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Cryptology ePrint Archive

Asynchronous Lagrange-Based Threshold FHE with Smaller Modulus Overhead Breaking ACDGV MinRank Gabidulin encryption schemes over matrix codes Icy-DVRF: A Distributed Verifiable Random Function based on FROST signatures Frobenius-UOV: A Very Efficient Multivariate Public Key Signature Scheme Revisiting Linear Subspace Trails in Poseidon A New Multiscalar Multiplication Method Resistant to Timing Attacks Device Binding for Anonymous Credentials on Legacy Phones Beyond Quadratic: Unlocking Pseudorandomness with Quartic Character Multi-leveled and ISA/IEC 62443-aware Certificate Transparency to Protect the PKI Service Supply Chain of Operational Technology rBFT: a Revamped Two-Stage BFT from Delegated Committee Delving Deep into Security Guarantees against Integral Distinguishers with Applications to PRESENT, TWINE and LBLOCK On the Communication Complexity of Sleepy Consensus Operationalising Post‑Quantum TLS: Automated Configuration Profiling and Hybrid PQC Deployment in Financial Infrastructure Enhancing Blockchain Proof of Stake with Active Weighted Signatures: The ADAPT Framework Threshold FHE with Short Decryption Shares without a Semi-trusted Server Efficient Bootstrapping in Fully Homomorphic Encryption for Matrix Arithmetic YsPIR: HE-Based Single-Server Private Information Retrieval with Low Communication Cost and High Throughput Black-box validation of Falcon key generation under numerical instability Tight Lattice-Based Signatures without Trapdoors from Search LWE Formalizing Blockchain PQC Signature Transition: How to Outpace Quantum Adversaries Optimized G+G Signature Storing Less in-the-Head: An Area-Efficient Hardware Architecture for SDitH-v2 SoK: Private LLM Inference using Approximate Homomorphic Encryption BitVM3: Efficient Bitcoin Bridges via Garbled Circuits Private Function Evaluation with Linear Complexity Obscura: Privacy-Preserving Protocol for the Algorand Blockchain Using LSAG Ring Signatures Cryptanalysis of Definite and Indefinite 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Beyond-Birthday-Bound Security with HCTR2: Cascaded Construction and Tweak-based Key Derivation From Matrix to Polynomial NTRU FHE: Enabling Amortized Bootstrapping via Sparse Keys Adaptive NIKE for Unbounded Parties Hyperion: Private Token Sampling with Homomorphic Encryption TSS-PV: Traceable Secret Sharing with Public Verifiability A Graph-Theoretic Framework for Randomness Optimization in First-Order Masked Circuits Auntie: Unobservable Contracts from Zerocash and Trusted Execution Environments Fast Batch Matrix Multiplication in Ciphertexts Introducing GRAFHEN: GRoup-bAsed Fully Homomorphic Encryption without Noise Coppercloud: Blind Server-Supported RSA Signatures Threshold Public-Key Encryption: Definitions, Relations, and CPA-to-CCA Transforms On the $\gamma$-Spreadness of Average-Case to Worst-Case Transformations On the Regularity of the Generalized Birthday Problem The Pipes Model for Latency and Throughput Analysis Permutation-Based Hash from Non-Idealized Assumptions: Adding Feed-Forward to Sponge Secret-Key PIR from Random Linear Codes K-Linkable Ring Signatures and Applications in Generalized Voting Dynamic zk-SNARKs (with applications to sparse zk-SNARKs and IVC) ProxCode: Efficient Proximity Searchable Encryption from Error Correcting Codes DLFA: Deep Learning based Fault Analysis against Block Ciphers
Computer-Aided Proof for Extended Generalized Feistel Networks
Yuchao Chen · 2026-05-26 · via Cryptology ePrint Archive

Paper 2026/1057

Computer-Aided Proof for Extended Generalized Feistel Networks

, School of Cyber Science and Technology, Shandong University, Qingdao, China, State Key Laboratory of Cryptography and Digital Economy Security, Shandong University, Qingdao, 266237, China, Key Laboratory of Cryptologic Technology and Information Security, Ministry of Education, Shandong University, Jinan, China

Chun Guo, School of Cyber Science and Technology, Shandong University, Qingdao, China, State Key Laboratory of Cryptography and Digital Economy Security, Shandong University, Qingdao, 266237, China, Key Laboratory of Cryptologic Technology and Information Security, Ministry of Education, Shandong University, Jinan, China

Muzhou Li, School of Cryptologic Science and Engineering, Shandong University, Jinan, China, State Key Laboratory of Cryptography and Digital Economy Security, Shandong University, Qingdao, 266237, China, Key Laboratory of Cryptologic Technology and Information Security, Ministry of Education, Shandong University, Jinan, China, Quancheng Laboratory, Jinan, 250103, China

Shuo Peng, School of Cyber Science and Technology, Shandong University, Qingdao, China, State Key Laboratory of Cryptography and Digital Economy Security, Shandong University, Qingdao, 266237, China, Key Laboratory of Cryptologic Technology and Information Security, Ministry of Education, Shandong University, Jinan, China

Hao Lei, School of Cyber Science and Technology, Shandong University, Qingdao, China, State Key Laboratory of Cryptography and Digital Economy Security, Shandong University, Qingdao, 266237, China, Key Laboratory of Cryptologic Technology and Information Security, Ministry of Education, Shandong University, Jinan, China

Guang Zeng, Huawei technologies, Beijing, China

Meiqin Wang, School of Cyber Science and Technology, Shandong University, Qingdao, China, State Key Laboratory of Cryptography and Digital Economy Security, Shandong University, Qingdao, 266237, China, Key Laboratory of Cryptologic Technology and Information Security, Ministry of Education, Shandong University, Jinan, China, Quancheng Laboratory, Jinan, 250103, China

Abstract

(Multi-branch) Generalized Feistel Network~(GFN) enables the construction of block ciphers from non-linear components with small domains, and has been adopted in various block ciphers. Berger et al. (SAC 2013) introduced the Extended Generalized Feistel Network~(EGFN), which unified and extended existing Feistel-like structures by using a matrix representation. Given an arbitrary matrix, it is typically difficult to determine how many EGFN rounds are sufficient for pseudorandom permutation (PRP) and strong PRP (SPRP) security. Remarkably, security proofs for structures with a larger number of branches have to analyze a huge amount of collision events, which is overly complicated and prone to errors. To remedy this situation, we present AutoEGFN, a computer-aided proof tool that determines the number of rounds sufficient for PRP and SPRP security for various variants of EGFN. The tool operates by calculating three parameters: $r_1$, $r_2$, and $r_3$. The validity and soundness of AutoEGFN are formally established by a detailed security proof. To demonstrate the effectiveness of AutoEGFN, we have applied it to multiple structures such as Type-1/2 GFN (Zheng et al., CRYPTO 1989), YI11's Type-1 GFN (Yanagihara and Iwata, CANS 2011), DFLM19's GFN (Derbez et al., FSE 2019), DDGP22's GFN (Delaune et al., INDOCRYPT 2022), Type-1.x GFN (Yanagihara and Iwata, IEICE 2014), SH/TH GFN (Yanagihara and Iwata, CANS 2011), Nyberg's GFN (Nyberg, ASIACRYPT 1996), SM's GFN (Suzaki and Minematsu, FSE 2010), and BMT's EGFN (Berger et al., SAC 2013). As a result, we provide a systematic analysis of the (S)PRP security for Type-1 and Type-2 structures for different numbers of branches. Our tool efficiently determines the concrete number of rounds required to ensure PRP and SPRP security for EGFNs with different branch numbers. For comparison, previous work only proved the (S)PRP security for 8- and 16-branch BMT's EGFN. Our tool completes the proof within several minutes, even for variants with $32$ branches. Meanwhile, for the other structures, we provide the first concrete (S)PRP security proofs without any restrictions on their permutation layers. Furthermore, AutoEGFN will significantly contribute to the enhancement of EGFN designs and implementations in various cryptographic applications.