TinyOLE: Efficient Actively Secure Two-Party Computation from Oblivious Linear Function Evaluation
Nico Döttling, Satrajit Ghosh, Jesper Buus Nielsen, Tobias Nilges, Roberto Trifiletti
Abstract
We introduce a new approach to actively secure two-party computation based on so-called oblivious linear function evaluation (OLE), a natural generalisation of oblivious transfer (OT) and a special case of the notion of oblivious polynomial evaluation introduced by Naor and Pinkas at STOC 1999. OLE works over a finite field F. In an OLE the sender inputs two field elements a ∈ F and b ∈ F, and the receiver inputs a field element x ∈ F and learns only f (x) = ax + b. Our protocol can evaluate an arithmetic circuit over a finite field F given black-box access to OLE for F. The protocol is unconditionally secure and consumes only a constant number of OLEs per multiplication gate. An OLE over a field F of size O(2 κ ) can be implemented with communication O(κ). This gives a protocol with communication complexity O(|C |κ) for large enough fields, where C is an arithmetic circuit computing the desired function. This asymptotically matches the best previous protocols, but our protocol at the same time obtains significantly smaller constants hidden by the big-O notation, yielding a highly practical protocol. Conceptually our techniques lift the techniques for basing practical actively secure 2PC of Boolean circuits on OT introduced under the name TinyOT by Nielsen, Nordholt, Orlandi and Burra at Crypto 2012 to the arithmetic setting. In doing so we develop several novel techniques for generating various flavours of OLE and combining these. We believe that the efficiency of our protocols, both in asymptotic and practical terms, establishes OLE and its variants as an important foundation for efficient actively secure 2PC.
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 64078f0f-959d-4a02-b15c-d6b56bbb917dCited by top-tier papers4
- Indistinguishability obfuscation from well-founded assumptionsAayush Jain, Huijia Lin, Amit SahaiSTOC 2021 · 223 citations
- Compressing Vector OLEElette Boyle, Geoffroy Couteau, Niv Gilboa, Yuval IshaiCCS 2018 · 220 citations
- SoK: General Purpose Compilers for Secure Multi-Party ComputationMarcella Hastings, Brett Hemenway, Daniel Noble, Steve ZdancewicS&P 2019 · 181 citations
- Efficient Pseudorandom Correlation Generators from Ring-LPNElette Boyle, Geoffroy Couteau, Niv Gilboa, Yuval Ishai et al.CRYPTO 2020 · 113 citations
Builds on1
Related papers
- Actively Secure Arithmetic Computation and VOLE with Constant Computational OverheadBenny Applebaum, Niv KonstantiniEUROCRYPT 2023 · 10 citations
- LevioSA: Lightweight Secure Arithmetic ComputationCarmit Hazay, Yuval Ishai, Antonio Marcedone, Muthuramakrishnan VenkitasubramaniamCCS 2019 · 35 citations
- The Price of Active Security in Cryptographic ProtocolsCarmit Hazay, Muthuramakrishnan Venkitasubramaniam, Mor WeissEUROCRYPT 2020 · 17 citations
- Efficient Pseudorandom Correlation Generators for Any Finite FieldZhe Li, Chaoping Xing, Yizhou Yao, Chen YuanEUROCRYPT 2025 · 15 citations
- Two-Round MPC Without Round Collapsing Revisited - Towards Efficient Malicious ProtocolsHuijia Lin, Tianren LiuCRYPTO 2022 · 1 citation
