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Development of an integrated conductive electrode system for real-time physiological parameters monitoring

dc.contributor.advisorRahim, Abu Hamed M. Abdur
dc.contributor.advisorMahmud, Tasfin
dc.contributor.advisorShawon, Md. Mehedi Hasan
dc.contributor.authorShadman, Anwar
dc.contributor.authorAbbas, Tanima
dc.contributor.authorRagib, Md.Rafayet Islam
dc.contributor.authorSame, Md.Sameul Islam
dc.contributor.departmentDepartment of Electrical and Electronic Engineering
dc.date.accessioned2025-05-06T08:59:40Z
dc.date.available2025-05-06T08:59:40Z
dc.date.copyright2025
dc.date.issued2025-01
dc.descriptionCataloged from PDF version of final year design project.
dc.descriptionIncludes bibliographical references (pages 69-72).
dc.descriptionThis final year design project is submitted in partial fulfillment of the requirements for the degree of Bachelor of Science in Electrical and Electronic Engineering and Electronic and Communication Engineering, 2025.en_US
dc.description.abstractThe development of an Integrated Conductive Electrode System (ICES) offers a transformative approach to real-time physiological parameter monitoring, addressing the demand for non-invasive, accurate, and accessible healthcare solutions. Designed to measure electrocardiography (ECG), Heart rate, Oxygen level (SpO2), Blood pressure, and Body temperature. The system integrates conductive textile electrodes within wearable fabrics, ensuring user comfort and continuous signal acquisition. Advanced signal processing techniques effectively reduce motion artifacts, enhancing data reliability even during movement. Real-time data transmission to a mobile application facilitates continuous monitoring, making the system ideal for home healthcare, athletic performance assessment, and chronic disease management. The incorporation of reusable conductive textiles promotes sustainability, while an optimized power management system ensures prolonged usability. Comprehensive simulations and functional verifications validate the system’s high accuracy and adaptability across various conditions. By bridging the gap between clinical diagnostics and real-world monitoring, this work advances wearable health technology with a scalable, practical solution. Future research will focus on material compatibility, data security, and regulatory compliance to support widespread adoption. The findings align with global initiatives to develop cost-effective, technology-driven, and sustainable healthcare solutions.en_US
dc.description.degreeB.Sc. in Electrical and Electronic Engineering
dc.description.statementofresponsibilityAnwar Shadman
dc.description.statementofresponsibilityTanima Abbas
dc.description.statementofresponsibilityMd.Rafayet Islam Ragib
dc.description.statementofresponsibilityMd.Sameul Islam Same
dc.format.extent134 pages
dc.identifier.otherID 20321028
dc.identifier.otherID 20321041
dc.identifier.otherID 20121064
dc.identifier.otherID 20321015
dc.identifier.urihttp://hdl.handle.net/10361/25863
dc.language.isoenen_US
dc.publisherBRAC Universityen_US
dc.rightsBRAC University project reports are protected by copyright. They may be viewed from this source for any purpose, but reproduction or distribution in any format is prohibited without written permission.
dc.subjectPhysiological monitoringen_US
dc.subjectConductive electrodesen_US
dc.subjectWearable health technologyen_US
dc.subjectRemote healthcareen_US
dc.subjectBiomedical sensorsen_US
dc.subjectSignal processingen_US
dc.subjectNon-invasive monitoringen_US
dc.subjectSmart textilesen_US
dc.subjectReal-time data feedbacken_US
dc.subjectSustainabilityen_US
dc.titleDevelopment of an integrated conductive electrode system for real-time physiological parameters monitoringen_US
dc.typeProject Reporten_US

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