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EXPeriment driven and user eXPerience oriented analytics for eXtremely Precise outcomes and decisionsbroad

ExtremeXP · Horizon Europe grant · 2023-01-01–2026-02-28

EC contribution

€10,011,820

Total cost

€10,011,820

Beneficiaries

21
About the data

Source: CORDIS (official EU open data), Horizon Europe. Framework HORIZON · call HORIZON-CL4-2022-DATA-01 · scheme HORIZON-RIA · topic HORIZON-CL4-2022-DATA-01-01. CORDIS record →

Objective

Extreme data characteristics (volume, speed, heterogeneity, distribution, diverse quality, etc.) challenge the state-of-the-art data-driven analytics and decision-making approaches in many critical domains such as crisis management, predictive maintenance, mobility, public safety, and cyber-security. At the same time, data-driven insights need to be extremely timely, accurate, precise, fit-for-purpose, and trustworthy, so that they can be useful. ExtremeXP will handle the complexity of matching extreme needs with complex analytics processes (i.e., processes that involve and combine ML, data analysis, simulation and visualization components) by placing the end user at the centre of complex analytics processes and relying on user intents and running experiments (i.e., trial and error) to prune the vast solution space of possible analytics workflows and configurations i.e., “variants”. Its main goal is to create a next generation decision support system that integrates novel research results from the domains of data integration, machine learning, visual analytics, explainable AI, decentralised trust, knowledge engineering, and model-driven engineering into a common framework. The overarching idea of the framework is to optimise the properties of a complex analytics process that the end user cares about (e.g., accuracy, time-to-answer, specificity, recall, precision, resource consumption) by associating user profiles to computation variants. The framework is envisioned as modular and extensible, orchestrating different services around an Experimentation Engine: Analysis-aware Data Integration, Extreme Data & Knowledge Management, User-driven AutoML, Transparent & Interactive Decision Making, and User-driven Optimization of Complex Analytics. The framework will be validated in five pilot demonstrators.

Beneficiaries (21)

OrganisationCountryRoleEC contributionSME
ATHINA-EREVNITIKO KENTRO KAINOTOMIAS STIS TECHNOLOGIES TIS PLIROFORIAS, TON EPIKOINONION KAI TIS GNOSIS EL coordinator €814,672
TECHNISCHE UNIVERSITEIT DELFT NL participant €831,076
UNIVERSITAT POLITECNICA DE CATALUNYA ES participant €746,875
STICHTING VU NL participant €669,978
INTRACOM SINGLE MEMBER SA TELECOM SOLUTIONS EL participant €662,500
SINTEF AS NO participant €621,032
CS GROUP - France FR participant €589,375
ACTIVEEON FR participant €573,750 Yes
AIRBUS DS SLC FR participant €562,538
EREVNITIKO PANEPISTIMIAKO INSTITOUTO SYSTIMATON EPIKOINONION KAI YPOLOGISTON EL participant €536,875
FUNDACIO PRIVADA I2CAT, INTERNET I INNOVACIO DIGITAL A CATALUNYA ES participant €525,400
INTERACTIVE 4D FR participant €473,750 Yes
DEUTSCHES FORSCHUNGSZENTRUM FUR KUNSTLICHE INTELLIGENZ GMBH DE participant €431,375
UNIVERZITA KARLOVA CZ participant €423,000
BITSPARKLES FR participant €420,000 Yes
MOBY X SOFTWARE LIMITED CY participant €412,500
IDEKO S COOP ES participant €362,500 Yes
UNIVERZA V LJUBLJANI SI participant €354,625
STICHTING AMSTERDAM UMC NL participant €0
ITHINKUPC SL ES thirdParty €0 Yes
BOURNEMOUTH UNIVERSITY UK associatedPartner

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