Juan Villacis

dblp:258/4147 · also Juan Villacis-Llobet · DBLP profile ↗
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5ranked-venue papers
1as first author
5since 2021 · last 2025
0009-0006-0110-8613ORCID · corroborated

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

Systems, architecture and hardware · 1 · 1 since 2021Security and privacy · 1 · 1 since 2021Theory of computation · 1 · 1 first-author · 1 since 2021

Expertise — from the expertise taxonomy: the topics of the expert's papers under the CCF categories. A weight counts papers with recency: 1 for a paper about the topic, 0.3 when the topic is its context, halved every five years.

Computer architecture, parallel and distributed computing, and storage systems
1 paper
Distributed systems · 100%
Network and information security
1 paper
Blockchain and cryptocurrency security · 62% Network security · 19% Privacy and data protection · 19%

Topics — the 8 heaviest of 8, each with the papers that count most for it

TopicWeightPapersLastEvidence papers
Blockchain and cryptocurrency security › blockchain protocols
ethereum
0.912025
Deanonymizing Ethereum Validators: The P2P Network Has a Privacy Issue · USENIX Security Symposium 2025
Distributed systems › consensus › fault-tolerant consensus
asynchronous consensus
0.912025
DAG-based Consensus with Asymmetric Trust · PODC 2025
Distributed systems
consensus
0.912025
DAG-based Consensus with Asymmetric Trust · PODC 2025
Distributed systems › fault tolerance › byzantine fault tolerance
DAG-based consensus
0.912025
DAG-based Consensus with Asymmetric Trust · PODC 2025
Distributed systems
fault tolerance
0.912025
DAG-based Consensus with Asymmetric Trust · PODC 2025
Network security
anonymity networks
0.312025
Deanonymizing Ethereum Validators: The P2P Network Has a Privacy Issue · USENIX Security Symposium 2025
Privacy and data protection
de-anonymization
0.312025
Deanonymizing Ethereum Validators: The P2P Network Has a Privacy Issue · USENIX Security Symposium 2025
Distributed systems
quorum systems
0.312025
DAG-based Consensus with Asymmetric Trust · PODC 2025

Methods — techniques the papers use, named apart from their topics

randomized protocol · 0.9network measurement · 0.9common-core primitive · 0.9clustering · 0.9
YearPublicationVenuePosition
2025 Weaker Assumptions for Asymmetric Trust
abstract
In distributed systems with asymmetric trust, each participant is free to make its own trust assumptions about others, captured by an asymmetric quorum system. This contrasts with ordinary, symmetric quorum systems and threshold models, where trust assumptions are uniformly shared among participants. Fundamental problems like reliable broadcast and consensus are unsolvable in the asymmetric model if quorum systems satisfy only the classical properties of consistency and availability. Existing approaches overcome this by introducing stronger assumptions. We show that some of these assumptions are overly restrictive, so much so that they effectively eliminate the benefits of asymmetric trust. To address this, we propose a new approach to characterize asymmetric problems and, building upon it, present algorithms for reliable broadcast and consensus that require weaker assumptions than previous solutions. Our methods are general and can be extended to other core problems in systems with asymmetric trust.
Ignacio Amores-Sesar, Christian Cachin, Simon Holmgaard Kamp, Juan Villacis
OPODIS4
2025 DAG-based Consensus with Asymmetric Trust
abstract
In protocols with asymmetric trust, each participant is free to make its own individual trust assumptions about others, captured by an asymmetric quorum system. This contrasts with ordinary, symmetric quorum systems and with threshold models, where all participants share the same trust assumption. It is already known how to realize reliable broadcasts, shared-memory emulations, and binary consensus with asymmetric quorums. In this work, we introduce Directed Acyclic Graph (DAG)-based consensus protocols with asymmetric trust. To achieve this, we extend the key building-blocks of the well-known DAG-Rider protocol to the asymmetric model. Counter to expectation, we find that replacing threshold quorums with their asymmetric counterparts in the existing constant-round gather protocol does not result in a sound asymmetric gather primitive. This implies that asymmetric DAG-based consensus protocols, specifically those based on the existence of common-core primitives, need new ideas in an asymmetric-trust model. Consequently, we introduce the first asymmetric protocol for computing a common core, equivalent to that in the threshold model. This leads to the first randomized asynchronous DAG-based consensus protocol with asymmetric quorums. It decides within an expected constant number of rounds after an input has been submitted, where the constant depends on the quorum system.
Ignacio Amores-Sesar, Christian Cachin, Juan Villacis, Luca Zanolini
PODC3
2025 Deanonymizing Ethereum Validators: The P2P Network Has a Privacy Issue
Lioba Heimbach, Yann Vonlanthen, Juan Villacis, Lucianna Kiffer, Roger Wattenhofer
USENIX Security Symposium3
2025 Brief Announcement: Weaker Assumptions for Asymmetric Trust
Christian Cachin, Juan Villacis
DISC2
2022 Foremost Non-stop Journey Arrival in Linear Time
Juan Villacis, Binh-Minh Bui-Xuan, Maria Potop-Butucaru
SIROCCO1