-226
[2]   Internet of Things: A Survey on Enabling Technologies, Protocols, and Applications [J].
Al-Fuqaha, Ala ;
Guizani, Mohsen ;
Mohammadi, Mehdi ;
Aledhari, Mohammed ;
Ayyash, Moussa .
IEEE COMMUNICATIONS SURVEYS AND TUTORIALS, 2015, 17 (04) :2347-2376
[3]   Energy conservation in wireless sensor networks: A survey [J].
Anastasi, Giuseppe ;
Conti, Marco ;
Di Francesco, Mario ;
Passarella, Andrea .
AD HOC NETWORKS, 2009, 7 (03) :537-568
[4]   Understanding the Internet of Things: definition, potentials, and societal role of a fast evolving paradigm [J].
Atzori, Luigi ;
Iera, Antonio ;
Morabito, Giacomo .
AD HOC NETWORKS, 2017, 56 :122-140
[5]   A Distributed Fault-Tolerant Topology Control Algorithm for Heterogeneous Wireless Sensor Networks [J].
Bagci, Hakki ;
Korpeoglu, Ibrahim ;
Yazici, Adnan .
IEEE TRANSACTIONS ON PARALLEL AND DISTRIBUTED SYSTEMS, 2015, 26 (04) :914-923
[6]   DUCF: Distributed load balancing Unequal Clustering in wireless sensor networks using Fuzzy approach [J].
Baranidharan, B. ;
Santhi, B. .
APPLIED SOFT COMPUTING, 2016, 40 :495-506
[7]   Efficient Location Training Protocols for Heterogeneous Sensor and Actor Networks [J].
Barsi, Ferruccio ;
Bertossi, Alan A. ;
Lavault, Christian ;
Navarra, Alfredo ;
Olariu, Stephan ;
Pinotti, M. Cristina ;
Ravelomanana, Vlady .
IEEE TRANSACTIONS ON MOBILE COMPUTING, 2011, 10 (03) :377-391
[8]   Sensor Placement Algorithms for Fusion-Based Surveillance Networks [J].
Chang, Xiangmao ;
Tan, Rui ;
Xing, Guoliang ;
Yuan, Zhaohui ;
Lu, Chenyang ;
Chen, Yixin ;
Yang, Yixian .
IEEE TRANSACTIONS ON PARALLEL AND DISTRIBUTED SYSTEMS, 2011, 22 (08) :1407-1414
[9]   A link- and hop-constrained clustering for multi-hop wireless sensor networks [J].
Chen, Da-Ren .
COMPUTER COMMUNICATIONS, 2015, 72 :78-92
[10]  
Conti M, 2015, SECURE WIRELESS SENS