Enrique Iglesias

dblp:250/9029 · also Enrique Antonio Iglesias · DBLP profile ↗
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6ranked-venue papers in the field
2as first author
4since 2021 · last 2026
0000-0002-8734-3123ORCID · verified

Domains — venue-derived; a paper can count in several

Knowledge Engineering, Semantic Web & Information Systems · 4 (1 first)Data Mining & Knowledge Discovery · 1Information Retrieval & Web Search · 1 (1 first)
YearPublicationVenuePosition
2026 Tool4Boxology: A Semantic Toolbox for Constructing and Analysing Neuro-Symbolic Architectures
Johannes E. Bendler, Yashrajsinh Chudasama, Mahsa Forghani, Enrique Iglesias, Disha Purohit, Jacquiline Roney, Annette ten Teije, Frank van Harmelen, Maria-Esther Vidal
ESWC (2)4
2025 Integrating Knowledge Graphs and Neuro-Symbolic AI: LDM Enables FAIR and Federated Research Data Management
abstract
Managing research digital objects (RDOs) in compliance with FAIR principles is crucial for ensuring accessibility, interoperability, and reusability across scientific domains. The Leibniz Data Manager (LDM) is a state-of-the-art framework that integrates Knowledge Graphs (KGs) and Neuro-Symbolic AI, combining the reasoning power of Large Language Models (LLMs) with structured metadata. LDM supports the management and enhancement of RDOs through entity linking, connecting datasets to external KGs like Wikidata and the Open Research Knowledge Graph (ORKG). Additionally, LDM offers federated query processing across KGs, enabling users to explore related papers, datasets, and resources through natural language questions. This demo showcases LDM's capabilities to explore RDOs, compare existing datasets, and extend metadata. By blending Neuro-Symbolic AI with FAIR and federated research data management, LDM offers a powerful tool for accelerating data-driven discovery in science. LDM is publicly accessible at https://service.tib.eu/ldmservice/.
Ahmad Sakor, Mauricio Brunet, Enrique Iglesias, Ariam Rivas, Philipp D. Rohde, Angelina Kraft, Maria-Esther Vidal
WSDM3
2023 Scaling up knowledge graph creation to large and heterogeneous data sources
Enrique Iglesias, Samaneh Jozashoori, Maria-Esther Vidal
J. Web Semant.1
2023 Knowledge4COVID-19: A semantic-based approach for constructing a COVID-19 related knowledge graph from various sources and analyzing treatments' toxicities
Ahmad Sakor, Samaneh Jozashoori, Emetis Niazmand, Ariam Rivas, Konstantinos Bougiatiotis, Fotis Aisopos, Enrique Iglesias, Philipp D. Rohde, Trupti Padiya, Anastasia Krithara, Georgios Paliouras, Maria-Esther Vidal
J. Web Semant.7
2020 SDM-RDFizer: An RML Interpreter for the Efficient Creation of RDF Knowledge Graphs
abstract
In recent years, the amount of data has increased exponentially, and knowledge graphs have gained attention as data structures to integrate data and knowledge harvested from myriad data sources. However, data complexity issues like large volume, high-duplicate rate, and heterogeneity usually characterize these data sources, being required data management tools able to address the negative impact of these issues on the knowledge graph creation process. In this paper, we propose the SDM-RDFizer, an interpreter of the RDF Mapping Language (RML), to transform raw data in various formats into an RDF knowledge graph. SDM-RDFizer implements novel algorithms to execute the logical operators between mappings in RML, allowing thus to scale up to complex scenarios where data is not only broad but has a high-duplication rate. We empirically evaluate the SDM-RDFizer performance against diverse testbeds with diverse configurations of data volume, duplicates, and heterogeneity. The observed results indicate that SDM-RDFizer is two orders of magnitude faster than state of the art, thus, meaning that SDM-RDFizer an interoperable and scalable solution for knowledge graph creation. SDM-RDFizer is publicly available as a resource through a Github repository and a DOI.
Enrique Iglesias, Samaneh Jozashoori, David Fraga 0001, Diego Collarana, Maria-Esther Vidal
CIKM1
2020 FunMap: Efficient Execution of Functional Mappings for Knowledge Graph Creation
Samaneh Jozashoori, David Fraga 0001, Enrique Iglesias, Maria-Esther Vidal, Óscar Corcho
ISWC (1)3