The SINFONIA project repository for AI-based algorithms and health data

The SINFONIA project’s main objective is to develop novel methodologies and tools that will provide a comprehensive risk appraisal for detrimental effects of radiation exposure on patients, workers, caretakers, and comforters, the public, and the environment during the management of patients suspect...

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Published inFrontiers in public health Vol. 12; p. 1448988
Main Authors Fernández-Fabeiro, Jorge, Carballido, Álvaro, Fernández-Fernández, Ángel M., Moldes, Manoel R., Villar, David, Mouriño, Jose C.
Format Journal Article
LanguageEnglish
Published Switzerland Frontiers Media S.A 23.10.2024
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Online AccessGet full text
ISSN2296-2565
2296-2565
DOI10.3389/fpubh.2024.1448988

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Abstract The SINFONIA project’s main objective is to develop novel methodologies and tools that will provide a comprehensive risk appraisal for detrimental effects of radiation exposure on patients, workers, caretakers, and comforters, the public, and the environment during the management of patients suspected or diagnosed with lymphoma, brain tumors, and breast cancers. The project plan defines a series of key objectives to be achieved on the way to the main objective. One of these objectives is to develop and operate a repository to collect, pool, and share data from imaging and non-imaging examinations and radiation therapy sessions, histological results, and demographic information related to individual patients with lymphoma, brain tumors, and breast cancers. This paper presents the final version of that repository, a cloud-based platform for imaging and non-imaging data. It results from the implementation and integration of several software tools and programming frameworks under an evolutive architecture according to the project partners’ needs and the constraints of the General Data Protection Regulation. It provides, among other services, data uploading and downloading, data sharing, file decompression, data searching, DICOM previsualization, and an infrastructure for submitting and running Artificial Intelligence models.
AbstractList The SINFONIA project’s main objective is to develop novel methodologies and tools that will provide a comprehensive risk appraisal for detrimental effects of radiation exposure on patients, workers, caretakers, and comforters, the public, and the environment during the management of patients suspected or diagnosed with lymphoma, brain tumors, and breast cancers. The project plan defines a series of key objectives to be achieved on the way to the main objective. One of these objectives is to develop and operate a repository to collect, pool, and share data from imaging and non-imaging examinations and radiation therapy sessions, histological results, and demographic information related to individual patients with lymphoma, brain tumors, and breast cancers. This paper presents the final version of that repository, a cloud-based platform for imaging and non-imaging data. It results from the implementation and integration of several software tools and programming frameworks under an evolutive architecture according to the project partners’ needs and the constraints of the General Data Protection Regulation. It provides, among other services, data uploading and downloading, data sharing, file decompression, data searching, DICOM previsualization, and an infrastructure for submitting and running Artificial Intelligence models.
The SINFONIA project's main objective is to develop novel methodologies and tools that will provide a comprehensive risk appraisal for detrimental effects of radiation exposure on patients, workers, caretakers, and comforters, the public, and the environment during the management of patients suspected or diagnosed with lymphoma, brain tumors, and breast cancers. The project plan defines a series of key objectives to be achieved on the way to the main objective. One of these objectives is to develop and operate a repository to collect, pool, and share data from imaging and non-imaging examinations and radiation therapy sessions, histological results, and demographic information related to individual patients with lymphoma, brain tumors, and breast cancers. This paper presents the final version of that repository, a cloud-based platform for imaging and non-imaging data. It results from the implementation and integration of several software tools and programming frameworks under an evolutive architecture according to the project partners' needs and the constraints of the General Data Protection Regulation. It provides, among other services, data uploading and downloading, data sharing, file decompression, data searching, DICOM previsualization, and an infrastructure for submitting and running Artificial Intelligence models.The SINFONIA project's main objective is to develop novel methodologies and tools that will provide a comprehensive risk appraisal for detrimental effects of radiation exposure on patients, workers, caretakers, and comforters, the public, and the environment during the management of patients suspected or diagnosed with lymphoma, brain tumors, and breast cancers. The project plan defines a series of key objectives to be achieved on the way to the main objective. One of these objectives is to develop and operate a repository to collect, pool, and share data from imaging and non-imaging examinations and radiation therapy sessions, histological results, and demographic information related to individual patients with lymphoma, brain tumors, and breast cancers. This paper presents the final version of that repository, a cloud-based platform for imaging and non-imaging data. It results from the implementation and integration of several software tools and programming frameworks under an evolutive architecture according to the project partners' needs and the constraints of the General Data Protection Regulation. It provides, among other services, data uploading and downloading, data sharing, file decompression, data searching, DICOM previsualization, and an infrastructure for submitting and running Artificial Intelligence models.
Author Moldes, Manoel R.
Villar, David
Mouriño, Jose C.
Carballido, Álvaro
Fernández-Fernández, Ángel M.
Fernández-Fabeiro, Jorge
AuthorAffiliation Galicia Supercomputing Center (CESGA) , Santiago de Compostela, Galicia , Spain
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Copyright Copyright © 2024 Fernández-Fabeiro, Carballido, Fernández-Fernández, Moldes, Villar and Mouriño.
Copyright © 2024 Fernández-Fabeiro, Carballido, Fernández-Fernández, Moldes, Villar and Mouriño. 2024 Fernández-Fabeiro, Carballido, Fernández-Fernández, Moldes, Villar and Mouriño
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Keywords data repository
health data
artificial intelligence-AI
cancer imaging
radiation risk appraisal
Language English
License Copyright © 2024 Fernández-Fabeiro, Carballido, Fernández-Fernández, Moldes, Villar and Mouriño.
This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
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Lawrence Tarbox, University of Arkansas for Medical Sciences, United States
Edited by: Bibiana Scelfo, Institute of Social Economic Research of Piedmont, Italy
Reviewed by: Milton Santos, University of Aveiro, Portugal
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Snippet The SINFONIA project’s main objective is to develop novel methodologies and tools that will provide a comprehensive risk appraisal for detrimental effects of...
The SINFONIA project's main objective is to develop novel methodologies and tools that will provide a comprehensive risk appraisal for detrimental effects of...
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StartPage 1448988
SubjectTerms Algorithms
Artificial Intelligence
artificial intelligence-AI
Brain Neoplasms - diagnostic imaging
Breast Neoplasms - diagnostic imaging
cancer imaging
data repository
Female
health data
Humans
Information Dissemination - methods
Lymphoma - diagnostic imaging
Public Health
Radiation Exposure
radiation risk appraisal
Software
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Title The SINFONIA project repository for AI-based algorithms and health data
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https://www.proquest.com/docview/3125495630
https://pubmed.ncbi.nlm.nih.gov/PMC11539176
https://doi.org/10.3389/fpubh.2024.1448988
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