Sylvie Coste-Marquis

dblp:84/6816 · also Sylvie Coste · DBLP profile ↗
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30ranked-venue papers
25as first author
4since 2021 · last 2026
0000-0003-4742-4858ORCID · verified

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

Artificial intelligence and machine learning · 29 · 24 first-author · 4 since 2021Graphics, computer vision, multimedia, augmented reality and games · 14 · 10 first-author · 3 since 2021Theory of computation · 12 · 11 first-author · 1 since 2021
YearPublicationVenuePosition
2026 A Rectification-Based Approach for Distilling Boosted Trees into Decision Trees
abstract
International audience
Gilles Audemard, Sylvie Coste-Marquis, Pierre Marquis, Mehdi Sabiri, Nicolas Szczepanski
KR2
2024 Designing an XAI Interface for Tree-Based ML Models
abstract
We present and evaluate empirically an XAI protocol for ruling interactions between a tree-based ML model (the AI system) and its user U, in the context of a prediction task. The pieces of knowledge held by U concerning the prediction task are supposed to be representable by a set of classification rules that is reliable and consistent, but (typically) incomplete. The proposed protocol aims to help U decide what to do with each prediction made by AI (accept it, reject it). It also aims to improve the quality of further predictions made by AI thanks to the expertise of U, and, reciprocally, to complete the pieces of knowledge held by U by leveraging the predictions made by AI. Experiments show that the approach can prove valuable in practice.
Gilles Audemard, Sylvie Coste-Marquis, Pierre Marquis, Mehdi Sabiri, Nicolas Szczepanski
ECAI2
2023 Rectifying Binary Classifiers
abstract
We elaborate on the notion of rectification of a classifier Σ based on Boolean features, introduced in [10]. The purpose is to determine how to modify Σ when the way it classifies a given instance is considered incorrect since it conflicts with some expert knowledge T. Given Σ and T, postulates characterizing the way Σ must be changed into a new classifier Σ ⋆ T that complies with T were presented. We focus here on the specific case of binary classifiers, i.e., there is a single target concept, and any instance is classified either as positive (an element of the concept), or as negative (an element of the complementary concept). In this specific case, our main contribution is twofold: (1) we show that there is a unique rectification operator ⋆ satisfying the postulates, and (2) when Σ and T are Boolean circuits, we show how a classification circuit equivalent to Σ ⋆ T can be computed in time linear in the size of Σ and T; when Σ is a decision tree (resp. a random forest, a boosted tree) and T is a decision tree, a decision tree (resp. a random forest, a boosted tree) equivalent to Σ ⋆ T can be computed in time polynomial in the size of Σ and T.
Sylvie Coste-Marquis, Pierre Marquis
ECAI1
2021 On Belief Change for Multi-Label Classifier Encodings
abstract
An important issue in ML consists in developing approaches exploiting background knowledge T for improving the accuracy and the robustness of learned classifiers C. Delegating the classification task to a Boolean circuit Σ exhibiting the same input-output behaviour as C, the problem of exploiting T within C can be viewed as a belief change scenario. However, usual change operations are not suited to the task of modifying the classifier encoding Σ in a minimal way, to make it complying with T. To fill the gap, we present a new belief change operation, called rectification. We characterize the family of rectification operators from an axiomatic perspective and exhibit operators from this family. We identify the standard belief change postulates that every rectification operator satisfies and those it does not. We also focus on some computational aspects of rectification and compliance.
Sylvie Coste-Marquis, Pierre Marquis
IJCAI1
2015 Extension Enforcement in Abstract Argumentation as an Optimization Problem
Sylvie Coste-Marquis, Sébastien Konieczny, Jean-Guy Mailly, Pierre Marquis
IJCAI1
2014 A Translation-Based Approach for Revision of Argumentation Frameworks
Sylvie Coste-Marquis, Sébastien Konieczny, Jean-Guy Mailly, Pierre Marquis
JELIA1
2014 On the Revision of Argumentation Systems: Minimal Change of Arguments Statuses
Sylvie Coste-Marquis, Sébastien Konieczny, Jean-Guy Mailly, Pierre Marquis
KR1
2012 Selecting Extensions in Weighted Argumentation Frameworks
abstract
Recently, Dunne et al. [9,10] introduced the concept of WAF (Weighted Argumentation Framework). Such frameworks extend standard Dung's ones for abstract argumentation by associating weights with attacks. In the WAF setting, weights are used for relaxing extensions, which proves useful when there are too few extensions. In this paper, we exploit weights in a different perspective. We show how to take advantage of attacks weights within an argumentation process for selecting some extensions among Dung's ones, which proves useful when there are too many extensions, in order to improve the inferential power of the argumentation framework.
Sylvie Coste-Marquis, Sébastien Konieczny, Pierre Marquis, Mohand Akli Ouali
COMMA1
2012 Weighted Attacks in Argumentation Frameworks
Sylvie Coste-Marquis, Sébastien Konieczny, Pierre Marquis, Mohand Akli Ouali
KR1
2008 Recovering Consistency by Forgetting Inconsistency
Sylvie Coste-Marquis, Pierre Marquis
JELIA1
2007 On the merging of Dung's argumentation systems
Sylvie Coste-Marquis, Caroline Devred, Sébastien Konieczny, Marie-Christine Lagasquie-Schiex, Pierre Marquis
Artif. Intell.1
2006 Constrained Argumentation Frameworks
Sylvie Coste-Marquis, Caroline Devred, Pierre Marquis
KR1
2006 Representing Policies for Quantified Boolean Formulae
Sylvie Coste-Marquis, Hélène Fargier, Jérôme Lang, Daniel Le Berre, Pierre Marquis
KR1
2005 Propositional Fragments for Knowledge Compilation and Quantified Boolean Formulae
Sylvie Coste-Marquis, Daniel Le Berre, Florian Letombe, Pierre Marquis
AAAI1
2005 Merging Argumentation Systems
Sylvie Coste-Marquis, Caroline Devred, Sébastien Konieczny, Marie-Christine Lagasquie-Schiex, Pierre Marquis
AAAI1
2005 Symmetric Argumentation Frameworks
Sylvie Coste-Marquis, Caroline Devred, Pierre Marquis
ECSQARU1
2005 Prudent Semantics for Argumentation Frameworks
abstract
We present new prudent semantics within Dung's theory of argumentation. Under such prudent semantics, two arguments cannot belong to the same extension whenever one of them attacks indirectly the other one. We argue that our semantics lead to a better handling of controversial arguments than Dung's ones. We compare the prudent inference relations induced by our semantics w.r.t. cautiousness; we also compare them with the inference relations induced by Dung's semantics.
Sylvie Coste-Marquis, Caroline Devred, Pierre Marquis
ICTAI1
2005 Inference from Controversial Arguments
Sylvie Coste-Marquis, Caroline Devred, Pierre Marquis
LPAR1
2005 A Branching Heuristics for Quantified Renamable Horn Formulas
Sylvie Coste-Marquis, Daniel Le Berre, Florian Letombe
SAT1
2004 A Unit Resolution-Based Approach to Tractable and Paraconsistent Reasoning
Sylvie Coste-Marquis, Pierre Marquis
ECAI1
2004 Expressive Power and Succinctness of Propositional Languages for Preference Representation
Sylvie Coste-Marquis, Jérôme Lang, Paolo Liberatore, Pierre Marquis
KR1
2002 Complexity Results for Paraconsistent Inference Relations
Sylvie Coste-Marquis, Pierre Marquis
KR1
2001 Knowledge Compilation for Closed World Reasoning and Circumscription
abstract
This paper presents new complexity results for propositional closed world reasoning (CWR) from tractable knowledge bases (KBs). Both (basic) CWR, generalized CWR, extended generalized CWR, careful CWR and extended CWR (equivalent to circumscription) are considered. The focus is on tractable KBs belonging to target classes for exact compilation functions: Blake formulas, DNFs, disjunctions of Horn formulas, and disjunctions of renamable Horn formulas. The complexity of inference is identified for all the forms of CWR listed above. For each of them, new tractable fragments are exhibited. Interestingly, the restricted classes of formulas we consider are target classes for exact compilation functions, i.e., every KB can be turned into an equivalent formula from any of these classes. Accordingly, our results suggest knowledge compilation as a valuable, practical approach to deal with the complexity of CWR in some situations.
Sylvie Coste-Marquis, Pierre Marquis
J. Log. Comput.1
2000 Compiling Stratified Belief Bases
Sylvie Coste-Marquis, Pierre Marquis
ECAI1
1999 Complexity Results for Propositional Closed World Reasoning and Circumscription from Tractable Knowledge Bases
Sylvie Coste-Marquis, Pierre Marquis
IJCAI1
1996 Using decision trees to construct optimal acoustic cues
Sandrine Robbe-Reiter, Anne Bonneau, Sylvie Coste-Marquis, Yves Laprie
ICSLP3
1994 Hypothetical Reasoning for Automatic Recognition of Continuous Speech
Sylvie Coste-Marquis
ECAI1
1994 Interaction between most reliable acoustic cues and lexical analysis
abstract
International audience
Sylvie Coste-Marquis
ICSLP1
1992 A Model for Hypothetical Reasoning Applied to Speech Recognition
Anne Bonneau, François Charpillet, Sylvie Coste-Marquis, Jean Paul Haton, Yves Laprie, Pierre Marquis
ECAI3
1992 Two level acoustic cues for consistent stop identification
abstract
Extrait de : Proc. Intern. Conf. on Spoken Language Processing, Banff (Alberta, Canada), October 1992
Anne Bonneau, Sylvie Coste-Marquis, Linda Djezzar, Yves Laprie
ICSLP2