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Hybrid Electro Search with Ant Colony Optimization Algorithm for Task Scheduling in a Sensor Cloud Environment for Agriculture Irrigation Control System

Integrating cloud computing with wireless sensor networks creates a sensor cloud (WSN). Some real‐time applications, such as agricultural irrigation control systems, use a sensor cloud. The sensor battery life in sensor clouds is constrained. The data center’s computers consume a lot of energy to offer storage in the cloud. The emerging sensor cloud technology‐enabled virtualization. Using a virtual environment has many advantages. However, different resource requirements and task execution cause substantial performance and parameter optimization issues in cloud computing. In this study, we proposed the hybrid electro search with ant colony optimization (HES‐ACO) technique to enhance the behavior of task scheduling, for those considering parameters such as total execution time, cost of the execution, makespan time, the cloud data center energy consumption like throughput, response time, resource utilization task rejection ratio, and deadline constraint of the multicloud. Electro search and the ant colony optimization algorithm are combined in the proposed method. Compared to HESGA, HPSOGA, AC‐PSO, and PSO‐COGENT algorithms, the created HES‐ACO algorithm was simulated at CloudSim and found to optimize all parameters.
- VIT-AP University India
- VELLORE INSTITUTE OF TECHNOLOGY India
- VIT-AP University India
- SRM Institute of Science and Technology India
- Islamic University Bangladesh
FOS: Computer and information sciences, CloudSim, Computer Networks and Communications, Plant Science, Real-time computing, Agricultural and Biological Sciences, Engineering, Virtualization, FOS: Mathematics, Cloud computing, Ant colony optimization algorithms, Embedded system, Applications and Challenges of IoT, Computer network, Routing (electronic design automation), Internet of Things and Edge Computing, Mathematical optimization, Life Sciences, QA75.5-76.95, Job shop scheduling, Precision Agriculture Technologies, Computer science, Virtual machine, Distributed computing, Energy consumption, Algorithm, Operating system, Electronic computers. Computer science, Electrical engineering, Computer Science, Physical Sciences, Smart Farming, Scheduling (production processes), Wireless sensor network, Mathematics, Information Systems
FOS: Computer and information sciences, CloudSim, Computer Networks and Communications, Plant Science, Real-time computing, Agricultural and Biological Sciences, Engineering, Virtualization, FOS: Mathematics, Cloud computing, Ant colony optimization algorithms, Embedded system, Applications and Challenges of IoT, Computer network, Routing (electronic design automation), Internet of Things and Edge Computing, Mathematical optimization, Life Sciences, QA75.5-76.95, Job shop scheduling, Precision Agriculture Technologies, Computer science, Virtual machine, Distributed computing, Energy consumption, Algorithm, Operating system, Electronic computers. Computer science, Electrical engineering, Computer Science, Physical Sciences, Smart Farming, Scheduling (production processes), Wireless sensor network, Mathematics, Information Systems
citations This is an alternative to the "Influence" indicator, which also reflects the overall/total impact of an article in the research community at large, based on the underlying citation network (diachronically).10 popularity This indicator reflects the "current" impact/attention (the "hype") of an article in the research community at large, based on the underlying citation network.Top 10% influence This indicator reflects the overall/total impact of an article in the research community at large, based on the underlying citation network (diachronically).Average impulse This indicator reflects the initial momentum of an article directly after its publication, based on the underlying citation network.Top 10%
