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        <title>Bases de  Données / Databases - en:site:recherche:logiciels</title>
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       <dc:date>2026-10-11T02:17:55+00:00</dc:date>
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        <dc:date>2023-11-17T17:35:31+00:00</dc:date>
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        <title>ANTM: An Aligned Neural Topic Model for Exploring Evolving Topics</title>
        <link>https://bd.team.lip6.fr/en/site/recherche/logiciels/antm?rev=1700242531&amp;do=diff</link>
        <description>ANTM: An Aligned Neural Topic Model for Exploring Evolving Topics

Dynamic topic models are effective methods that primarily focus on studying the evolution of topics present in a collection of documents. These models are widely used for understanding trends, exploring public opinion in social networks, or tracking research progress and discoveries in scientific archives. Since topics are defined as clusters of semantically similar documents, it is necessary to observe the changes in the content…</description>
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        <title>ATEM : A Topic Evolution Model for the Detection of Emerging Topics in Scientific Archives</title>
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        <description>ATEM : A Topic Evolution Model for the Detection of Emerging Topics in Scientific Archives

ATEM is a novel framework for studying topic evolution in scientific archives. ATEM is based on dynamic topic modeling and dynamic graph embedding techniques that explore the dynamics of content and citations of documents within a scientific corpus. ATEM explores a new notion of contextual emergence for the discovery of emerging interdisciplinary research topics based on the dynamics of citation links in …</description>
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        <title>CTC: Contextualized Topic Coherence Metrics</title>
        <link>https://bd.team.lip6.fr/en/site/recherche/logiciels/ctc?rev=1700242575&amp;do=diff</link>
        <description>CTC: Contextualized Topic Coherence Metrics

This research introduces a new family of topic coherence metrics called Contextualized Topic Coherence Metrics (CTC) that benefits from the recent development of Large Language Models (LLM). CTC includes two approaches that are motivated to offer flexibility and accuracy in evaluating neural topic models under different circumstances. Our results show automated CTC outperforms the baseline metrics on large-scale datasets while semi-automated CTC outpe…</description>
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        <title>EPIQUE: Topic Extraction and Alignment for Large Scientific Document Collections</title>
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        <description>FIXME This page is not fully translated, yet. Please help completing the translation.
(remove this paragraph once the translation is finished)

EPIQUE: Topic Extraction and Alignment for Large Scientific Document Collections

Towards a quantitative epistemology - Reconstructing the large-scale evolution of science</description>
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        <title>Schema Inference from Massive JSON Datasets</title>
        <link>https://bd.team.lip6.fr/en/site/recherche/logiciels/jsonschemainference?rev=1700242707&amp;do=diff</link>
        <description>Schema Inference from Massive JSON Datasets

Description

JSON data collections are usually massive and schema-less. Inferring a schema describing the structure of these collections is crucial for formulating meaningful queries and for adopting schema-based optimizations. The implementation allows for inferring schema information from very large JSON data collections.</description>
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        <dc:date>2016-09-14T10:41:36+00:00</dc:date>
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        <title>RDFdist</title>
        <link>https://bd.team.lip6.fr/en/site/recherche/logiciels/rdfdist?rev=1473849696&amp;do=diff</link>
        <description>RDFdist

This wiki page provides information about the experiments RDF distribution approaches using Spark.
This information consists of i) the query workload ii) the source code for both data preparation and query evaluation, and iii) the  description of two datasets used in the experiments.
For the sake of reproducibility, each source code is provided as a script which can be directly executed in the spark shell.</description>
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        <dc:date>2017-04-26T09:14:23+00:00</dc:date>
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        <title>SPARQL query processing with Apache Spark</title>
        <link>https://bd.team.lip6.fr/en/site/recherche/logiciels/sparqlwithspark?rev=1493198063&amp;do=diff</link>
        <description>SPARQL query processing with Apache Spark

This wiki is a companion to the following publications:

	*  SPARQL Graph Pattern Processing with Apache Spark
	*  SPARQL query processing with Apache Spark
	*  HAQWA: a Hash-based and Query Workload Aware Distributed RDF Store
	*  On the Evaluation of RDF Distribution Algorithms Implemented over Apache Spark

It provides access to the resources related to the evaluation section of SPARQL query processing with Apache Spark.

See also RDFdist concerning …</description>
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        <dc:date>2025-07-23T10:36:03+00:00</dc:date>
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        <title>Software</title>
        <link>https://bd.team.lip6.fr/en/site/recherche/logiciels/start?rev=1753266963&amp;do=diff</link>
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 index


&lt;https://gitlab.lip6.fr&gt;
&lt;https://github.com/&gt;
&lt;https://gitlab.com/&gt;</description>
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