Yann Ramusat

dblp:205/0833 · DBLP profile ↗
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7ranked-venue papers
1as first author
4since 2021 · last 2024
0000-0002-7181-8331ORCID · corroborated

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

Databases, data management, data science and information retrieval · 4 · 1 first-author · 3 since 2021Theory of computation · 2Human-computer interaction and ubiquitous computing · 1 · 1 since 2021
YearPublicationVenuePosition
2024 LabelIT: A Multi-cloud Resource Label Unification Tool
Jeremy Mechouche, Marwa Mokni, Yann Ramusat
CoopIS3
2024 Transforming Property Graphs
abstract
In this paper, we study a declarative framework for specifying transformations of property graphs. In order to express such transformations, we leverage queries formulated in the Graph Pattern Calculus (GPC), which is an abstraction of the common core of recent standard graph query languages, GQL and SQL/PGQ. In contrast to previous frameworks targeting graph topology only, we focus on the impact of data values on the transformations---which is crucial in addressing users' needs. In particular, we study the complexity of checking if the transformation rules do not specify conflicting values for properties, and we show this is closely related to the satisfiability problem for GPC. We prove that both problems are PSpace-complete. We have implemented our framework in openCypher. We show the flexibility and usability of our framework by leveraging an existing data integration benchmark, adapting it to our needs. We also evaluate the incurred overhead of detecting potential inconsistencies at run-time, and the impact of several optimization tools in a Cypher-based graph database, by providing a comprehensive comparison of different implementation variants. The results of our experimental study show that our framework exhibits large practical benefits for transforming property graphs compared to ad-hoc transformation scripts.
Angela Bonifati, Filip Murlak, Yann Ramusat
Proc. VLDB Endow.3
2024 DTGraph: Declarative Transformations of Property Graphs
abstract
Current graph query languages, including the standards SQL/PGQ and GQL, define their semantics in terms of sets of tuples. This is largely inadequate for data interoperability tasks such as data migration or data integration which require queries to output new property graphs. This demonstration showcases DTGraph, an open-source declarative rule-based framework for easily specifying and efficiently executing property graph transformations. We describe a novel comprehensive system that allows the declarative specification of property graph transformations, by extending openCypher queries with a new GENERATE clause for creating new property graphs. The system includes several modules: a parser, a compiler for translating the transformation logic into an efficient executable openCypher script, and an interface assisting users in developing their transformations. The demonstration showcases the ability of our framework to scale to large graph data, and its suitability for transforming real-world datasets.
Angela Bonifati, Yann Ramusat, Filip Murlak, Amela Fejza, Rachid Echahed
Proc. VLDB Endow.2
2021 Provenance-Based Algorithms for Rich Queries over Graph Databases
abstract
International audience
Yann Ramusat, Silviu Maniu, Pierre Senellart
EDBT1
2020 Absent words in a sliding window with applications
Maxime Crochemore, Alice Héliou, Gregory Kucherov, Laurent Mouchard, Solon P. Pissis, Yann Ramusat
Inf. Comput.6
2018 ProvSQL: Provenance and Probability Management in PostgreSQL
abstract
This demonstration showcases ProvSQL, an open-source module for the PostgreSQL database management system that adds support for computation of provenance and probabilities of query results. A large range of provenance formalisms are supported, including all those captured by provenance semirings, provenance semirings with monus, as well as where-provenance. Probabilistic query evaluation is made possible through the use of knowledge compilation tools, in addition to standard approaches such as enumeration of possible worlds and Monte-Carlo sampling. ProvSQL supports a large subset of non-aggregate SQL queries.
Pierre Senellart, Louis Jachiet, Silviu Maniu, Yann Ramusat
Proc. VLDB Endow.4
2017 Minimal Absent Words in a Sliding Window and Applications to On-Line Pattern Matching
Maxime Crochemore, Alice Héliou, Gregory Kucherov, Laurent Mouchard, Solon P. Pissis, Yann Ramusat
FCT6