EDBT 2026 Demo / reviewers in the wild / expert
Mahshid Riahinia
dblp:328/4449
· DBLP profile ↗
6ranked-venue papers
0as first author
6since 2021 · last 2026
0009-0006-2508-7925ORCID · corroborated
Domains — the database's venue-derived domains; a paper can count in several
Security and privacy · 6 · 6 since 2021
| Year | Publication | Venue | Position |
|---|---|---|---|
| 2026 | Post-quantum Public-Key Pseudorandom Correlation Functions for OT
Shweta Agrawal 0001, Kaartik Bhushan, Geoffroy Couteau, Mahshid Riahinia |
CRYPTO (8) | 4 |
| 2026 | Succinct Two-Round Two-Party Signing from PCFs
Lennart Braun, Geoffroy Couteau, Kelsey Melissaris, Mahshid Riahinia, Elahe Sadeghi |
CRYPTO (2) | 4 |
| 2025 | Fast Pseudorandom Correlation Functions from Sparse LPN
Lennart Braun, Geoffroy Couteau, Kelsey Melissaris, Mahshid Riahinia, Elahe Sadeghi |
ASIACRYPT (7) | 4 |
| 2024 | Fast Public-Key Silent OT and More from Constrained Naor-ReingoldabstractPseudorandom Correlation Functions (PCFs) allow two parties, given correlated evaluation keys, to locally generate arbitrarily many pseudorandom correlated strings, e.g. Oblivious Transfer (OT) correlations, which can then be used by the two parties to jointly run secure computation protocols. In this work, we provide a novel and simple approach for constructing PCFs for OT correlation, by relying on constrained pseudorandom functions for a class of constraints containing a weak pseudorandom function (wPRF). We then show that tweaking the Naor-Reingold pseudorandom function and relying on low-complexity pseudorandom functions allow us to instantiate our paradigm. We further extend our ideas to obtain efficient public-key PCFs, which allow the distribution of correlated keys between parties to be non-interactive: each party can generate a pair of public/secret keys, and any pair of parties can locally derive their correlated evaluation key by combining their secret key with the other party’s public key. In addition to these theoretical contributions, we detail various optimizations and provide concrete instantiations of our paradigm relying on the Boneh-Ishai-Passelègue-Sahai-Wu wPRF and the Goldreich-Applebaum-Raykov wPRF. Putting everything together, we obtain public-key PCFs with a throughput of 15k–40k OT/s, which is of a similar order of magnitude to the state-of-the-art interactive PCFs and about 4 orders of magnitude faster than state-of-the art public-key PCFs. As a side result, we also show that public-key PCFs can serve as a building block to construct reusable designated-verifier non-interactive zero-knowledge proofs (DV-NIZK) for NP. Combined with our instantiations, this yields simple and efficient reusable DV-NIZKs for NP in pairing-free groups. Dung Bui, Geoffroy Couteau, Pierre Meyer, Alain Passelègue, Mahshid Riahinia |
EUROCRYPT (6) | 5 |
| 2023 | Constrained Pseudorandom Functions from Homomorphic Secret Sharing
Geoffroy Couteau, Pierre Meyer, Alain Passelègue, Mahshid Riahinia |
EUROCRYPT (3) | 4 |
| 2022 | PointProofs, Revisited
Benoît Libert, Alain Passelègue, Mahshid Riahinia |
ASIACRYPT (4) | 3 |