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En Fan

Researcher at Shaoxing University

Publications -  33
Citations -  503

En Fan is an academic researcher from Shaoxing University. The author has contributed to research in topics: Fuzzy logic & Filter (video). The author has an hindex of 11, co-authored 29 publications receiving 320 citations. Previous affiliations of En Fan include Shenzhen University & Xidian University.

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Multistage Signaling Game-Based Optimal Detection Strategies for Suppressing Malware Diffusion in Fog-Cloud-Based IoT Networks

TL;DR: A malware detection infrastructure realized by an intrusion detection system with cloud and fog computing is proposed to overcome the IDS deployment problem in smart objects due to their limited resources and heterogeneous subnetworks and to minimize privacy leakage of smart objects.
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A novel object tracking algorithm by fusing color and depth information based on single valued neutrosophic cross-entropy

TL;DR: Although appearance based trackers have been greatly improved in the last decade, they are still struggling with some challenges like occlusion, blur, fast motion, deformation, etc as mentioned in this paper.
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Bonferroni Mean Operators of Linguistic Neutrosophic Numbers and Their Multiple Attribute Group Decision-Making Methods

TL;DR: In this paper, the LNN and the Bonferroni mean operator are merged together to propose a LNN normalized weighted BonferRONi mean (LNNNWBM) operator and a Lnn normalized weighted geometric Bonferronsi mean(NNNNWGBM) operator, and the properties of these two operators are proved.
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New form of single valued neutrosophic uncertain linguistic variables aggregation operators for decision-making

TL;DR: This paper mainly studies the new expression and operations of single value neutrosophic uncertain linguistic variables and its application in multiple attribute group decision-making (MAGDM).
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Heronian mean operators of linguistic neutrosophic multisets and their multiple attribute decision-making methods

TL;DR: In this article, a linguistic neutrosophic multiset is first proposed to handle the multiplicity information, which is an expanding of neutrosphic mult iset, and two Heronian mean operators are proposed to aggregate the linguistic neutromophicMultiset.