| Literature DB >> 26569254 |
Hongliang Lu1,2, Shaohe Lv3, Xianlong Jiao4, Xiaodong Wang5, Juan Liu6.
Abstract
Nowadays, our living environment has been embedded with smart objects, such as smart sensors, smart watches and smart phones. They make cyberspace and physical space integrated by their abundant abilities of sensing, communication and computation, forming a cyber-physical integrated network. In order to maximize information diffusion in such a network, a group of objects are selected as the forwarding points. To optimize the selection, a minimum connected dominating set (CDS) strategy is adopted. However, existing approaches focus on minimizing the size of the CDS, neglecting an important factor: the weight of links. In this paper, we propose a distributed maximizing the probability of information diffusion (DMPID) algorithm in the cyber-physical integrated network. Unlike previous approaches that only consider the size of CDS selection, DMPID also considers the information spread probability that depends on the weight of links. To weaken the effects of excessively-weighted links, we also present an optimization strategy that can properly balance the two factors. The results of extensive simulation show that DMPID can nearly double the information diffusion probability, while keeping a reasonable size of selection with low overhead in different distributed networks.Entities:
Keywords: cyber-physical network; dominating set; information diffusion; probabilistic links; relationship
Year: 2015 PMID: 26569254 PMCID: PMC4701293 DOI: 10.3390/s151128513
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1An example of a cyber-physical integrated network.
Figure 2An example of an information diffusing probability network.
Figure 3The state change of the network.
Figure 4The final selection.
Figure 5Simulation results for the size of the selection. The size of the selection in (a) the sparese network; (b) the dense network.
Figure 6Simulation results for the information spread probability. The information spread probability in (a) the sparse network; (b) the dense network.
Figure 7Simulation results for diameter of selection. The diameter of the selection in (a) the sparese network; (b) the dense network.
Figure 8Simulation results for the density of the network. (a) The size of the selection; (b) The information spread probability.
Figure 9Simulation results for a small world network. (a) The size of the selection in small world network; (b) The information spread probability in the small world network.