Kui Geng

dblp:158/8135 · DBLP profile ↗
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9ranked-venue papers
0as first author
4since 2021 · last 2025
—ORCID · none

Domains — the database's venue-derived domains; a paper can count in several

Computer networks · 3Security and privacy · 3 · 2 since 2021Systems, architecture and hardware · 1Graphics, computer vision, multimedia, augmented reality and games · 1 · 1 since 2021Applied, interdisciplinary, general and emerging computing · 1 · 1 since 2021
YearPublicationVenuePosition
2025 SEHAP: Secure and Efficient Handover Authentication Protocol in LEO Satellite Non-Terrestrial Networks
abstract
LEO satellite non-terrestrial networks (NTN) utilize satellites in Low Earth Orbit (LEO) to dynamically establish global communication service and own significant promise. The dynamic nature of LEO satellite NTN necessities efficient handover authentication protocols. However existing schemes cannot be directly applied in LEO satellite NTN because of their low efficiency and security. To address these problems, we propose a handover authentication protocol to quickly and securely authenticate the user’s identity during the handover process. In our scheme, we incorporate an implicit session-bound random challenge to facilitate mutual authentication and key agreement between the User Equipments (UEs) and satellites. To improve authentication efficiency, we propose a batch handover mechanism to transfer the necessary security contexts, largely reducing the handover authentication cost. We verify our protocol’s security using BAN logic and Tamarin prover. The performance evaluation shows that SEHAP outperforms other schemes in both communication and computational efficiency in LEO satellite NTN.
Yunchuan Guo, Jing Wang 0174, Kui Geng, Zifu Li, Fenghua Li 0001, Liang Fang 0009
ICASSP3
2025 Rule Generation for Anomalous Behaviors Detection in Enterprises: A Few-Shot Learning Approach via Chain-of-Thoughts
Xin Bao, Yunchuan Guo, Xinyi Shi, Kui Geng, Wenlong Kou, Zifu Li
ICIC (7)4
2023 On-Demand Allocation of Cryptographic Computing Resource with Load Prediction
Xiaogang Cao, Fenghua Li 0001, Kui Geng, Yingke Xie, Wenlong Kou
ICICS3
2023 A Certificateless Conditional Anonymous Authentication Scheme for Satellite Internet of Things
Minqiu Tian, Fenghua Li 0001, Kui Geng, Wenlong Kou, Chao Guo 0002
ICICS3
2020 Dynamic countermeasures selection for multi-path attacks
Fenghua Li 0001, Siyuan Leng, Yunchuan Guo, Kui Geng, Zhen Wang 0013, Liang Fang 0009
Comput. Secur.5
2018 Achieving Personalized k-Anonymity against Long-Term Observation in Location-Based Services
abstract
Location privacy continues to attract significant attentions from both industry and academia in recent years. However, Location Based Service (LBS) servers or some other adversaries who can monitor a particular user's historical and current status in a long-term way may likely infer user's location privacy. To solve this problem, we propose a Longterm Observation-aware Dummy Selection (LODS) algorithm to achieve k-anonymity for users in LBSs. Different from existing approaches, the LODS takes the historical anonymity sets into account, since mobile users may query LBSs at certain places such as home or office. LODS selects candidate sets containing dummy locations with less number of occurrences firstly, in order to achieve the preferred distribution. Then, LODS further filters out candidate sets with smaller entropy. Finally, we choose the anonymity set with highest Quality of Service (QoS) as the result. Extensive experiment indicates our algorithm can protect user's location privacy effectively against long-term observation, and satisfy user's QoS requirement at the same time.
Fenghua Li 0001, Yahong Chen, Ben Niu 0001, Yuanyuan He 0002, Kui Geng, Jin Cao 0001
GLOBECOM5
2018 Real-Time Data Incentives for IoT Searches
abstract
Effectively collecting real-time data is a fundamental problem in IoT (Internet of Things) searches. In the IoT, most data are linked with the owner's private information and cannot be publicly released on the Internet. This invalidates the use of crawlers to collect data in IoT searches. As a result, effectively motivating potential data providers (PDPs) to provide real-time on demand data becomes a key requirement for the development of an IoT search service. To address this problem, we acknowledge the realistic assumption of incomplete information, and propose a buyout-auction framework, with the constraint of QoD (Quality of Data), to collect real-time data and maximize bidders' payoff. Simulation results demonstrate that our approach can drive PDPs to participate in bidding in a timely manner and provide data under the constraints of QoD to IoT search service providers.
Yunchuan Guo, Liang Fang 0009, Kui Geng, Lihua Yin, Fenghua Li 0001
ICC3
2017 Pricing Privacy Leakage in Location-Based Services
Fenghua Li 0001, Liang Fang 0009, Ben Niu 0001, Kui Geng, Hui Li 0006
WASA5
2014 A Secure Data Self-Destructing Scheme in Cloud Computing
abstract
With the rapid development of versatile cloud services, it becomes increasingly susceptible to use cloud services to share data in a friend circle in the cloud computing environment. Since it is not feasible to implement full lifecycle privacy security, access control becomes a challenging task, especially when we share sensitive data on cloud servers. In order to tackle this problem, we propose a key-policy attribute-based encryption with time-specified attributes (KP-TSABE), a novel secure data self-destructing scheme in cloud computing. In the KP-TSABE scheme, every ciphertext is labeled with a time interval while private key is associated with a time instant. The ciphertext can only be decrypted if both the time instant is in the allowed time interval and the attributes associated with the ciphertext satisfy the key's access structure. The KP-TSABE is able to solve some important security problems by supporting user-defined authorization period and by providing fine-grained access control during the period. The sensitive data will be securely self-destructed after a user-specified expiration time. The KP-TSABE scheme is proved to be secure under the decision l-bilinear Diffie-Hellman inversion (l-Expanded BDHI) assumption. Comprehensive comparisons of the security properties indicate that the KP-TSABE scheme proposed by us satisfies the security requirements and is superior to other existing schemes.
Jinbo Xiong, Ximeng Liu, Jianfeng Ma 0001, Qi Li 0011, Kui Geng, Patrick S. Chen
IEEE Trans. Cloud Comput.6