Alireza Kavousi

dblp:262/6226 · DBLP profile ↗
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7ranked-venue papers
3as first author
7since 2021 · last 2026
0009-0004-9581-8477ORCID · corroborated

Domains — the database's venue-derived domains; a paper can count in several

Security and privacy · 6 · 2 first-author · 6 since 2021
YearPublicationVenuePosition
2026 Cryptobazaar: Private Sealed-bid Auctions at Scale
Andrija Novakovic, Alireza Kavousi, Kobi Gurkan, Philipp Jovanovic
NDSS2
2025 DSKE: Digital Signatures with Key Extraction
Zhipeng Wang 0009, Orestis Alpos, Alireza Kavousi, Harry W. H. Wong, Sze Yiu Chau, Duc Viet Le 0001, Christian Cachin
CT-RSA3
2025 BlindPerm: Efficient MEV Mitigation with an Encrypted Mempool and Permutation
abstract
Maximal Extractable Value (MEV) is a crucial challenge in blockchains and cryptocurrencies. A principal countermeasure is using encrypted mempools to hide the transaction payloads until they are committed in a block. However, the existing approaches based on encrypted mempools remain vulnerable to metadata leakage and may not provide sufficient mitigation against block producers due to their sole control in block preparation. In this paper, we propose techniques that utilize randomized permutation on the committed block, offering a multi-layer solution. With a focus on proof-of-stake (PoS) committee-based consensus, we then introduce BlindPerm, a framework that enhances an encrypted mempool with permutation and present various optimizations. Notably, we propose a construction where this enhancement comes at essentially no overhead by piggybacking on the encrypted mempool and without relying on any external entity such as randomness beacon. Further, we illustrate the effectiveness of our solutions by running simulations using historical Ethereum data.
Alireza Kavousi, Duc Viet Le 0001, Philipp Jovanovic, George Danezis
OPODIS1
2025 SoK: Dlog-Based Distributed Key Generation
abstract
Distributed Key Generation (DKG) protocols are fundamental components of threshold cryptography, enabling key generation in a trustless manner for a range of crypto-graphic operations such as threshold encryption and signing. Of particular widespread use are DKG protocols for discrete-logarithm based cryptosystems. In this Systematization of Knowledge (SoK), we present a comprehensive analysis of existing DKG protocols in the discrete-logarithm setting, with the goal of identifying cryptographic techniques and design principles that facilitate the development of secure and resilient protocols. To offer a structured overview of the literature, we adopt a modular approach and classify DKG protocols based on their underlying network assumption and cryptographic tools. These two factors determine how DKG protocols manage secret sharing and reach consensus as their essential building blocks. We also highlight various insights and suggest future research directions that could drive further advancements in this area.
Renas Bacho, Alireza Kavousi
SP2
2024 Timed Secret Sharing
Alireza Kavousi, Aydin Abadi, Philipp Jovanovic
ASIACRYPT (7)1
2024 Poster: Byzantine Discrepancy Attacks against Calendar, Set-intersection and Nations
abstract
Nowadays Communication Security usually refers to digital communication and in particular via the Internet. We explain why the topic should be broadened to include any communication, in particular when done in person, e.g., with co-authors, colleagues, reporters, etc.
Yvo Desmedt, Alireza Kavousi, Aydin Abadi
CCS2
2024 SoK: Public Randomness
abstract
Public randomness is a fundamental component in many cryptographic protocols and distributed systems and often plays a crucial role in ensuring their security, fairness, and transparency properties. Driven by the surge of interest in blockchain and cryptocurrency platforms and the usefulness of such a building block in those areas, designing secure protocols to generate public randomness in a distributed manner has received considerable attention in recent years. This paper presents a systematization of knowledge on the topic of public randomness with a focus on cryptographic tools providing public verifiability and key themes underlying these systems. We provide concrete insights on how state-of-the-art protocols achieve this task efficiently in an adversarial setting and present various research gaps that may be of interest for future research.
Alireza Kavousi, Zhipeng Wang 0009, Philipp Jovanovic
EuroS&P1