Open Access
Open access
volume 7 pages 105441-105461

Threshold Estimation Models for Linear Threshold-Based Influential User Mining in Social Networks

Publication typeJournal Article
Publication date2019-07-30
scimago Q1
wos Q2
SJR0.849
CiteScore9.0
Impact factor3.6
ISSN21693536
General Materials Science
Electrical and Electronic Engineering
General Engineering
General Computer Science
Abstract
Influence Maximization (IM) is a popular social network mining mechanism that mines influential users for viral marketing in social networks. Most of the Influence Maximization techniques employ either the independent cascade (IC) or linear threshold (LT) model in the node activation process. In the IC model, all the active in-neighbors are given a single chance to activate a node with a particular probability whereas, in the LT model, a node is activated if the aggregated influence of all the activated in-neighbors is no less than a threshold value. Thus, the threshold plays a significant role in the LT-based influence maximization. In this paper, we comprehensively survey the different threshold values used in various IM models. Based on the survey, we observe that the current studies lack threshold estimation models. Therefore, we develop a system model and propose four threshold estimation models based on influence-weight and degree distribution. The empirical results show that our algorithms generate threshold values that resemble the thresholds used by most IM algorithms along with faster running time. Besides, the proposed models are scalable and applicable to any influence-weight estimation technique and offer narrower threshold ranges rather than the broad ranges used in many existing works.
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GOST Copy
Talukder A. et al. Threshold Estimation Models for Linear Threshold-Based Influential User Mining in Social Networks // IEEE Access. 2019. Vol. 7. pp. 105441-105461.
GOST all authors (up to 50) Copy
Talukder A., Alam M. G. R., Tran N. H., Niyato D., Park G. H., Hong C. S. Threshold Estimation Models for Linear Threshold-Based Influential User Mining in Social Networks // IEEE Access. 2019. Vol. 7. pp. 105441-105461.
RIS |
Cite this
RIS Copy
TY - JOUR
DO - 10.1109/access.2019.2931925
UR - https://doi.org/10.1109/access.2019.2931925
TI - Threshold Estimation Models for Linear Threshold-Based Influential User Mining in Social Networks
T2 - IEEE Access
AU - Talukder, Ashis
AU - Alam, Md. Golam Rabiul
AU - Tran, Nguyen H.
AU - Niyato, Dusit
AU - Park, Gwan Hoon
AU - Hong, Choong Seon
PY - 2019
DA - 2019/07/30
PB - Institute of Electrical and Electronics Engineers (IEEE)
SP - 105441-105461
VL - 7
SN - 2169-3536
ER -
BibTex
Cite this
BibTex (up to 50 authors) Copy
@article{2019_Talukder,
author = {Ashis Talukder and Md. Golam Rabiul Alam and Nguyen H. Tran and Dusit Niyato and Gwan Hoon Park and Choong Seon Hong},
title = {Threshold Estimation Models for Linear Threshold-Based Influential User Mining in Social Networks},
journal = {IEEE Access},
year = {2019},
volume = {7},
publisher = {Institute of Electrical and Electronics Engineers (IEEE)},
month = {jul},
url = {https://doi.org/10.1109/access.2019.2931925},
pages = {105441--105461},
doi = {10.1109/access.2019.2931925}
}