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Published in: Wireless Personal Communications 2/2022

01-12-2021

Energy Attentive and Pre-fault Recognize Mechanism for Distributed Wireless Sensor Network Using Fuzzy Logic Approach

Authors: Roshani Talmale, M. Nirupama Bhat

Published in: Wireless Personal Communications | Issue 2/2022

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Abstract

Wireless sensor networks (WSNs) have been transforming over recent years with development in the design of smart real-time applications. However, it presents numerous challenges in terms of fault-tolerant communication, low latency, scalability, and transmission efficiency. It is extremely difficult for WSNs to detect runtime faults since they're unaware of the internal processes at work within the sensor node. As a result, valuable sensed information cannot reach its destination and performance starts degrading. Towards this objective, the proposed mechanism applies a novel pre-fault detection mechanism based on a fuzzy rule-based method for multilevel transmission in distributed sensor networks. The proposed mechanism uses a fuzzy rule set to make routing decisions. A fuzzy decision rule set is proposed to perform routing based on the fuzzy fault count status of a node. The proposed mechanism assists in identifying the fault in advance and determining the optimal routing path to save energy and improve network performance. In accordance with the node fault status, the data transmission rate is finalized to prevent further energy consumption. The results demonstrated that the proposed mechanism performed well on judgment evaluation metrics like the energy dissipation ratio, throughput, packet loss rate and communication delay.

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Literature
1.
go back to reference Akyildiz, I. F., & Kasimoglu, I. H. (2004). Wireless sensor and actor networks: Research challenges. Ad Hoc Networks, 2(4), 351–367.CrossRef Akyildiz, I. F., & Kasimoglu, I. H. (2004). Wireless sensor and actor networks: Research challenges. Ad Hoc Networks, 2(4), 351–367.CrossRef
2.
go back to reference Akyildiz, I. F., Su, W., Sankarasubramaniam, Y., et al. (2002). Wireless sensor networks: A survey. Computer Networks, 38, 393–422.CrossRef Akyildiz, I. F., Su, W., Sankarasubramaniam, Y., et al. (2002). Wireless sensor networks: A survey. Computer Networks, 38, 393–422.CrossRef
3.
go back to reference Guleria, K., & Verma, A. K. (2019). Comprehensive review for energy efficient hierarchical routing protocols on wireless sensor networks. Wireless Network, 25, 1159–1183.CrossRef Guleria, K., & Verma, A. K. (2019). Comprehensive review for energy efficient hierarchical routing protocols on wireless sensor networks. Wireless Network, 25, 1159–1183.CrossRef
4.
go back to reference Gao, Z. W., & Cecati, C. (2015). “A survey of fault diagnosis and fault-tolerant techniques Part I. IEEE Transactions, 62, 3757–3767.CrossRef Gao, Z. W., & Cecati, C. (2015). “A survey of fault diagnosis and fault-tolerant techniques Part I. IEEE Transactions, 62, 3757–3767.CrossRef
5.
go back to reference Zhang, Y., Mukherjee, M., et al. (2018). A survey on fault diagnosis in WSN. IEEE Translations, 6, 11349–11364. Zhang, Y., Mukherjee, M., et al. (2018). A survey on fault diagnosis in WSN. IEEE Translations, 6, 11349–11364.
6.
go back to reference Srivastava, N. P., & Srivastava, R. K. (2014). Soft computing approaches to fault tolerant systems. International Journal of Advanced Networking and Applications, 5(6), 2096–2103. Srivastava, N. P., & Srivastava, R. K. (2014). Soft computing approaches to fault tolerant systems. International Journal of Advanced Networking and Applications, 5(6), 2096–2103.
7.
go back to reference Mirjana, M., Vladimir, V., & Vladimir, M. (2014). Fuzzy logic and wireless sensor networks: A survey. Journal of Intelligent & Fuzzy Systems, 27, 877–890.MathSciNetCrossRef Mirjana, M., Vladimir, V., & Vladimir, M. (2014). Fuzzy logic and wireless sensor networks: A survey. Journal of Intelligent & Fuzzy Systems, 27, 877–890.MathSciNetCrossRef
8.
go back to reference Ganesan, D., Shenker, S., & Estrin, D. (2001). Highly-resilient, energy-efficient multipath routing in wireless sensor networks. Mobile Computing and Communications Review, 5(4), 10–24.CrossRef Ganesan, D., Shenker, S., & Estrin, D. (2001). Highly-resilient, energy-efficient multipath routing in wireless sensor networks. Mobile Computing and Communications Review, 5(4), 10–24.CrossRef
9.
go back to reference Javanmardi, S., Barati, A., Dastgheib, S. J., & Attarzadeh, I. (2012). A novel approach for faulty node detection with the aid of fuzzy theory and majority voting in wireless sensor networks. International Journal of Advanced Smart Sensor Network Systems, 2(4), 1–10.CrossRef Javanmardi, S., Barati, A., Dastgheib, S. J., & Attarzadeh, I. (2012). A novel approach for faulty node detection with the aid of fuzzy theory and majority voting in wireless sensor networks. International Journal of Advanced Smart Sensor Network Systems, 2(4), 1–10.CrossRef
10.
go back to reference Bhajantri, L. B. (2018). Fuzzy logic based fault detection in distributed sensor networks. International Journal of Scientific Research in CSE, 6(2), 27–32. Bhajantri, L. B. (2018). Fuzzy logic based fault detection in distributed sensor networks. International Journal of Scientific Research in CSE, 6(2), 27–32.
11.
go back to reference Acharya, S., & Tripathi, C. R. (2020). A reliable fault-tolerant ANFIS model based data aggregation scheme for wireless sensor networks. Journal of King Saud University Computer and Information Sciences, 32(6), 741–753.CrossRef Acharya, S., & Tripathi, C. R. (2020). A reliable fault-tolerant ANFIS model based data aggregation scheme for wireless sensor networks. Journal of King Saud University Computer and Information Sciences, 32(6), 741–753.CrossRef
12.
go back to reference Acharya, S., & Tripathi, C. R. (2018). A fuzzy knowledge based fault tolerance mechanism for wireless sensor networks. International Journal of Rough Sets and Data Analysis, 5(1), 679–697.CrossRef Acharya, S., & Tripathi, C. R. (2018). A fuzzy knowledge based fault tolerance mechanism for wireless sensor networks. International Journal of Rough Sets and Data Analysis, 5(1), 679–697.CrossRef
13.
go back to reference Chanak, P., & Banerjee, I. (2015). Fuzzy rule-based faulty node classification and management scheme for large scale wireless sensor networks. Expert Systems with Applications, 45, 307–321.CrossRef Chanak, P., & Banerjee, I. (2015). Fuzzy rule-based faulty node classification and management scheme for large scale wireless sensor networks. Expert Systems with Applications, 45, 307–321.CrossRef
14.
go back to reference Raghunath, K. M., Thirukumaran, S. (2019). Fuzzy-based fault-tolerant and instant synchronization routing technique in wireless sensor network for rapid transit system. Internet of Robotic Things for Smart Industrial Automation, Automatika (pp 1–8) Raghunath, K. M., Thirukumaran, S. (2019). Fuzzy-based fault-tolerant and instant synchronization routing technique in wireless sensor network for rapid transit system. Internet of Robotic Things for Smart Industrial Automation, Automatika (pp 1–8)
15.
go back to reference Pakdel, F. (2016). Mansour esmaeilpour fuzzy logic method for enhancement fault-tolerant of cluster head in wireless sensor networks clustering. TEM Journal., 5(3), 268–276.MathSciNet Pakdel, F. (2016). Mansour esmaeilpour fuzzy logic method for enhancement fault-tolerant of cluster head in wireless sensor networks clustering. TEM Journal., 5(3), 268–276.MathSciNet
16.
go back to reference Mhemed R et al. (2012). Energy efficient fuzzy logic cluster formation protocol in wireless sensor networks. In International Conference on Ambient Systems, Networks and Technologies (Vol.10, pp. 255–262). Mhemed R et al. (2012). Energy efficient fuzzy logic cluster formation protocol in wireless sensor networks. In International Conference on Ambient Systems, Networks and Technologies (Vol.10, pp. 255–262).
17.
go back to reference Al-Kiyumi, R., Foh, C. H., Vural, S., et al. (2018). Fuzzy logic-based routing algorithm for lifetime enhancement in heterogeneous wireless sensor networks. IEEE Transactions on Green Communications and Networking, 2, 517–532.CrossRef Al-Kiyumi, R., Foh, C. H., Vural, S., et al. (2018). Fuzzy logic-based routing algorithm for lifetime enhancement in heterogeneous wireless sensor networks. IEEE Transactions on Green Communications and Networking, 2, 517–532.CrossRef
18.
go back to reference Krishna Mothku, S., & Rout, R. R. (2019). Adaptive fuzzy-based energy and delay-aware routing protocol for a heterogeneous sensor network. Journal of Computer Networks and Communications, Hindawi, 2019, 1–11.CrossRef Krishna Mothku, S., & Rout, R. R. (2019). Adaptive fuzzy-based energy and delay-aware routing protocol for a heterogeneous sensor network. Journal of Computer Networks and Communications, Hindawi, 2019, 1–11.CrossRef
19.
go back to reference ZiQi, H., Zhang, Z., & Chao, H.-C. (2015). A cluster-based fuzzy fusion algorithm for event detection in heterogeneous wireless sensor networks. Journal of Sensor, 20, 1–11. ZiQi, H., Zhang, Z., & Chao, H.-C. (2015). A cluster-based fuzzy fusion algorithm for event detection in heterogeneous wireless sensor networks. Journal of Sensor, 20, 1–11.
20.
go back to reference Jadav, P., Vinoth, B. (2017). Fuzzy logic based faulty node detection in wireless sensor network. In International Conference on Communication and Signal Processing, IEEE (pp 390 – 394) 2017 Jadav, P., Vinoth, B. (2017). Fuzzy logic based faulty node detection in wireless sensor network. In International Conference on Communication and Signal Processing, IEEE (pp 390 – 394) 2017
21.
go back to reference Shen, H., & Li, Ze. (2016). A Kautz-based wireless sensor and actuator network for real-time, fault-tolerant and energy-efficient transmission. IEEE Transactions on Mobile Computing, 15(1), 1–16.MathSciNetCrossRef Shen, H., & Li, Ze. (2016). A Kautz-based wireless sensor and actuator network for real-time, fault-tolerant and energy-efficient transmission. IEEE Transactions on Mobile Computing, 15(1), 1–16.MathSciNetCrossRef
22.
go back to reference Younas, M. et al. (2018). FDRA: Fault detection and recovery algorithm for wireless sensor networks. Mobile Web and Intelligent Information Systems. Lecture Notes in Computer Science (Vol. 10995, pp. 72–85). Younas, M. et al. (2018). FDRA: Fault detection and recovery algorithm for wireless sensor networks. Mobile Web and Intelligent Information Systems. Lecture Notes in Computer Science (Vol. 10995, pp. 72–85).
23.
go back to reference Chanak, P., & Banerjee, I. (2016). Fuzzy rule-based faulty node classification and management scheme for large scale wireless sensor networks. Expert Systems with Applications, 45, 307–321.CrossRef Chanak, P., & Banerjee, I. (2016). Fuzzy rule-based faulty node classification and management scheme for large scale wireless sensor networks. Expert Systems with Applications, 45, 307–321.CrossRef
24.
go back to reference Gummadi, R., Millstein, T., & Govindan, R. (2007). Declarative failure recovery for sensor networks. AOSD., 4(5), 1710–1717. Gummadi, R., Millstein, T., & Govindan, R. (2007). Declarative failure recovery for sensor networks. AOSD., 4(5), 1710–1717.
25.
go back to reference Shen, H. Y., & Li, Z. (2015). A Kautz-based wireless sensor and actuator network for real-time, fault-tolerant and energy-efficient transmission. IEEE Transactions on Mobile Computing, 15, 1–16.CrossRef Shen, H. Y., & Li, Z. (2015). A Kautz-based wireless sensor and actuator network for real-time, fault-tolerant and energy-efficient transmission. IEEE Transactions on Mobile Computing, 15, 1–16.CrossRef
Metadata
Title
Energy Attentive and Pre-fault Recognize Mechanism for Distributed Wireless Sensor Network Using Fuzzy Logic Approach
Authors
Roshani Talmale
M. Nirupama Bhat
Publication date
01-12-2021
Publisher
Springer US
Published in
Wireless Personal Communications / Issue 2/2022
Print ISSN: 0929-6212
Electronic ISSN: 1572-834X
DOI
https://doi.org/10.1007/s11277-021-09405-z

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