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Mathilde Arnaud

dblp:91/4276 · DBLP profile ↗
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6ranked-venue papers
4as first author
3since 2021 · last 2025
0000-0001-7953-8281ORCID · corroborated

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

Software engineering, systems software and programming languages · 3 · 1 first-author · 3 since 2021Artificial intelligence and machine learning · 2 · 2 first-author · 1 since 2021Theory of computation · 2 · 2 first-authorSecurity and privacy · 1 · 1 first-author

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 networks
1 paper
Routing and switching · 100%
Software engineering, system software, and programming languages
1 paper
Program verification · 100%

Topics — the 2 heaviest of 2, each with the papers that count most for it

TopicWeightPapersLastEvidence papers
Routing and switching › ad hoc network routing
ad hoc routing protocol
0.212014
Modeling and verifying ad hoc routing protocols · Inf. Comput. 2014
Program verification
protocol verification
0.212014
Modeling and verifying ad hoc routing protocols · Inf. Comput. 2014

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

model checking · 0.4formal verification · 0.4
YearPublicationVenuePosition
2025 A Domain Specific Language to Design New Control Architectures for Smart Grids
abstract
International audience
Asma Smaoui, Mathilde Arnaud, Stéphane Salmons, Guillaume Giraud
MODELSWARD2
2023 Context Specification Language for Formally Verifying Consent Properties on Models and Code
Myriam Clouet, Thibaud Antignac, Mathilde Arnaud, Julien Signoles
TAP3
2021 Investigating Process Algebra Models to Represent Structured Requirements for Time-sensitive CPS
abstract
Cyber-Physical Systems (CPS) contain complex computational components that control physical entities.The design of these components must take into account the realtime and concurrent nature of these systems.Formulating requirements that describe CPS behaviors precisely, ruling out misunderstandings, is a crucial yet difficult endeavor.To increase trust in the requirements, formal methods can be used to check relevant properties of the requirements.We investigate a process algebra to capture real-time behaviors and concurrency in CPS requirements in order to automate their analysis.We use a structured natural language to first express CPS requirements: this takes into account current practice, indeed requirements should be easily writable as well as graspable by stakeholders with various points of view and ease communication among them.At the same time, requirements analysis using simulation or formal validation is possible by taking advantage of the requirements structure.We discuss translation from the structured requirements into the process algebra to automate the overall process.Our approach is implemented and is illustrated by an example issued from CPS4EU project 1 .
Mathilde Arnaud, Boutheina Bannour, Arnault Lapitre, Guillaume Giraud
SEKE1
2014 Modeling and verifying ad hoc routing protocols
Mathilde Arnaud, Véronique Cortier, Stéphanie Delaune
Inf. Comput.1
2011 Deciding Security for Protocols with Recursive Tests
Mathilde Arnaud, Véronique Cortier, Stéphanie Delaune
CADE1
2010 Modeling and Verifying Ad Hoc Routing Protocols
abstract
Mobile ad hoc networks consist of mobile wireless devices which autonomously organize their infrastructure. In such networks, a central issue, ensured by routing protocols, is to find a route from one device to another. Those protocols use cryptographic mechanisms in order to prevent malicious nodes from compromising the discovered route. Our contribution is twofold. We first propose a calculus for modeling and reasoning about security protocols, including in particular secured routing protocols. Our calculus extends standard symbolic models to take into account the characteristics of routing protocols and to model wireless communication in a more accurate way. Our second main contribution is a decision procedure for analyzing routing protocols for any network topology. By using constraint solving techniques, we show that it is possible to automatically discover (in NPTIME) whether there exists a network topology that would allow malicious nodes to mount an attack against the protocol, for a bounded number of sessions. We also provide a decision procedure for detecting attacks in case the network topology is given a priori. We demonstrate the usage and usefulness of our approach by analyzing the protocol SRP applied to DSR.
Mathilde Arnaud, Véronique Cortier, Stéphanie Delaune
CSF1