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Erschienen in: Wireless Personal Communications 2/2022

05.06.2021

Optimized Energy Management Model on Data Distributing Framework of Wireless Sensor Network in IoT System

verfasst von: Venu Madhav Kuthadi, Rajalakshmi Selvaraj, S. Baskar, P. Mohamed Shakeel, Abhishek Ranjan

Erschienen in: Wireless Personal Communications | Ausgabe 2/2022

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Abstract

Data Dissemination is an essential transmitting method for a sensor network to the end-users across any set of interconnected frameworks. WSN is often used within an IoT system, in other words. As in a mesh network, a wide collection of sensors can collect data individually and send data to the web via an IoT system through a router. The conventional defined solution for data dissemination in Wireless Sensor Networks (WSN) does not include the wide range of new applications built on the Internet of Things (IoT)systems. Hence, it is observed that searching for an appropriate transmission link while distributing data with optimized utilization of energy is a significant challenge in the IoT communication infrastructure. Therefore, in this paper, an Optimized Energy Management Model for Data Dissemination (OEM-DD) framework has been proposed to optimize energy during data transmission efficiently across all sensor network nodes in the IoT system. The efficiency of the data dissemination across an interconnected network has been achieved by introducing a Non-adaptive routing approach in which data is distributed effectively from a single source to various points. Besides, Non-adaptive routing involves the dispersed collaboration system and the priority task planning principle combined with an integer framework for the efficient energy processing and grouping of data in the sensor’s network. Optimization of the energy management model through Non-adaptive routing allows low power consumption and minimal energy usage for each sensor node in the IoT system to improve the transfer and handling of data in severe interruption. The experimental results show that the suggested model enhances the data transmission rate of 96.33% with less energy consumption of 20.11% in WSN, which is the subset of IoT systems.

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Literatur
1.
Zurück zum Zitat Kassab, W. A., & Darabkh, K. A. (2020). A-Z survey of Internet of Things: Architectures, protocols, applications, recent advances, future directions, and recommendations. Journal of Network and Computer Applications., 18, 102663CrossRef Kassab, W. A., & Darabkh, K. A. (2020). A-Z survey of Internet of Things: Architectures, protocols, applications, recent advances, future directions, and recommendations. Journal of Network and Computer Applications., 18, 102663CrossRef
2.
Zurück zum Zitat Zhang, X., & Yue, W. T. A. (2020). perspective on “Transformative value of the Internet of Things and pricing decisions.” Electronic Commerce Research and Applications., 12, 100967CrossRef Zhang, X., & Yue, W. T. A. (2020). perspective on “Transformative value of the Internet of Things and pricing decisions.” Electronic Commerce Research and Applications., 12, 100967CrossRef
3.
Zurück zum Zitat Deebak, B. D., & Al-Turjman, F. (2020). A hybrid secure routing and monitoring mechanism in IoT-based wireless sensor networks. Ad Hoc Networks., 97, 102022CrossRef Deebak, B. D., & Al-Turjman, F. (2020). A hybrid secure routing and monitoring mechanism in IoT-based wireless sensor networks. Ad Hoc Networks., 97, 102022CrossRef
4.
Zurück zum Zitat Boni, K. R., Xu, L., Chen, Z., & Baddoo, T. D. (2020). A security concept based on scaler distribution of a novel intrusion detection device for wireless sensor networks in a smart environment. Sensors., 20(17), 4717CrossRef Boni, K. R., Xu, L., Chen, Z., & Baddoo, T. D. (2020). A security concept based on scaler distribution of a novel intrusion detection device for wireless sensor networks in a smart environment. Sensors., 20(17), 4717CrossRef
5.
Zurück zum Zitat Muzammal, M., Talat, R., Sodhro, A. H., & Pirbhulal, S. (2020). A multi-sensor data fusion enabled ensemble approach for medical data from body sensor networks. Information Fusion., 1(53), 155–164CrossRef Muzammal, M., Talat, R., Sodhro, A. H., & Pirbhulal, S. (2020). A multi-sensor data fusion enabled ensemble approach for medical data from body sensor networks. Information Fusion., 1(53), 155–164CrossRef
6.
Zurück zum Zitat Alsulami, O. Z., Alahmadi, A. A., Saeed, S. O., Mohamed, S. H., El-Gorashi, T. E., Alresheedi, M. T., & Elmirghani, J. M. (2020). Optimum resource allocation in optical wireless systems with energy-efficient fog and cloud architectures. Philosophical Transactions of the Royal Society A., 378(2169), 20190188CrossRef Alsulami, O. Z., Alahmadi, A. A., Saeed, S. O., Mohamed, S. H., El-Gorashi, T. E., Alresheedi, M. T., & Elmirghani, J. M. (2020). Optimum resource allocation in optical wireless systems with energy-efficient fog and cloud architectures. Philosophical Transactions of the Royal Society A., 378(2169), 20190188CrossRef
7.
Zurück zum Zitat Koh, S., Lee, M., Brotzman, L. E., & Shelton, R. C. (2020). An orientation for new researchers to key domains, processes, and resources in implementation science. Translational behavioral medicine., 10(1), 179–185 Koh, S., Lee, M., Brotzman, L. E., & Shelton, R. C. (2020). An orientation for new researchers to key domains, processes, and resources in implementation science. Translational behavioral medicine., 10(1), 179–185
8.
Zurück zum Zitat Haseeb, K., Islam, N., Saba, T., Rehman, A., & Mehmood, Z. (2020). LSDAR: A light-weight structure-based data aggregation routing protocol with secure internet of things integrated next-generation sensor networks. Sustainable Cities and Society., 54, 101995CrossRef Haseeb, K., Islam, N., Saba, T., Rehman, A., & Mehmood, Z. (2020). LSDAR: A light-weight structure-based data aggregation routing protocol with secure internet of things integrated next-generation sensor networks. Sustainable Cities and Society., 54, 101995CrossRef
9.
Zurück zum Zitat Frei, M., Deb, C., Stadler, R., Nagy, Z., & Schlueter, A. (2020). Wireless sensor network for estimating building performance. Automation in Construction., 111, 103043CrossRef Frei, M., Deb, C., Stadler, R., Nagy, Z., & Schlueter, A. (2020). Wireless sensor network for estimating building performance. Automation in Construction., 111, 103043CrossRef
10.
Zurück zum Zitat Rehan, W., Fischer, S., Chughtai, O., Rehan, M., Hail, M., & Saleem, S. (2020). A novel dynamic confidence interval based secure channel prediction approach for stream-based multichannel wireless sensor networks. Ad Hoc Networks, 108, 102212CrossRef Rehan, W., Fischer, S., Chughtai, O., Rehan, M., Hail, M., & Saleem, S. (2020). A novel dynamic confidence interval based secure channel prediction approach for stream-based multichannel wireless sensor networks. Ad Hoc Networks, 108, 102212CrossRef
11.
Zurück zum Zitat Xu, X., Zhang, X., Khan, M., Dou, W., Xue, S., & Yu, S. (2020). A balanced virtual machine scheduling method for energy-performance trade-offs in cyber-physical cloud systems. Future Generation Computer Systems., 1(105), 789–799CrossRef Xu, X., Zhang, X., Khan, M., Dou, W., Xue, S., & Yu, S. (2020). A balanced virtual machine scheduling method for energy-performance trade-offs in cyber-physical cloud systems. Future Generation Computer Systems., 1(105), 789–799CrossRef
12.
Zurück zum Zitat Guo, J., Li, X., Lv, Z., Yang, Y., & Li, L. (2020). Design of real-time video transmission system for drone reliability. MS&E., 790(1), 012004 Guo, J., Li, X., Lv, Z., Yang, Y., & Li, L. (2020). Design of real-time video transmission system for drone reliability. MS&E., 790(1), 012004
13.
Zurück zum Zitat Tewari, A., & Gupta, B. B. (2020). Security, privacy, and trust of different layers in the Internet-of-Things (IoT) framework. Future generation computer systems., 1(108), 909–920CrossRef Tewari, A., & Gupta, B. B. (2020). Security, privacy, and trust of different layers in the Internet-of-Things (IoT) framework. Future generation computer systems., 1(108), 909–920CrossRef
14.
Zurück zum Zitat Poonguzhali, P. K., & Ananthamoorthy, N. P. (2020). Design of mutated harmony search algorithm for data dissemination in wireless sensor network. Wireless Personal Communications., 111(2), 729–751CrossRef Poonguzhali, P. K., & Ananthamoorthy, N. P. (2020). Design of mutated harmony search algorithm for data dissemination in wireless sensor network. Wireless Personal Communications., 111(2), 729–751CrossRef
15.
Zurück zum Zitat Badarneh, H. J., Mansoor, A. M., Rahman, A. U., & Ravana, S. D. (2020). An efficient indexing framework for data dissemination in wireless sensor networks. Computers & Electrical Engineering., 87, 106777CrossRef Badarneh, H. J., Mansoor, A. M., Rahman, A. U., & Ravana, S. D. (2020). An efficient indexing framework for data dissemination in wireless sensor networks. Computers & Electrical Engineering., 87, 106777CrossRef
16.
Zurück zum Zitat Mousavi, M., & Klein, A. (2020). Energy and social cost minimization for data dissemination in wireless networks: centralized and decentralized approaches. IEEE Transactions on Vehicular Technology., 69(5), 5521–5534CrossRef Mousavi, M., & Klein, A. (2020). Energy and social cost minimization for data dissemination in wireless networks: centralized and decentralized approaches. IEEE Transactions on Vehicular Technology., 69(5), 5521–5534CrossRef
17.
Zurück zum Zitat Amini, S. M., Karimi, A., & Esnaashari, M. (2020). Energy-efficient data dissemination algorithm based on virtual hexagonal cell-based infrastructure and multi-mobile sink for wireless sensor networks. The Journal of Supercomputing., 76(1), 150–173CrossRef Amini, S. M., Karimi, A., & Esnaashari, M. (2020). Energy-efficient data dissemination algorithm based on virtual hexagonal cell-based infrastructure and multi-mobile sink for wireless sensor networks. The Journal of Supercomputing., 76(1), 150–173CrossRef
18.
Zurück zum Zitat Liu, W., Nakauchi, K., & Shoji, Y. (2018). A neighbor-based probabilistic broadcast protocol for data dissemination in mobile IoT networks. IEEE Access., 6(6), 12260–12268CrossRef Liu, W., Nakauchi, K., & Shoji, Y. (2018). A neighbor-based probabilistic broadcast protocol for data dissemination in mobile IoT networks. IEEE Access., 6(6), 12260–12268CrossRef
19.
Zurück zum Zitat Orsino, A., Kovalchukov, R., Samuylov, A., Moltchanov, D., Andreev, S., Koucheryavy, Y., & Valkama, M. (2018). Caching-aided collaborative D2D operation for predictive data dissemination in industrial IoT. IEEE Wireless Communications., 25(3), 50–57CrossRef Orsino, A., Kovalchukov, R., Samuylov, A., Moltchanov, D., Andreev, S., Koucheryavy, Y., & Valkama, M. (2018). Caching-aided collaborative D2D operation for predictive data dissemination in industrial IoT. IEEE Wireless Communications., 25(3), 50–57CrossRef
20.
Zurück zum Zitat Kim M, Park S, Lee W. (2018). A Robust Energy Saving Data Dissemination Protocol for IoT-WSNs. KSII Transactions on Internet & Information Systems. 12(12). Kim M, Park S, Lee W. (2018). A Robust Energy Saving Data Dissemination Protocol for IoT-WSNs. KSII Transactions on Internet & Information Systems. 12(12).
21.
Zurück zum Zitat Badarneh, H. J., Rahman, A. U., Mansoor, A. M., & Ravana, S. D. (2020). An efficient indexing framework for data dissemination in wireless sensor networks. Computers & Electrical Engineering., 87, 106777CrossRef Badarneh, H. J., Rahman, A. U., Mansoor, A. M., & Ravana, S. D. (2020). An efficient indexing framework for data dissemination in wireless sensor networks. Computers & Electrical Engineering., 87, 106777CrossRef
22.
Zurück zum Zitat Wang, X., Mao, X., & Khodaei, H. (2021). A multi-objective home energy management system based on internet of things and optimization algorithms. Journal of Building Engineering, 33, 101603CrossRef Wang, X., Mao, X., & Khodaei, H. (2021). A multi-objective home energy management system based on internet of things and optimization algorithms. Journal of Building Engineering, 33, 101603CrossRef
Metadaten
Titel
Optimized Energy Management Model on Data Distributing Framework of Wireless Sensor Network in IoT System
verfasst von
Venu Madhav Kuthadi
Rajalakshmi Selvaraj
S. Baskar
P. Mohamed Shakeel
Abhishek Ranjan
Publikationsdatum
05.06.2021
Verlag
Springer US
Erschienen in
Wireless Personal Communications / Ausgabe 2/2022
Print ISSN: 0929-6212
Elektronische ISSN: 1572-834X
DOI
https://doi.org/10.1007/s11277-021-08583-0

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