Assessment of an IoT platform for data collection and analysis for medical sensors

dc.contributor.author Rei,J en
dc.contributor.author Cláudia Vanessa Brito en
dc.contributor.author António Luís Sousa en
dc.contributor.other 7516 en
dc.contributor.other 5638 en
dc.date.accessioned 2023-02-28T18:49:21Z
dc.date.available 2023-02-28T18:49:21Z
dc.date.issued 2018 en
dc.description.abstract Health facilities produce an increasing and vast amount of data that must be efficiently analyzed. New approaches for healthcare monitoring are being developed every day and the Internet of Things (IoT) came to fill the still existing void on real-time monitoring. A new generation of mechanisms and techniques are being used to facilitate the practice of medicine, promoting faster diagnosis and prevention of diseases. We proposed a system that relies on IoT for storing and monitoring medical sensors data with analytic capabilities. To this end, we chose two approaches for storing this data which were thoroughly evaluated. Apache HBase presents a higher rate of data ingestion, when collaborating with the Kaa IoT platform, than Apache Cassandra, exhibiting good performance storing unstructured data, as presented in a healthcare environment. The outcome of this system has shown the possibility of a large number of medical sensors being simultaneously connected to the same platform (6000 records sent by the second or 48 ECG sensors with a frequency of 125Hz). The results presented in this paper are promising and should be further investigated as a comprehensive system would benefit the patient's diagnosis but also the physicians. © 2018 IEEE. en
dc.identifier P-00Q-3F2 en
dc.identifier.uri http://dx.doi.org/10.1109/cic.2018.00061 en
dc.identifier.uri https://repositorio.inesctec.pt/handle/123456789/13585
dc.language eng en
dc.rights info:eu-repo/semantics/openAccess en
dc.title Assessment of an IoT platform for data collection and analysis for medical sensors en
dc.type en
dc.type Publication en
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