| Literature DB >> 36010811 |
Yongheng Zhang1,2, Yuliang Lu1,2, Guozheng Yang1,2, Dongdong Hou1,2, Zhihao Luo1,2.
Abstract
The Internet creates multidimensional and complex relationships in terms of the composition, application and mapping of social users. Most of the previous related research has focused on the single-layer topology of physical device networks but ignored the study of service access relationships and the social structure of users on the Internet. Here, we propose a composite framework to understand how the interaction between the physical devices network, business application network, and user role network affects the robustness of the entire Internet. In this paper, a multilayer network consisting of a physical device layer, business application layer and user role layer is constructed by collecting experimental network data. We characterize the disturbance process of the entire multilayer network when a physical entity device fails by designing nodal disturbance to investigate the interactions that exist between the different network layers. Meanwhile, we analyze the characteristics of the Internet-oriented multilayer network structure and propose a heuristic multilayer network topology generation algorithm based on the initial routing topology and networking pattern, which simulates the evolution process of multilayer network topology. To further analyze the robustness of this multilayer network model, we combined a total of six target node ranking indicators including random strategy, degree centrality, betweenness centrality, closeness centrality, clustering coefficient and network constraint coefficient, performed node deletion simulations in the experimental network, and analyzed the impact of component types and interactions on the robustness of the overall multilayer network based on the maximum component change in the network. These results provide new insights into the operational processes of the Internet from a multi-domain data fusion perspective, reflecting that the coupling relationships that exist between the different interaction layers are closely linked to the robustness of multilayer networks.Entities:
Keywords: disturbance conduction; heuristic network generation algorithm; multilayer network; network modeling; robustness
Year: 2022 PMID: 36010811 PMCID: PMC9407341 DOI: 10.3390/e24081147
Source DB: PubMed Journal: Entropy (Basel) ISSN: 1099-4300 Impact factor: 2.738
Figure 1Network structure and component distribution for multilayer network models.
Figure 2The underlying network of the multilayer network model is a physical device network in which routers are connected to each other through connectivity relationships (red undirected links) and routers are connected to servers or end nodes through routing control relationships (red directed links). The middle layer network is a business application network in which business system nodes are connected to business system nodes through business association relationships, while business systems are connected to access. The upper layer network is a user role network based on business system association relationships, where users are connected by social association relationships (yellow undirected links). The physical device network is linked to the business application network by unidirectional interdependencies (green directed dashed links). There are two types of connections between the business application network and the user role layer; business system nodes and user nodes are connected by unidirectional interdependency links (purple directed dashed links), and access nodes and user nodes are connected by login association relationships (blue undirected dashed links). The node disturbance simulation process is as follows: (a) Initially, it destroys a routing node in the physical device network, causing the router to go out of service (indicated by a black routing node). (b) Because the destroyed routing node fails, the routing node with the largest component that has access to the network through that node also fails, which in turn causes the servers and endpoints controlled by its routing to be disabled (indicated by the black server node and the black endpoint node). (c) Loss of server node and terminal node support at the physical device layer, failure of associated business system nodes and access nodes within the business application layer (represented by black business nodes and black access nodes), and consequently failure of associated user roles within the user role layer (represented by black user nodes).
Figure 3Heuristic generation algorithm for multilayer networks.
List of experimental network properties.
| Network Properties | Enterprise | Campus |
|---|---|---|
|
| 15,418 | 26,486 |
|
| 80,176 | 140,724 |
|
| 3 | 3 |
|
| 1260 | 1820 |
|
| 1355 | 1864 |
|
| 1200 | 1786 |
|
| 13,034 | 22,994 |
|
| 1200 | 22,880 |
|
| 38,671 | 68,320 |
|
| 1200 | 1786 |
|
| 25,916 | 45,760 |
|
| 1200 | 1786 |
|
| 14,158 | 24,666 |
|
| 12,958 | 22,880 |
|
| 12,958 | 22,880 |
|
| 38,902 | 68,512 |
Figure 4Maximum network component changes in the network.
Figure 5Maximum network component changes in the network.