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Swarm Intelligence Application to UAV Aided IoT Data Acquisition Deployment Optimization

delete2020-01-01
delete31
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OA
AI
E
Elin Chen
J
Junfu Chen
A
Ali Wagdy Mohamed
W
Wang Bi
Z
Zhendong Wang
Y
Yang Chen *
DOI:10.1109/ACCESS.2020.3025409delete
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摘要

摘要

En 中文
It is feasible and safe to use unmanned aerial vehicle (UAV) as the data collection platform of the Internet of things (IoT). In order to save the energy loss of the platform and make the UAV perform the collection work effectively, it is necessary to optimize the deployment of UAV. The objective problem is to minimize the sum of the lost energy of UAV and the loss of data transmission of Internet of things devices. The key to solving the problem is to calculate the location of the docking points and the number of docking points when the UAV is working to collect data. This paper proposes a coding scheme based on swarm intelligence optimization, which encapsulates the docking position of UAV into a dimension, so the number of docking points to be calculated is the dimension number of optimization objective. This problem is considered as a dynamic dimension optimization problem. Each individual in swarm intelligence algorithm is a solution. When adjusting the dimension, the best individual is added or deleted to achieve dynamic search in the evolutionary process. Collaborative search among multiple individuals can improve the local optimal limit of search to a certain extent. Finally, the validity of the swarm intelligence-based coding approach is verified by simulation under seven IoT device distribution scenarios. The swarm intelligence algorithms we used are flower pollination algorithm (FPA), salp swarm algorithm (SSA), sine cosine algorithm (SCA). FPA and SCA perform most efficiently in three and four scenarios among the seven IoT device scenarios, respectively.
Keyword:
Unmanned aerial vehicles
Optimization
Internet of Things
Data collection
Energy consumption
Particle swarm optimization
Encoding
UAV deployment optimization
Internet of things data collection
swarm intelligence
dynamic dimension optimization
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IEEE Access
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3.6
论文数:
9.8W
被引数:
29.4W

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Nile University
学者数:
350
论文数: 298
被引数: 5
E
egyptian knowledge bank (ekb)
学者数:
11.6W
论文数: 9.3W
被引数: 84
S
southeast university - china
学者数:
5.3W
论文数: 4.9W
被引数: 57
C
Cairo University
学者数:
1.4W
论文数: 1.1W
被引数: 1.7W
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