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Cryptology ePrint Archive

Interleaving Stability for Mutual Correlated Agreement and Curve Decodability Formalizing and Strengthening the Security Proof of NTOR Verifiable Anomaly and Similarity Detection Using Matrix Profile in Private Time-series Adaptor Signature Schemes with Deniable Presignatures Privacy Coins Under Viewing Key Compromise Adaptively-Secure Flexible and Identity-Based Broadcast Encryption from Decomposed LWE MERIDIAN: A Toroid-Inspired Permutation Block Cipher for Constrained Environments Toward Practical Fair Data Exchange: Eliminating In-Circuit Public-Key Operations Fault Injection Attacks Against zkSTARKs Scale, Round, Break: Simple Leakage Attacks on Secret Sharing Schemes Private Delegation of (Non-)Membership Proof Updates in Cryptographic Accumulators Beyond Binary: crosscorrelation of Cubic, Quartic and Quintic Character Sequences ZEE200: Zero Knowledge for Everything and Everyone @ 200 KHz A Post-Quantum Accountable Sanitizable Signature Scheme Based on Unbalanced Oil and Vinegar Better Usability: Leakage-Resistant AEADs from Single-length Blockciphers TieredOMap: Skewness-Aware Oblivious Map From Rerandtopia to Interceptopia, the Anamorphic Encryption Saga Rises Non-Adaptive Programmable PRFs and Applications to Stacked Garbling Practical Post-Quantum Secure Publicly Verifiable Secret Sharing and Applications Mosaic: Practical Malicious Security for Garbled Circuits on Bitcoin Efficient Bootstrapping of Matrices in FHE Decomposing Multiplication: A Vertical Packing Approach for Faster TFHE Formal Verification, Integration and Physical Evaluation of Prime-Field Masking on Silicon New Techniques for Communication-Efficient Secure Comparison Protocols Pairing-Based Verifiable Shuffles with Logarithmic-Size Proofs Verifying Provenance of Digital Media: Security Analysis of C2PA and its Implementation EQuADiSE: Efficient Quantum-safe Adaptive Distributed Symmetric-key Encryption Secure and Updatable Single Password Authentication Batch-Puncturing Circuit CP-ABE (and More) from Lattices Panther: Robust Hybrid KEM Combiners via Structural Splicing
Pushing Collision Attacks on SHA-2 to 39 Steps
Yingxin Li, East China Normal University · 2026-06-01 · via Cryptology ePrint Archive

Paper 2026/1120

Pushing Collision Attacks on SHA-2 to 39 Steps

Zhuolong Zhang, Shandong University

Muzhou Li, Shandong University

Fukang Liu, Institute of Science Tokyo

Haifeng Qian, East China Normal University

Jinwei Zhu, East China Normal University

Abstract

The SHA-2 family is a U.S. federal standard and mainly includes SHA-256 and SHA-512. In particular, SHA-256 plays a central role in real-world applications and is widely regarded as one of the most important hash functions in use today. At CRYPTO 2026, Li et al. proposed collision attacks up to 37-step SHA-2, but they could not reach 38 steps due to the low-probability uncontrolled part in the corresponding differential characteristics. In this paper, we propose an improved search procedure to find high-quality differential characteristics for 38-step SHA-256 and SHA-512, respectively. Exploiting the special shape of the 38-step differential characteristics, the meet-in-the-middle method to fulfill the corresponding differential conditions is extremely memory-efficient. Consequently, we successfully achieve the first 38-step collision attack on both SHA-256 and SHA-512, whose time complexity is $2^{104.3}$ and $2^{125.4}$, respectively. The memory complexity of the 38-step collision attack is negligible. The methods are also applied to the 36-step and 37-step collision attacks on SHA-2 published at CRYPTO 2026, leading to a significant improvement in both time and memory complexity. In particular, the time complexity of the collision attack on 36-step SHA-256 is only $2^{57}$ and the memory complexity is negligible. We have verified this collision attack by providing the first colliding message pair for 36-step SHA-256. More remarkably, we apply the new method to 39 steps of SHA-2 and obtain the first effective collision attack on 39-step SHA-512, with a time complexity of $2^{178}$ and negligible memory complexity. However, the method does not yield an effective collision attack on 39-step SHA-256 due to the same issue arising from the low-probability uncontrolled part. Overall, this work further pushed the limit of memory-efficient collision attacks on round-reduced SHA-2 and significantly advances the state of the art.

BibTeX

@misc{cryptoeprint:2026/1120,
      author = {Yingxin Li and Zhuolong Zhang and Muzhou Li and Fukang Liu and Haifeng Qian and Jinwei Zhu},
      title = {Pushing Collision Attacks on {SHA}-2 to 39 Steps},
      howpublished = {Cryptology {ePrint} Archive, Paper 2026/1120},
      year = {2026},
      url = {https://eprint.iacr.org/2026/1120}
}