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Cryptology ePrint Archive

Improved Dual Attack and Trapdoor Sampling via Quantum Rejection Sampling Verifying Consensus Protocols from LLM-assisted TLA$^+$: A Case Study of Byzantine Reliable Broadcast ThriftyMPC: Reducing the Cost of Large-Scale MPC in the Cloud Asynchronous Lagrange-Based Threshold FHE with Smaller Modulus Overhead Breaking ACDGV MinRank Gabidulin encryption schemes over matrix codes Explicit cost analysis of Toom-4 multiplication for incomplete NTT in lattice-based cryptography Security Analysis on a Blockchain-based Public-Key Authenticated Searchable Encryption Scheme 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 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Improved Garbled RAM via Garbled Merge
Can Liu, Tsinghua University, University of Illinois Urbana-Cham · 2026-04-18 · via Cryptology ePrint Archive

Paper 2026/761

Improved Garbled RAM via Garbled Merge

Lenny Liu, University of Illinois Urbana-Champaign

Ning Luo, University of Illinois Urbana-Champaign

David Heath, University of Illinois Urbana-Champaign

Abstract

Consider the problem of merging inside a garbled circuit (GC) two arrays of $w$-bit elements, yielding a single length-$n$ array. This garbled merge problem is core to garbled random access memory (GRAM), a technique that enables efficient garbling of general-purpose programs. We present a novel symmetric-key-based garbled merge that achieves a garbling size of $(w + 1) \cdot n \cdot \lambda$ bits, providing both asymptotic and concrete improvements over the state of the art. By applying our garbled merge, we obtain a symmetric-key GRAM of size $O(n \lg^3 n \cdot \lambda) \cdot \omega(1)$ for a word RAM program that manipulates words of size $\Theta(\lg n)$ bits and halts within $n$ steps, improving over the previous best result (Heath et al., CRYPTO'23) by an $O(\lg \lg n)$ factor. This communication cost was previously only achieved under the public-key-style DDH assumption (Gu et al., CRYPTO'25). We implement our construction, and our evaluation shows that our garbled merge reduces the communication cost over the DDH-based merge by about $3\times$.

BibTeX

@misc{cryptoeprint:2026/761,
      author = {Can Liu and Lenny Liu and Ning Luo and David Heath},
      title = {Improved Garbled {RAM} via Garbled Merge},
      howpublished = {Cryptology {ePrint} Archive, Paper 2026/761},
      year = {2026},
      url = {https://eprint.iacr.org/2026/761}
}