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Ming Yu

Florida State University · US
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Area of research
Computer Networks and Communications
Research interest
Research topics from publications: AASR: Authenticated Anonymous Secure Routing for MANETs in Adversarial Environments; A New Probabilistic Multi-Hop Broadcast Protocol for Vehicular Networks; Link available time prediction based GPSR for vehicular ad hoc networks; A network model for the real-time communications of a smart grid prototype; Reliability and Delay Trade-Off Analysis of Unslotted IEEE 802.15.4 Sensor Network for Shipboard Environment; A New Model-Based Method to Detect Radio Jamming Attack to Wireless Networks; Experimental studies on the rtEthernet-based centralized fault management system for smart grids; Radio Channel Allocations With Global Optimality and Bounded Computational Scale; A New Grouping Protocol for Smart Grids; A new radio channel allocation strategy using simulated annealing and Gibbs sampling. Representative work: Anonymous communications are important for many of the applications of mobile ad hoc networks (MANETs) deployed in adversary environments. A major requirement on the network is the ability to provide unidentifiability and unlinkability for mobile nodes and their traffic. Although a number of anonymous secure routing protocols have been proposed, the requirement is not fully satisfied. The existing protocols are vulnerable to the attacks of fake routing packets or denial-of-service broadcasting, even the node identities are protected by pseudonyms. In this paper, we propose a new routing protocol, i.e., authenticated anonymous secure routing (AASR), to satisfy the requirement and defend again The most important application of vehicular networks is the dissemination of safety information via broadcasting protocols. How to reduce the redundant retransmission of the same information to avoid excessive channel collisions while ensure low latency and high reliability of the dissemination over the network has become the most challenging problem for multi-hop broadcasting protocols. The existing solutions use either probability-based multi-hop broadcasting for low latency or time-based deterministic approaches for high reliability. In this work, we propose a new probability-based multi-hop broadcast protocol to overcome the reliability and latency issues. First, we propose to assign a h
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citations
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Recent publications

Reliability and Delay Trade-Off Analysis of Unslotted IEEE 802.15.4 Sensor Network for Shipboard Environment
IEEE Sensors Journal 2020cited by 12position: lastdoi
Experimental studies on the rtEthernet-based centralized fault management system for smart grids
Electric Power Systems Research 2019cited by 7position: lastdoi
A New Probabilistic Multi-Hop Broadcast Protocol for Vehicular Networks
IEEE Transactions on Vehicular Technology 2018cited by 53position: middledoi
Link available time prediction based GPSR for vehicular ad hoc networks
2017cited by 22position: middledoi
A New Grouping Protocol for Smart Grids
IEEE Transactions on Smart Grid 2017cited by 5position: middledoi
A new probability-based multihop broadcast protocol for vehicular networks
2017cited by 0position: middledoi
A new rate adjustment algorithm for traffic admissions in smart grid communications
2017cited by 0position: lastdoi
A network model for the real-time communications of a smart grid prototype
Journal of Network and Computer Applications 2015cited by 12position: middledoi
A New Model-Based Method to Detect Radio Jamming Attack to Wireless Networks
2015cited by 9position: lastdoi
A new model for the efficient channel utilization of wireless networks and applications
2015cited by 4position: lastdoi
AASR: Authenticated Anonymous Secure Routing for MANETs in Adversarial Environments
IEEE Transactions on Vehicular Technology 2014cited by 76position: lastdoi
Radio Channel Allocations With Global Optimality and Bounded Computational Scale
IEEE Transactions on Vehicular Technology 2014cited by 6position: firstdoi
An application-specific routing algorithm to maximize flow-lifetime in sensor networks
2014cited by 0position: lastdoi
A new radio channel allocation strategy using simulated annealing and Gibbs sampling
2013cited by 4position: firstdoi
Packet level modeling and simulation of real-time ethernet protocols for smart grids
2013cited by 4position: middledoi
Security Threats against the Communication Networks for Traffic Control Systems
2013cited by 0position: middledoi
A secure architecture for traffic control systems with SDLC protocols
2012cited by 1position: firstdoi

Grants

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Frequent collaborators

Ziyuan Cai · Florida State University6 papers (2012–2019)Xuming Zeng · Florida State University4 papers (2017–2020)Jonathan Ng · Florida State University4 papers (2015–2017)Leonard J. Tung · Florida State University3 papers (2012–2013)Yizhou Dong · Florida State University3 papers (2013–2015)Huipu Fan · Florida State University2 papers (2013–2019)Dianhong Wang · Harbin Medical University2 papers (2017–2018)Michael Steurer · Florida State University2 papers (2015–2017)Haojun Yang · Guangdong University of Technology2 papers (2017–2017)Xiaoguang Ma · University of Shanghai for Science and Technology2 papers (2013–2014)Hui Li · University of Electronic Science and Technology of China1 papers (2015–2015)Mozi Chen · Wenzhou Medical University1 papers (2020–2020)Xing Liu · University of Southampton1 papers (2019–2019)MengChu Zhou · Macau University of Science and Technology1 papers (2014–2014)Kezhong Liu · Qingdao University1 papers (2020–2020)Wei Liu · Shandong University1 papers (2014–2014)Jie Ma · Ministry of Education of the People's Republic of China1 papers (2020–2020)
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