[PlanetKR] 2nd CFP - 1st Workshop on Data Quality meets Machine Learning and Knowledge Graphs (DQMLKG 2024)

Maria Angela PELLEGRINO mapellegrino at unisa.it
Thu Feb 15 08:18:32 UTC 2024


[Apologies for potential crossposting]

====
ESWC 2024 - 21st Extended Semantic Web Conference
Hersonissos, Greece
Call for Papers for the DQMLKG – Data Quality meets Machine Learning and
Knowledge Graphs: Bridging Precision with Intelligence
May 26 or 27, 2024
https://dqmlkg.github.io
====

This workshop aims to explore the intricate interplay of data quality, ML,
and KGs, elucidating limitations in assessment methodologies, proposing
effective methods for objective quality assessment, and addressing
challenges on ML and AI in general, verify if and to what extent well-known
quality metrics are compliant with ML-based quality assessment, and
addressing FAIR principles. We also welcome proposals riding the path of
Explainable AI, Large Language Models, Generative AI, and any AI-driven
approach that can be applied to the Semantic Web technologies to support
and enhance data quality assessment and improvement.

=Submission details=

* Full research papers (up to 15 pages, excluding references)
* Short research papers (up to 8 pages, excluding references)

Papers must comply with the CEUR-WS template. Papers are submitted in PDF
format via the workshop’s Open Review submission page
https://openreview.net/group?id=eswc-conferences.org/ESWC/2024/Workshop/DQMLKG
.

=Important dates=

* Paper submission deadline: February 26, 2024 (11:59 pm, Hawaii time)
* Notification of Acceptance: March 28, 2024 (11:59 pm, Hawaii time)
* Camera-ready paper due: April 18, 2024 (11:59 pm, Hawaii time)

=Topics of interest (but are not limited to)=

New approaches for performing Data quality assessment or improvement of
Knowledge Graphs via Machine Learning
* Quality assessment over time
* Scalability issues
* Proactive approaches able to improve KG quality during the data authoring
stage
* Reactive approaches to improve KG quality before the data exploitation
stage
* Large Language Models to deal with KG quality issues
* Generative Artificial Intelligence (AI) to cope with KG quality issues
* AI-driven approach to assess and improve data quality issues over KGs

Applications combining Machine Learning and Knowledge Graphs dealing with
Data Quality concerns:
* Recommender Systems leveraging (incomplete) Knowledge Graphs
* Link Prediction and completing KGs
* Ontology Learning and Matching coping with KG consistency and accuracy
* Question Answering exploiting Knowledge Graphs and Machine Learning
dealing with representational issues
* Domain Specific KGs quality issues

We are looking forward to your contribution!

In case you have additional questions concerning the submission process,
please do not hesitate to contact @MariaAngelaPellegrino -
mapellegrino at unisa.it

We are looking forward to your contribution!

Anisa Rula,
Maria Angela Pellegrino,
Michael Cochez,
Jose Emilio Labra Gayo and
Mehwish Alam
Workshop organisers
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