BABE: Verifying Proofs on Bitcoin Made 1000x Cheaper
Sanjam Garg, Dimitris Kolonelos, Mikhail Sergeevitch, Srivatsan Sridhar, David Tse
Abstract
Endowing Bitcoin with the ability to verify succinct proofs has been a longstanding problem with important applications such as scaling Bitcoin and allowing the Bitcoin asset to be used in other blockchains trustlessly. It is a challenging problem due to the lack of expressiveness in the Bitcoin scripting language and the small Bitcoin block space. BitVM2 [LAA + 25] is the state-of-the-art verification protocol for Bitcoin used in several mainnets and testnets [Bit25a, Cit25, BOB25a], but it suffers from very high on-chain Bitcoin transaction fees in the unhappy path (over $14, 000 in a recent experiment [LAA + 25]). Recent research BitVM3 dramatically reduces this on-chain cost by using a garbled SNARK verifier circuit to shift most of the verification off-chain [Rub24, Lin24], but each garbled circuit is 42 GiBytes in size, so the off-chain storage and setup costs are huge. This paper introduces BABE, a new proof verification protocol on Bitcoin, which preserves BitVM3's savings of on-chain costs but reduces its off-chain storage and setup costs by three orders-of-magnitude. BABE uses a witness encryption scheme for linear pairing relations [GKPW24] to verify Groth16 proofs. Since Groth16 verification involves non-linear pairings, this witness encryption scheme is augmented with a secure two-party computation protocol implemented using a very efficient garbled circuit for scalar multiplication on elliptic curves. The design of this garbled circuit builds on the recent work of Argo MAC [EL26], a garbling primitive that efficiently computes homomorphic MACs on such curves.
Ask about this paper
Your agent reads all of it.
Lune indexed this paper to the last equation, along with the top-tier papers that cite it. Ask a question and the answer quotes them.
Your agent calls
Luneget_paper_fulltext
Free to start. No credit card required.
Terminal
Install the CLIlune papers fulltext 7317c6e6-d2db-4cc4-b6a0-52ad17de55a1Cited by top-tier papers1
Ask how each one uses itBuilds on12
- Threshold Encryption with Silent SetupSanjam Garg, Dimitris Kolonelos, Guru-Vamsi Policharla, Mingyuan WangCRYPTO 2024 · 31 citations
- Succinct Zero-Knowledge Batch Proofs for Set AccumulatorsMatteo Campanelli, Dario Fiore, Semin Han, Jihye Kim et al.CCS 2022 · 22 citations
- How to Prove Statements Obliviously?Sanjam Garg, Aarushi Goel, Mingyuan WangCRYPTO 2024 · 22 citations
- Efficiently-Thresholdizable Batched Identity Based Encryption, with ApplicationsAmit Agarwal, Rex Fernando, Benny PinkasCRYPTO 2025 · 12 citations
- Bridging Bitcoin to Second Layers via BitVM2Robin Linus Woll, Lukas Aumayr, Zeta Avarikioti, Matteo Maffei et al.USENIX Security 2026 · 6 citations
Related papers
- Duty-Free Bits: Projectivizing Garbling SchemesNakul Khambhati, Anwesh Bhattacharya, David HeathCCS 2026
- Garuda and Pari: Faster and Smaller SNARKs via Equifficient Polynomial CommitmentsMichel Dellepere, Pratyush Mishra, Alireza ShirzadUSENIX Security 2026 · 12 citations
- Bulletproofs: Short Proofs for Confidential Transactions and MoreBenedikt Bünz, Jonathan Bootle, Dan Boneh, Andrew Poelstra et al.S&P 2018 · 1,285 citations
- Cryptographic Oracle-based Conditional PaymentsVarun Madathil, Sri Aravinda Krishnan Thyagarajan, Dimitrios Vasilopoulos, Lloyd Fournier et al.NDSS 2023
- Recursion over Public-Coin Interactive Proof Systems; Faster Hash VerificationAlexandre Belling, Azam Soleimanian, Olivier BégassatCCS 2023 · 5 citations
