惯性聚合 高效追踪和阅读你感兴趣的博客、新闻、科技资讯
阅读原文 在惯性聚合中打开

推荐订阅源

博客园 - 三生石上(FineUI控件)
WordPress大学
WordPress大学
S
SegmentFault 最新的问题
小众软件
小众软件
T
Tailwind CSS Blog
博客园 - 聂微东
OSCHINA 社区最新新闻
OSCHINA 社区最新新闻
人人都是产品经理
人人都是产品经理
V
Visual Studio Blog
罗磊的独立博客
有赞技术团队
有赞技术团队
奇客Solidot–传递最新科技情报
奇客Solidot–传递最新科技情报
让小产品的独立变现更简单 - ezindie.com
让小产品的独立变现更简单 - ezindie.com
Jina AI
Jina AI
量子位
云风的 BLOG
云风的 BLOG
Recent Announcements
Recent Announcements
Hugging Face - Blog
Hugging Face - Blog
P
Proofpoint News Feed
N
Netflix TechBlog - Medium
GbyAI
GbyAI
钛媒体:引领未来商业与生活新知
钛媒体:引领未来商业与生活新知
腾讯CDC
美团技术团队

Cryptology ePrint Archive

Fast Isogeny Evaluation on Binary Curves Quick Draw Queries: Lightweight Searchable Public-key Ciphertexts with Hidden Structures via Non-Interactive Key Exchange A Constructive Treatment of Authentication Boolean Arithmetic over $\mathbb{F}_2$ from Group Commutators HAWK with Hint: Algebraic Key Recovery from Side-Channel Leakage Post-Quantum Secure k-Times Traceable Ring Signature A Key Schedule Design and Evaluation under Boundary Round-Key Leakage 2G2T: Constant-Size, Statistically Sound MSM Outsourcing Proximity Signatures Breaking Optimized HQC: The First Cache-Timing Full Decryption Oracle Key-Recovery Attack in Post-Quantum Cryptography Efficient Partially Blind Signatures from Isogenies Evaluating PQC KEMs, Combiners, and Cascade Encryption via Adaptive IND-CPA Testing Using Deep Learning High-Throughput Side-Channel-Protected Stream Cipher Hardware for 6G Systems Efficient e = 3 Threshold RSA via Integer Coordinates for Intel SGX Zeal: PIR for Non-Cooperative Databases VEIL: Lightweight Zero-Knowledge for Hash-Based Multilinear Proof Systems Witness-Indistinguishable Arguments of Knowledge and One-Way Functions The many faces of Schnorr: a touch-up Open Problems in List Decoding and Correlated Agreement Compressed Key Exchange Protocol from Orientations of Large Discriminant Using AVX-512 SPLASH: SPeculative Leakage-Adaptive Secure Hardware An Efficient Identity-Based Blind Signature Scheme from SM9 Efficient Batch Threshold Encryption Using Partial Fraction Techniques A note on the Unsuitability of LIGA for Linkable Ring Signatures: The perils of non-commutativity Verification Facade: Masquerading Insecure Cryptographic Implementations as Verified Code Cryptographic Implications of Worst-Case Hardness of Time-Bounded Kolmogorov Complexity Efficient Merkle-Tree Consistent Accumulator FLOSS: Fast Linear Online Secret-Shared Shuffling Which Privacy Blanket is Optimal in the Shuffle Model? Applications of Bruhat-Chevalley-Renner Decomposition to Metric-Aware Code-Based Cryptography
Efficiency Improvement of Deniable FHE: Tighter Deniabili...
Towa Toyooka, University of Electro-Communications · 2026-03-26 · via Cryptology ePrint Archive

Paper 2026/597

Efficiency Improvement of Deniable FHE: Tighter Deniability Analysis and TFHE-based Construction

Yohei Watanabe, University of Electro-Communications, National Institute of Advanced Industrial Science and Technology

Mitsugu Iwamoto, University of Electro-Communications

Abstract

Fully homomorphic encryption (FHE) is a cryptographic scheme that can take ciphertexts as inputs and compute a new ciphertext of a function of the underlying messages without decryption. FHE has been attracting attention along with the growing interest in privacy-preserving technologies. In terms of privacy-preserving technology, deniable encryption is also important. Deniable encryption enables a user, who may be forced to reveal the messages corresponding to the user's public ciphertexts, to lie about which messages the user encrypted. Agrawal et al. (CRYPTO 2021) introduced deniable FHE (DFHE) that combines FHE with deniable encryption, and proposed a transformation from an FHE scheme that satisfies specific special requirements, called special FHE, to a DFHE scheme. They also showed a construction of a special FHE scheme based on the BGV (Brakerski--Gentry--Vaikuntanathan) scheme. However, in the construction by Agrawal et al., one must store all the extensive randomness used for encryption in order to lie, and a bootstrapping operation, which takes a long time to execute, is a bottleneck in execution speed. In this paper, we show that by providing a tighter upper bound on deniability, we can reduce the size of the stored randomness and the required number of bootstrapping in the construction by Agrawal et al. In addition, we show that TFHE (Chillotti et al., J. Cryptol., 2020; Joye, CT-RSA 2024), which is known as a FHE scheme with fast bootstrapping, satisfies the requirements of special FHE, and thus can realize a faster DFHE scheme than the BGV-based construction.

BibTeX

@misc{cryptoeprint:2026/597,
      author = {Towa Toyooka and Yohei Watanabe and Mitsugu Iwamoto},
      title = {Efficiency Improvement of Deniable {FHE}: Tighter Deniability Analysis and {TFHE}-based Construction},
      howpublished = {Cryptology {ePrint} Archive, Paper 2026/597},
      year = {2026},
      url = {https://eprint.iacr.org/2026/597}
}