Jiajin Hu

dblp:401/1407 · DBLP profile ↗
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1ranked-venue papers
0as first author
1since 2021 · last 2025
0009-0005-9652-5040ORCID · reported

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

Security and privacy · 1 · 1 since 2021

Expertise — from the expertise taxonomy: the topics of the expert's papers under the CCF categories. A weight counts papers with recency: 1 for a paper about the topic, 0.3 when the topic is its context, halved every five years.

Network and information security
1 paper
Hardware security and side channels · 61% Systems and software security · 30% Authentication and access control · 9%

Topics — the 4 heaviest of 4, each with the papers that count most for it

TopicWeightPapersLastEvidence papers
Hardware security and side channels › trusted execution environments
ARM TrustZone
0.912025
MaTEE: Efficiently Bridging the Semantic Gap in TrustZone via Arm Pointer Authentication · IEEE Trans. Dependable Secur. Comput. 2025
Systems and software security
operating system security
0.912025
MaTEE: Efficiently Bridging the Semantic Gap in TrustZone via Arm Pointer Authentication · IEEE Trans. Dependable Secur. Comput. 2025
Hardware security and side channels
trusted execution environments
0.912025
MaTEE: Efficiently Bridging the Semantic Gap in TrustZone via Arm Pointer Authentication · IEEE Trans. Dependable Secur. Comput. 2025
Authentication and access control
user authentication
0.312025
MaTEE: Efficiently Bridging the Semantic Gap in TrustZone via Arm Pointer Authentication · IEEE Trans. Dependable Secur. Comput. 2025

Methods — techniques the papers use, named apart from their topics

ARM pointer authentication · 0.9
YearPublicationVenuePosition
2025 MaTEE: Efficiently Bridging the Semantic Gap in TrustZone via Arm Pointer Authentication
abstract
Trusted Execution Environments (TEEs) employ hardware-based isolation mechanisms to safeguard the confidentiality and integrity of sensitive code and data. One such prevalent implementation is Arm TrustZone, which partitions the system into the secure and normal (non-secure) worlds. However, this partitioning results in the secure world having very limited visibility into the operating information of the normal world, creating a semantic gap between these two worlds. Specifically, the secure world lacks an effective user identity authentication when receiving data requests from the normal world. Consequently, malicious Client Applications (CAs) in the normal world can deceive Trusted Applications (TAs) in the secure world by utilizing elaborate request parameters, compromising the sensitive data stored by other CAs. We systematically classify these Semantic Gap Vulnerabilities (SGVs) and propose a mate system for the TEE calledMaTEEto defend against SGVs.MaTEEutilizes Arm Pointer Authentication (PA) to bind each request to the corresponding CA's identity and then verifies the identity when the CA accesses sensitive data, thereby preventing malicious request forgery. In particular,MaTEEisolates sensitive data of different CAs without modifying existing CAs and TAs. Our evaluation demonstrates thatMaTEEsuccessfully defends against SGVs with a minimal runtime overhead (2.19%).
Shiqi Liu 0006, Xiang Li 0166, Jie Wang 0138, Yongpeng Gao, Jiajin Hu
IEEE Trans. Dependable Secur. Comput.5