An Intelligent System for Medical Oxygen Consumption Management Using Oximetry and Barometry

Introduction:This paper presents the development of an intelligent system for managing medical oxygen consumption using oximetry and barometry in the hospitals of Mashhad University of Medical Sciences, utilizing machine learning methods. The system integrates various sensors and machine learning al...

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Main Authors: Abbas Izadi, Hadi Ghasemifard, Mohamad Amin Bakhshali, Nadia Roudsarabi, Omid Sarrafzadeh
Format: Article
Language:English
Published: Mashhad University of Medical Sciences 2023-07-01
Series:Patient Safety and Quality Improvement Journal
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Online Access:https://psj.mums.ac.ir/article_23133_c1af9cfadf5c3cbd1cd9c174fa089bfd.pdf
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author Abbas Izadi
Hadi Ghasemifard
Mohamad Amin Bakhshali
Nadia Roudsarabi
Omid Sarrafzadeh
author_facet Abbas Izadi
Hadi Ghasemifard
Mohamad Amin Bakhshali
Nadia Roudsarabi
Omid Sarrafzadeh
author_sort Abbas Izadi
collection DOAJ
description Introduction:This paper presents the development of an intelligent system for managing medical oxygen consumption using oximetry and barometry in the hospitals of Mashhad University of Medical Sciences, utilizing machine learning methods. The system integrates various sensors and machine learning algorithms to enable real-time monitoring and control of the oxygen supply chain. Materials and Methods: The proposed approach utilizes multiple sensors to measure the purity and pressure of medical oxygen, and this data is collected and processed using machine learning algorithms. The system uses a decision tree model to classify the purity and pressure readings and identify deviations from the specified parameters. The system also utilizes an artificial neural network model to predict future oxygen consumption levels, enabling proactive supply chain management. The system consists of two main components: the hardware component and the software component. The software component includes machine learning algorithms for data processing and system management. Results: The proposed system has been tested in several hospitals affiliated with Mashhad University of Medical Sciences, and the results show that it can effectively monitor and manage medical oxygen consumption with high accuracy and reliability. The machine learning algorithms used in the system have the potential to improve patient safety by identifying potential issues in the oxygen supply chain before they become critical.  Conclusion:In conclusion, this paper presents an innovative and intelligent system that utilizes machine learning methods to enhance the management of medical oxygen consumption in hospitals significantly.
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spelling doaj-art-8d96cef4d2074a15bd984536f5e99d972025-08-20T03:08:46ZengMashhad University of Medical SciencesPatient Safety and Quality Improvement Journal2345-44822345-44902023-07-0111317518210.22038/psj.2023.74926.140823133An Intelligent System for Medical Oxygen Consumption Management Using Oximetry and BarometryAbbas Izadi0Hadi Ghasemifard1Mohamad Amin Bakhshali2Nadia Roudsarabi3Omid Sarrafzadeh4Deputy of Treatment, Mashhad University of Medical Sciences, Mashhad, IranDeputy of Treatment, Mashhad University of Medical Sciences, Mashhad, IranDepartment of Medical Informatics, Faculty of Medicine, Mashhad University of Medical Sciences, Mashhad, IranDeputy of Treatment, Mashhad University of Medical Sciences, Mashhad, IranDeputy of Treatment, Mashhad University of Medical Sciences, Mashhad, IranIntroduction:This paper presents the development of an intelligent system for managing medical oxygen consumption using oximetry and barometry in the hospitals of Mashhad University of Medical Sciences, utilizing machine learning methods. The system integrates various sensors and machine learning algorithms to enable real-time monitoring and control of the oxygen supply chain. Materials and Methods: The proposed approach utilizes multiple sensors to measure the purity and pressure of medical oxygen, and this data is collected and processed using machine learning algorithms. The system uses a decision tree model to classify the purity and pressure readings and identify deviations from the specified parameters. The system also utilizes an artificial neural network model to predict future oxygen consumption levels, enabling proactive supply chain management. The system consists of two main components: the hardware component and the software component. The software component includes machine learning algorithms for data processing and system management. Results: The proposed system has been tested in several hospitals affiliated with Mashhad University of Medical Sciences, and the results show that it can effectively monitor and manage medical oxygen consumption with high accuracy and reliability. The machine learning algorithms used in the system have the potential to improve patient safety by identifying potential issues in the oxygen supply chain before they become critical.  Conclusion:In conclusion, this paper presents an innovative and intelligent system that utilizes machine learning methods to enhance the management of medical oxygen consumption in hospitals significantly.https://psj.mums.ac.ir/article_23133_c1af9cfadf5c3cbd1cd9c174fa089bfd.pdfmedical oxygen consumptionoximetrybarometrydecision treeartificial neural network
spellingShingle Abbas Izadi
Hadi Ghasemifard
Mohamad Amin Bakhshali
Nadia Roudsarabi
Omid Sarrafzadeh
An Intelligent System for Medical Oxygen Consumption Management Using Oximetry and Barometry
Patient Safety and Quality Improvement Journal
medical oxygen consumption
oximetry
barometry
decision tree
artificial neural network
title An Intelligent System for Medical Oxygen Consumption Management Using Oximetry and Barometry
title_full An Intelligent System for Medical Oxygen Consumption Management Using Oximetry and Barometry
title_fullStr An Intelligent System for Medical Oxygen Consumption Management Using Oximetry and Barometry
title_full_unstemmed An Intelligent System for Medical Oxygen Consumption Management Using Oximetry and Barometry
title_short An Intelligent System for Medical Oxygen Consumption Management Using Oximetry and Barometry
title_sort intelligent system for medical oxygen consumption management using oximetry and barometry
topic medical oxygen consumption
oximetry
barometry
decision tree
artificial neural network
url https://psj.mums.ac.ir/article_23133_c1af9cfadf5c3cbd1cd9c174fa089bfd.pdf
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