delay tolerant networks
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2021 ◽  
Vol 11 (1) ◽  
Author(s):  
Hongsheng Chen ◽  
Chunhui Wu

AbstractIn predictable delay tolerant networks (PDTNs), the network topology is known a priori or can be predicted over time, such as space planet networks and vehicular networks based on public buses or trains. Due to the intermittent connectivity, network partitioning, and long delays in PDTNs, most of the researchers mainly focuses on routing and data access research. However, topology control can improve energy effectiveness and increase the communication capacity, thus how to maintain the dynamic topology of PDTNs becomes crucial. In this paper, a contact ability based topology control method for PDTNs is proposed. First, the contact ability is calculated using our contact ability calculation model, and then the PDTNs is modeled as an undirected weighted contact graph which includes spatial and contact ability information. The topology control problem is defined as constructing a minimum spanning tree (MST) that the contact ability of the MST is maximized. We propose two algorithms based on undirected weighted contact graph to solve the defined problem, and compare them with the latest method in terms of energy cost and contact ability. Extensive simulation experiments demonstrate that the proposed algorithms can guarantee data transmission effectively, and reduce the network energy consumption significantly.


2021 ◽  
Author(s):  
Sangku Lee ◽  
Janghyuk Youn ◽  
Yongjae Kim ◽  
Bang Chul Jung

2021 ◽  
Author(s):  
Yanzhi Hu ◽  
Tian Tian ◽  
Fengbin Zhang ◽  
Qihang Chen ◽  
Gang Yu ◽  
...  

2021 ◽  
Vol 13 (19) ◽  
pp. 10907
Author(s):  
Salman Naseer ◽  
William Liu ◽  
Nurul I. Sarkar ◽  
Muhammad Shafiq ◽  
Jin-Ghoo Choi

In a smart city, a large number of smart sensors are operating and creating a large amount of data for a large number of applications. Collecting data from these sensors poses some challenges, such as the connectivity of the sensors to the data center through the communication network, which in turn requires expensive infrastructure. The delay-tolerant networks are of interest to connect smart sensors at a large scale with their data centers through the smart vehicles (e.g., transport fleets or taxi cabs) due to a number of virtues such as data offloading, operations, and communication on asymmetric links. In this article, we analyze the coverage and capacity of vehicular sensor networks for data dissemination between smart sensors and their data centers using delay-tolerant networks. Therein, we observed the temporal and spatial movement of vehicles in a very large coverage area (25 × 25 km2) in Beijing. Our algorithm sorts the entire city into different rectangular grids of various sizes and calculates the possible chances of contact between smart sensors and taxis. We further calculate the vehicle density, coverage, and capacity of each grid through a real-time taxi trajectory. In our proposed study, numerical and spatial mining show that even with a relatively small subset of vehicles (100 to 400) in a smart city, the potential for data dissemination is as high as several petabytes. Our proposed network can use different cell sizes and various wireless technologies to achieve significant network area coverage. When the cell size is greater than 500 m2, we observe a coverage rate of 90% every day. Our findings prove that the proposed network model is suitable for those systems that can tolerate delays and have large data dissemination networks since the performance is insensitive to the delay with high data offloading capacity.


2021 ◽  
pp. 102663
Author(s):  
Fernando D. Raverta ◽  
Juan A. Fraire ◽  
Pablo G. Madoery ◽  
Ramiro A. Demasi ◽  
Jorge M. Finochietto ◽  
...  

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