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description Publicationkeyboard_double_arrow_right Article , Other literature type 2022Publisher:MDPI AG Funded by:EC | ASCLEPIOSEC| ASCLEPIOSAuthors:Evgenia Psarra;
Evgenia Psarra
Evgenia Psarra in OpenAIREDimitris Apostolou;
Yiannis Verginadis; Ioannis Patiniotakis; +1 AuthorsDimitris Apostolou
Dimitris Apostolou in OpenAIREEvgenia Psarra;
Evgenia Psarra
Evgenia Psarra in OpenAIREDimitris Apostolou;
Yiannis Verginadis; Ioannis Patiniotakis;Dimitris Apostolou
Dimitris Apostolou in OpenAIREGregoris Mentzas;
Gregoris Mentzas
Gregoris Mentzas in OpenAIREEffective access control techniques are in demand, as electronically assisted healthcare services require the patient’s sensitive health records. In emergency situations, where the patient’s well-being is jeopardized, different healthcare actors associated with emergency cases should be granted permission to access Electronic Health Records (EHRs) of patients. The research objective of our study is to develop machine learning techniques based on patients’ time sequential health metrics and integrate them with an Attribute Based Access Control (ABAC) mechanism. We propose an ABAC mechanism that can yield access to sensitive EHRs systems by applying prognostic context handlers where contextual information, is used to identify emergency conditions and permit access to medical records. Specifically, we use patients’ recent health history to predict the health metrics for the next two hours by leveraging Long Short Term Memory (LSTM) Neural Networks (NNs). These predicted health metrics values are evaluated by our personalized fuzzy context handlers, to predict the criticality of patients’ status. The developed access control method provides secure access for emergency clinicians to sensitive information and simultaneously safeguards the patient’s well-being. Integrating this predictive mechanism with personalized context handlers proved to be a robust tool to enhance the performance of the access control mechanism to modern EHRs System.
Electronics arrow_drop_down ElectronicsOther literature type . 2022License: CC BYFull-Text: http://www.mdpi.com/2079-9292/11/19/3040/pdfData sources: Multidisciplinary Digital Publishing Instituteadd ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
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more_vert Electronics arrow_drop_down ElectronicsOther literature type . 2022License: CC BYFull-Text: http://www.mdpi.com/2079-9292/11/19/3040/pdfData sources: Multidisciplinary Digital Publishing Instituteadd ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.All Research productsarrow_drop_down <script type="text/javascript"> <!-- document.write('<div id="oa_widget"></div>'); document.write('<script type="text/javascript" src="https://beta.openaire.eu/index.php?option=com_openaire&view=widget&format=raw&projectId=10.3390/electronics11193040&type=result"></script>'); --> </script>
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