In this paper, we first discuss the origin of preferential attachment. Then we establish the generalized preferential attachment (GPA) which has two new properties; first, it encapsulates both the topological and weight aspects of a network, which makes it is neither entirely degree preferential nor
Mechanism for linear preferential attachment in growing networks
β Scribed by Xinping Xu; Feng Liu; Lianshou Liu
- Publisher
- Elsevier Science
- Year
- 2005
- Tongue
- English
- Weight
- 211 KB
- Volume
- 356
- Category
- Article
- ISSN
- 0378-4371
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β¦ Synopsis
The network properties of a graph ensemble subject to the constraints imposed by the expected degree sequence are studied. It is found that the linear preferential attachment is a fundamental rule, as it keeps the maximal entropy in sparse growing networks. This provides theoretical evidence in support of the linear preferential attachment widely exists in real networks and adopted as a crucial assumption in growing network models. Besides, in the sparse limit, we develop a method to calculate the degree correlation and clustering coefficient in our ensemble model, which is suitable for all kinds of sparse networks including the BA model, proposed by BarabaΒ΄si and Albert.
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