UltraProofs: Scalable Reed-Solomon Code Commitment
Yanpei Guo, Alex Luoyuan Xiong, Wenjie Qu, Jiaheng Zhang
Abstract
Reed-Solomon (RS) codes underpin a wide range of cryptographic protocols, from verifiable secret sharing (VSS) to blockchain data availability (DA). An RS code commitment enables a prover to distribute codeword fragments among many parties while allowing each recipient to verify that its fragment is consistent with a RS code. Existing constructions either rely on homomorphic polynomial commitments, which incur redundant commitments and expensive group operations, or use FRI-based interactive proofs, which achieve fast proving but suffer from prohibitively large communication. We present UltraProofs, a new RS code commitment framework that achieves linear-time proof generation while remaining compatible with any multilinear polynomial commitment. Our key technical contribution is an evaluationconsolidation protocol that reduces evaluation proofs at distinct RS points to a single randomized evaluation, eliminating redundant commitments and removing the need for homomorphic structure. We further design a tailored multilinear PCS, LightLigero, which achieves proof size and maintains prover time. UltraProofs attains asymptotically optimal prover complexity with concrete speedups in practice: in VSS, it reduces prover time by and proof size by compared to HydraProofs (S&P'25); in DA, it cuts per-node communication by up to relative to FRIDA (Crypto'24) while retaining similar prover cost. By decoupling verifiable RS encoding from any specific PCS instantiation, UltraProofs provides a flexible, efficient, and modular foundation for large-scale verifiable storage and distributed cryptographic systems.
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