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CORDIS - Forschungsergebnisse der EU
CORDIS

Active Region Classification and Flare Forecasting

CORDIS bietet Links zu öffentlichen Ergebnissen und Veröffentlichungen von HORIZONT-Projekten.

Links zu Ergebnissen und Veröffentlichungen von RP7-Projekten sowie Links zu einigen Typen spezifischer Ergebnisse wie Datensätzen und Software werden dynamisch von OpenAIRE abgerufen.

Leistungen

Project Reporting Year 1 (öffnet in neuem Fenster)

This deliverable relates to the regular periodic reports for year 1

Project Reporting Year 2 (öffnet in neuem Fenster)

This deliverable relates to the regular periodic reports for year 2

Progress report of user engagement in development process 1 (öffnet in neuem Fenster)

This deliverable will include a report on progress so far to engage operational users of ARCAFF outputs. This includes (but not limited to) interactions with Advisory Board members, community workshop results and surveys, results of presentations at conferences etc. Month 24 has been chosen to allow time to reflect before any last changes are required in year 3 of the project to finalise the forecast service.

ARCAFF DL services v1 (öffnet in neuem Fenster)

This deliverable will be a report and a set of executable services published in GitHub and integrated with the PITHIA-e-Science Centre. It will include the cloud-based implementation of these services, their preliminary user interfaces integrated into the e-Science Centre, and related learning and research material supporting their execution and utilisations.

Point-in-time based Flare forecast ML Dataset (magnetogram and multimodal) (öffnet in neuem Fenster)

Software and DL datasets (3D images cubes and labels or outputs) for the point-in-time flare forecast objectivesboth magnetgram (O3) and multimodal (O4).

AR Localisation and Classification ML Datasets (öffnet in neuem Fenster)

Software and DL datasets (images and label or outputs) for the AR Classification (O1) and AR Localisation andClassification Objectives (O2).

Trained AR Localisation and Classification DNNs and software (öffnet in neuem Fenster)

Release of the training pipeline and model software as well as the trained model weights for AR Classification(O1) and AR Localisation and Classification Objectives (O2).

Project Web Site (öffnet in neuem Fenster)

This deliverable will establish the ARCAFF website where all information about the project aims, consortiummembers, progress etc will be found, and later will display project outputs.

ARCAFF Data Management Plan (öffnet in neuem Fenster)

Creation of a Data Management Plan for the consortium to follow when delivering project outputs.

Veröffentlichungen

Deep Learning for Active Region Classification: A Systematic Study from Convolutional Neural Networks to Vision Transformers (öffnet in neuem Fenster)

Autoren: Edoardo Legnaro, Sabrina Guastavino, Michele Piana, Anna Maria Massone
Veröffentlicht in: The Astrophysical Journal, Ausgabe 981, 2025, ISSN 0004-637X
Herausgeber: American Astronomical Society
DOI: 10.3847/1538-4357/ADB41A

Physics-driven Machine Learning for the Prediction of Coronal Mass Ejections’ Travel Times (öffnet in neuem Fenster)

Autoren: Sabrina Guastavino; Valentina Candiani; Alessandro Bemporad; Francesco Marchetti; Federico Benvenuto; Anna Maria Massone; Salvatore Mancuso; Roberto Susino; Daniele Telloni; Silvano Fineschi; Michele, Piana
Veröffentlicht in: The Astrophysical Journal, Ausgabe 954-2, 2023, ISSN 1538-4357
Herausgeber: IOP Publishing
DOI: 10.3847/1538-4357/ace62d

Unbiased CLEAN for STIX in Solar Orbiter (öffnet in neuem Fenster)

Autoren: Emma Perracchione; Fabiana Camattari; Anna Volpara; Paolo Massa; Anna Maria Massone; Michele Piana
Veröffentlicht in: The Astrophysical Journal Supplement Series, 2023, ISSN 1538-4365
Herausgeber: IOP
DOI: 10.48550/arxiv.2307.09991

Prediction of Solar Energetic Events Impacting Space Weather Conditions (öffnet in neuem Fenster)

Autoren: Manolis K. Georgoulis, Stephanie L. Yardley, Jordan A. Guerra, Sophie A. Murray, Azim Ahmadzadeh, Anastasios Anastasiadis, Rafal Angryk, Berkay Aydin, Dipankar Banerjee, Graham Barnes, Alessandro Bemporad, Federico Benvenuto, D. Shaun Bloomfield, Monica B
Veröffentlicht in: Advances in Space Research, 2024, ISSN 0273-1177
Herausgeber: Elsevier
DOI: 10.1016/j.asr.2024.02.030

Forecasting Geoffective Events from Solar Wind Data and Evaluating the Most Predictive Features through Machine Learning Approaches (öffnet in neuem Fenster)

Autoren: Sabrina Guastavino, Katsiaryna Bahamazava, Emma Perracchione, Fabiana Camattari, Gianluca Audone, Daniele Telloni, Roberto Susino, Gianalfredo Nicolini, Silvano Fineschi, Michele Piana, Anna Maria Massone
Veröffentlicht in: The Astrophysical Journal, Ausgabe 971, 2024, ISSN 0004-637X
Herausgeber: American Astronomical Society
DOI: 10.3847/1538-4357/AD5B57

Physically Motivated Deep Learning to Superresolve and Cross Calibrate Solar Magnetograms (öffnet in neuem Fenster)

Autoren: Andrés Muñoz-Jaramillo, Anna Jungbluth, Xavier Gitiaux, Paul J. Wright, Carl Shneider, Shane A. Maloney, Atılım Güneş Baydin, Yarin Gal, Michel Deudon, and Freddie Kalaitzis
Veröffentlicht in: The Astrophysical Journal Supplement Series, 2024, ISSN 1538-4365
Herausgeber: Institute of Physics Publishing
DOI: 10.3847/1538-4365/AD12C2

Snakes on a spaceship—an overview of python in space physics (öffnet in neuem Fenster)

Autoren: Burrell, A. G., Coxon, J., Aye, K.-M., Lamarche, L., Murray, S. A., eds.
Veröffentlicht in: Frontiers in Astronomy and Space Science, 2023, ISSN 1664-8714
Herausgeber: Lausanne: Frontiers Media SA
DOI: 10.3389/978-2-8325-2959-1

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