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Joint Imaging Platform for Federated Clinical Data Analytics

PURPOSE: Image analysis is one of the most promising applications of artificial intelligence (AI) in health care, potentially improving prediction, diagnosis, and treatment of diseases. Although scientific advances in this area critically depend on the accessibility of large-volume and high-quality...

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Autores principales: Scherer, Jonas, Nolden, Marco, Kleesiek, Jens, Metzger, Jasmin, Kades, Klaus, Schneider, Verena, Bach, Michael, Sedlaczek, Oliver, Bucher, Andreas M., Vogl, Thomas J., Grünwald, Frank, Kühn, Jens-Peter, Hoffmann, Ralf-Thorsten, Kotzerke, Jörg, Bethge, Oliver, Schimmöller, Lars, Antoch, Gerald, Müller, Hans-Wilhelm, Daul, Andreas, Nikolaou, Konstantin, la Fougère, Christian, Kunz, Wolfgang G., Ingrisch, Michael, Schachtner, Balthasar, Ricke, Jens, Bartenstein, Peter, Nensa, Felix, Radbruch, Alexander, Umutlu, Lale, Forsting, Michael, Seifert, Robert, Herrmann, Ken, Mayer, Philipp, Kauczor, Hans-Ulrich, Penzkofer, Tobias, Hamm, Bernd, Brenner, Winfried, Kloeckner, Roman, Düber, Christoph, Schreckenberger, Mathias, Braren, Rickmer, Kaissis, Georgios, Makowski, Marcus, Eiber, Matthias, Gafita, Andrei, Trager, Rupert, Weber, Wolfgang A., Neubauer, Jakob, Reisert, Marco, Bock, Michael, Bamberg, Fabian, Hennig, Jürgen, Meyer, Philipp Tobias, Ruf, Juri, Haberkorn, Uwe, Schoenberg, Stefan O., Kuder, Tristan, Neher, Peter, Floca, Ralf, Schlemmer, Heinz-Peter, Maier-Hein, Klaus
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society of Clinical Oncology 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7713526/
https://www.ncbi.nlm.nih.gov/pubmed/33166197
http://dx.doi.org/10.1200/CCI.20.00045
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author Scherer, Jonas
Nolden, Marco
Kleesiek, Jens
Metzger, Jasmin
Kades, Klaus
Schneider, Verena
Bach, Michael
Sedlaczek, Oliver
Bucher, Andreas M.
Vogl, Thomas J.
Grünwald, Frank
Kühn, Jens-Peter
Hoffmann, Ralf-Thorsten
Kotzerke, Jörg
Bethge, Oliver
Schimmöller, Lars
Antoch, Gerald
Müller, Hans-Wilhelm
Daul, Andreas
Nikolaou, Konstantin
la Fougère, Christian
Kunz, Wolfgang G.
Ingrisch, Michael
Schachtner, Balthasar
Ricke, Jens
Bartenstein, Peter
Nensa, Felix
Radbruch, Alexander
Umutlu, Lale
Forsting, Michael
Seifert, Robert
Herrmann, Ken
Mayer, Philipp
Kauczor, Hans-Ulrich
Penzkofer, Tobias
Hamm, Bernd
Brenner, Winfried
Kloeckner, Roman
Düber, Christoph
Schreckenberger, Mathias
Braren, Rickmer
Kaissis, Georgios
Makowski, Marcus
Eiber, Matthias
Gafita, Andrei
Trager, Rupert
Weber, Wolfgang A.
Neubauer, Jakob
Reisert, Marco
Bock, Michael
Bamberg, Fabian
Hennig, Jürgen
Meyer, Philipp Tobias
Ruf, Juri
Haberkorn, Uwe
Schoenberg, Stefan O.
Kuder, Tristan
Neher, Peter
Floca, Ralf
Schlemmer, Heinz-Peter
Maier-Hein, Klaus
author_facet Scherer, Jonas
Nolden, Marco
Kleesiek, Jens
Metzger, Jasmin
Kades, Klaus
Schneider, Verena
Bach, Michael
Sedlaczek, Oliver
Bucher, Andreas M.
Vogl, Thomas J.
Grünwald, Frank
Kühn, Jens-Peter
Hoffmann, Ralf-Thorsten
Kotzerke, Jörg
Bethge, Oliver
Schimmöller, Lars
Antoch, Gerald
Müller, Hans-Wilhelm
Daul, Andreas
Nikolaou, Konstantin
la Fougère, Christian
Kunz, Wolfgang G.
Ingrisch, Michael
Schachtner, Balthasar
Ricke, Jens
Bartenstein, Peter
Nensa, Felix
Radbruch, Alexander
Umutlu, Lale
Forsting, Michael
Seifert, Robert
Herrmann, Ken
Mayer, Philipp
Kauczor, Hans-Ulrich
Penzkofer, Tobias
Hamm, Bernd
Brenner, Winfried
Kloeckner, Roman
Düber, Christoph
Schreckenberger, Mathias
Braren, Rickmer
Kaissis, Georgios
Makowski, Marcus
Eiber, Matthias
Gafita, Andrei
Trager, Rupert
Weber, Wolfgang A.
Neubauer, Jakob
Reisert, Marco
Bock, Michael
Bamberg, Fabian
Hennig, Jürgen
Meyer, Philipp Tobias
Ruf, Juri
Haberkorn, Uwe
Schoenberg, Stefan O.
Kuder, Tristan
Neher, Peter
Floca, Ralf
Schlemmer, Heinz-Peter
Maier-Hein, Klaus
author_sort Scherer, Jonas
collection PubMed
description PURPOSE: Image analysis is one of the most promising applications of artificial intelligence (AI) in health care, potentially improving prediction, diagnosis, and treatment of diseases. Although scientific advances in this area critically depend on the accessibility of large-volume and high-quality data, sharing data between institutions faces various ethical and legal constraints as well as organizational and technical obstacles. METHODS: The Joint Imaging Platform (JIP) of the German Cancer Consortium (DKTK) addresses these issues by providing federated data analysis technology in a secure and compliant way. Using the JIP, medical image data remain in the originator institutions, but analysis and AI algorithms are shared and jointly used. Common standards and interfaces to local systems ensure permanent data sovereignty of participating institutions. RESULTS: The JIP is established in the radiology and nuclear medicine departments of 10 university hospitals in Germany (DKTK partner sites). In multiple complementary use cases, we show that the platform fulfills all relevant requirements to serve as a foundation for multicenter medical imaging trials and research on large cohorts, including the harmonization and integration of data, interactive analysis, automatic analysis, federated machine learning, and extensibility and maintenance processes, which are elementary for the sustainability of such a platform. CONCLUSION: The results demonstrate the feasibility of using the JIP as a federated data analytics platform in heterogeneous clinical information technology and software landscapes, solving an important bottleneck for the application of AI to large-scale clinical imaging data.
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spelling pubmed-77135262021-11-09 Joint Imaging Platform for Federated Clinical Data Analytics Scherer, Jonas Nolden, Marco Kleesiek, Jens Metzger, Jasmin Kades, Klaus Schneider, Verena Bach, Michael Sedlaczek, Oliver Bucher, Andreas M. Vogl, Thomas J. Grünwald, Frank Kühn, Jens-Peter Hoffmann, Ralf-Thorsten Kotzerke, Jörg Bethge, Oliver Schimmöller, Lars Antoch, Gerald Müller, Hans-Wilhelm Daul, Andreas Nikolaou, Konstantin la Fougère, Christian Kunz, Wolfgang G. Ingrisch, Michael Schachtner, Balthasar Ricke, Jens Bartenstein, Peter Nensa, Felix Radbruch, Alexander Umutlu, Lale Forsting, Michael Seifert, Robert Herrmann, Ken Mayer, Philipp Kauczor, Hans-Ulrich Penzkofer, Tobias Hamm, Bernd Brenner, Winfried Kloeckner, Roman Düber, Christoph Schreckenberger, Mathias Braren, Rickmer Kaissis, Georgios Makowski, Marcus Eiber, Matthias Gafita, Andrei Trager, Rupert Weber, Wolfgang A. Neubauer, Jakob Reisert, Marco Bock, Michael Bamberg, Fabian Hennig, Jürgen Meyer, Philipp Tobias Ruf, Juri Haberkorn, Uwe Schoenberg, Stefan O. Kuder, Tristan Neher, Peter Floca, Ralf Schlemmer, Heinz-Peter Maier-Hein, Klaus JCO Clin Cancer Inform ORIGINAL REPORTS PURPOSE: Image analysis is one of the most promising applications of artificial intelligence (AI) in health care, potentially improving prediction, diagnosis, and treatment of diseases. Although scientific advances in this area critically depend on the accessibility of large-volume and high-quality data, sharing data between institutions faces various ethical and legal constraints as well as organizational and technical obstacles. METHODS: The Joint Imaging Platform (JIP) of the German Cancer Consortium (DKTK) addresses these issues by providing federated data analysis technology in a secure and compliant way. Using the JIP, medical image data remain in the originator institutions, but analysis and AI algorithms are shared and jointly used. Common standards and interfaces to local systems ensure permanent data sovereignty of participating institutions. RESULTS: The JIP is established in the radiology and nuclear medicine departments of 10 university hospitals in Germany (DKTK partner sites). In multiple complementary use cases, we show that the platform fulfills all relevant requirements to serve as a foundation for multicenter medical imaging trials and research on large cohorts, including the harmonization and integration of data, interactive analysis, automatic analysis, federated machine learning, and extensibility and maintenance processes, which are elementary for the sustainability of such a platform. CONCLUSION: The results demonstrate the feasibility of using the JIP as a federated data analytics platform in heterogeneous clinical information technology and software landscapes, solving an important bottleneck for the application of AI to large-scale clinical imaging data. American Society of Clinical Oncology 2020-11-09 /pmc/articles/PMC7713526/ /pubmed/33166197 http://dx.doi.org/10.1200/CCI.20.00045 Text en © 2020 by American Society of Clinical Oncology https://creativecommons.org/licenses/by/4.0/ Licensed under the Creative Commons Attribution 4.0 License: https://creativecommons.org/licenses/by/4.0/
spellingShingle ORIGINAL REPORTS
Scherer, Jonas
Nolden, Marco
Kleesiek, Jens
Metzger, Jasmin
Kades, Klaus
Schneider, Verena
Bach, Michael
Sedlaczek, Oliver
Bucher, Andreas M.
Vogl, Thomas J.
Grünwald, Frank
Kühn, Jens-Peter
Hoffmann, Ralf-Thorsten
Kotzerke, Jörg
Bethge, Oliver
Schimmöller, Lars
Antoch, Gerald
Müller, Hans-Wilhelm
Daul, Andreas
Nikolaou, Konstantin
la Fougère, Christian
Kunz, Wolfgang G.
Ingrisch, Michael
Schachtner, Balthasar
Ricke, Jens
Bartenstein, Peter
Nensa, Felix
Radbruch, Alexander
Umutlu, Lale
Forsting, Michael
Seifert, Robert
Herrmann, Ken
Mayer, Philipp
Kauczor, Hans-Ulrich
Penzkofer, Tobias
Hamm, Bernd
Brenner, Winfried
Kloeckner, Roman
Düber, Christoph
Schreckenberger, Mathias
Braren, Rickmer
Kaissis, Georgios
Makowski, Marcus
Eiber, Matthias
Gafita, Andrei
Trager, Rupert
Weber, Wolfgang A.
Neubauer, Jakob
Reisert, Marco
Bock, Michael
Bamberg, Fabian
Hennig, Jürgen
Meyer, Philipp Tobias
Ruf, Juri
Haberkorn, Uwe
Schoenberg, Stefan O.
Kuder, Tristan
Neher, Peter
Floca, Ralf
Schlemmer, Heinz-Peter
Maier-Hein, Klaus
Joint Imaging Platform for Federated Clinical Data Analytics
title Joint Imaging Platform for Federated Clinical Data Analytics
title_full Joint Imaging Platform for Federated Clinical Data Analytics
title_fullStr Joint Imaging Platform for Federated Clinical Data Analytics
title_full_unstemmed Joint Imaging Platform for Federated Clinical Data Analytics
title_short Joint Imaging Platform for Federated Clinical Data Analytics
title_sort joint imaging platform for federated clinical data analytics
topic ORIGINAL REPORTS
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7713526/
https://www.ncbi.nlm.nih.gov/pubmed/33166197
http://dx.doi.org/10.1200/CCI.20.00045
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