EDBT 2026 Demo / reviewers in the wild / expert
Sanketh Menda
dblp:213/7956
· DBLP profile ↗
6ranked-venue papers
2as first author
5since 2021 · last 2025
0000-0003-2216-2425ORCID · corroborated
Domains — the database's venue-derived domains; a paper can count in several
Security and privacy · 5 · 2 first-author · 5 since 2021Human-computer interaction and ubiquitous computing · 1 · 1 since 2021Theory of computation · 1
| Year | Publication | Venue | Position |
|---|---|---|---|
| 2025 | The OCH Authenticated Encryption SchemeabstractWe specify OCH, the first authenticated encryption with associated data scheme built to provide 128-bit multi-user AE security, 128-bit context commitment security, and 256-bit nonces with optional nonce privacy. It therefore addresses pressing limitations of currently widely-deployed schemes. We construct and formally analyze the security of OCH in a modular fashion, with transforms that are of broader applicability. On Intel Raptor Lake CPUs, OCH using the Areion permutation family has a peak encryption speed of 0.62 cycles per byte (cpb), not far off from AES128-GCM (0.38cpb) and outperforming both ChaCha20/Poly1305 (1.63cpb) and TurboSHAKE128-Wrap (3.52cpb). Sanketh Menda, Mihir Bellare, Viet Tung Hoang, Julia Len, Thomas Ristenpart |
CCS | 1 |
| 2024 | Robust AE With Committing Security
Viet Tung Hoang, Sanketh Menda |
ASIACRYPT (9) | 2 |
| 2024 | Private Hierarchical Governance for Encrypted MessagingabstractThe increasing harms caused by hate, harassment, and other forms of abuse online have motivated major platforms to explore hierarchical governance. The idea is to allow communities to have designated members take on moderation and leadership duties; meanwhile, members can still escalate issues to the platform. But these promising approaches have only been explored in plaintext settings where community content is public to the platform. It is unclear how one can realize hierarchical governance in the huge and increasing number of online communities that utilize end-to-end encrypted (E2EE) messaging for privacy.We propose private hierarchical governance systems. These should enable similar levels of community governance as in plaintext settings, while maintaining cryptographic privacy of content and governance actions not reported to the platform. We design the first such system, taking a layered approach that adds governance logic on top of an encrypted messaging protocol; we show how an extension to the message layer security (MLS) protocol suffices for achieving a rich set of governance policies. Our approach allows developers to rapidly prototype new governance features, taking inspiration from a plaintext system called PolicyKit. We build a prototype E2EE messaging system called MlsGov that supports content-based community and platform moderation, elections of community moderators, votes to remove abusive users, and more. Armin Namavari, Barry Wang, Sanketh Menda, Ben Nassi, Nirvan Tyagi, James Grimmelmann, Amy X. Zhang, Thomas Ristenpart |
SP | 3 |
| 2023 | Context Discovery and Commitment Attacks - How to Break CCM, EAX, SIV, and More
Sanketh Menda, Julia Len, Paul Grubbs, Thomas Ristenpart |
EUROCRYPT (4) | 1 |
| 2023 | "Is Reporting Worth the Sacrifice of Revealing What I've Sent?": Privacy Considerations When Reporting on End-to-End Encrypted Platforms
Leijie Wang, Ruotong Wang 0002, Sterling Williams-Ceci, Sanketh Menda, Amy X. Zhang |
SOUPS | 4 |
| 2020 | Computations with greater quantum depth are strictly more powerful (relative to an oracle)abstractA conjecture of Jozsa (arXiv:quant-ph/0508124) states that any polynomial-time quantum computation can be simulated by polylogarithmic-depth quantum computation interleaved with polynomial-depth classical computation. Separately, Aaronson conjectured that there exists an oracle O such that BQP O ≠ (BPPBQNC) O . These conjectures are intriguing allusions to the unresolved potential of combining classical and low-depth quantum computation. In this work we show that the Welded Tree Problem, which is an oracle problem that can be solved in quantum polynomial time as shown by Childs et al. (arXiv:quant-ph/0209131), cannot be solved in BPPBQNC, nor can it be solved in the class that Jozsa describes. This proves Aaronson’s oracle separation conjecture and provides a counterpoint to Jozsa’s conjecture relative to the Welded Tree oracle problem. More precisely, we define two complexity classes, HQC and JC whose languages are decided by two different families of interleaved quantum-classical circuits. HQC contains BPPBQNC and is therefore relevant to Aaronson’s conjecture, while JC captures the model of computation that Jozsa considers. We show that the Welded Tree Problem gives an oracle separation between either of {JC, HQC} and BQP. Therefore, even when interleaved with arbitrary polynomial-time classical computation, greater ”quantum depth” leads to strictly greater computational ability in this relativized setting. Matthew Coudron, Sanketh Menda |
STOC | 2 |