Monter d'un niveau |
Ce graphique trace les liens entre tous les collaborateurs des publications de {} figurant sur cette page.
Chaque lien représente une collaboration sur la même publication. L'épaisseur du lien représente le nombre de collaborations.
Utilisez la molette de la souris ou les gestes de défilement pour zoomer à l'intérieur du graphique.
Vous pouvez cliquer sur les noeuds et les liens pour les mettre en surbrillance et déplacer les noeuds en les glissant.
Enfoncez la touche "Ctrl" ou la touche "⌘" en cliquant sur les noeuds pour ouvrir la liste des publications de cette personne.
Amer, M., Abuelnasr, A., Ali, M., Hassan, A., Trigui, A., Ragab, A., Sawan, M., & Savaria, Y. (2024). Enhanced dynamic regulation in Buck Converters: integrating input-voltage feedforward with voltage-mode feedback. IEEE Access, 12, 7310-7328. Disponible
Ahmed, M., Trigui, A., Genevey, S., Audet, Y., & Savaria, Y. (2024). A 32-mV Supply Ring Oscillator Composed of Modified Schmitt Trigger Delay Cells for Integrated Start-up Circuits in DC Energy Harvesting Systems. IEEE Access, 3457839 (13 pages). Lien externe
Ben Fadhel, Y., Trigui, A., Rahmani, S., & Al-Haddad, K. (2021). Resonant Inductive Coupling for Wirelessly Powering Active Implants: Current Issues, Proposed Solutions and Future Technological attempts. Dans Advanced Systems for Biomedical Applications (Vol. 39, p. 39-75). Lien externe
Hassan, A., Trigui, A., Savaria, Y., & Sawan, M. (septembre 2023). High-Temperature Fully Integrated Wireless Monitoring Systems for Aerospace Applications [Communication écrite]. IEEE International Conference on Wireless for Space and Extreme Environments (WiSEE 2023), Aveiro, Portugal. Lien externe
Hassan, A., Ali, M., Trigui, A., Savaria, Y., & Sawan, M. (2019). A GaN-based wireless monitoring system for high-temperature applications. Sensors, 19(8), 1785 (17 pages). Disponible
Hassan, A., Ali, M., Trigui, A., Hached, S., Savaria, Y., & Sawan, M. (juin 2017). Stability of GaN150-based HEMT in high temperature up to 400°C [Communication écrite]. 15th IEEE International New Circuits and Systems Conference (NEWCAS 2017), Strasbourg, France. Lien externe
Hached, S., Trigui, A., Garon, A., Loutochin, O., Corcos, J., & Sawan, M. (2016). Novel electromechanic artificial urinary sphincter. IEEE/ASME Transactions on Mechatronics, 21(2), 945-955. Lien externe
Hassan, A., Trigui, A., & Sawan, M. (février 2016). Wireless monitoring of collagen progression around implantable prostheses [Communication écrite]. 7th IEEE Latin American Symposium on Circuits & Systems (LASCAS 2016), Florianopolis, Brazil. Lien externe
Hassan, A., Trigui, A., Shafique, U., Savaria, Y., & Sawan, M. (mai 2016). Wireless power transfer through metallic barriers enclosing a harsh environment, feasibility and preliminary results [Affiche]. IEEE International Symposium on Circuits and Systems (ISCAS 2016), Montréal, Québec. Lien externe
Hached, S., Trigui, A., El Khalloufi, I., Sawan, M., Loutochin, O., & Corcos, J. (avril 2014). A Bluetooth-based Low-Energy Qi-compliant battery charger for implantable medical devices [Communication écrite]. IEEE International Symposium on Bioelectronics and Bioinformatics (ISBB 2014), Chung Li, Taiwan (4 pages). Lien externe
Trigui, A. (2020). Remote Powering and Data Communication Over a Single Inductive Link for Implantable Medical Devices [Thèse de doctorat, Polytechnique Montréal]. Disponible
Trigui, A., Ali, M., Hached, S., David, J. P., Ammari, A. C., Savaria, Y., & Sawan, M. (2020). Generic Wireless Power Transfer and Data Communication System Based on a Novel Modulation Technique. IEEE Transactions on Circuits and Systems I: Regular Papers, 67(11), 3978-3990. Lien externe
Trigui, A., Ali, M., Ammari, A. C., Savaria, Y., & Sawan, M. (2019). Energy Efficient Generic Demodulator for High Data Transmission Rate Over an Inductive Link for Implantable Devices. IEEE Access, 7, 159379-159389. Lien externe
Trigui, A., Hached, S., Ammari, A., Savaria, Y., & Sawan, M. (2019). Maximizing Data Transmission Rate for Implantable Devices Over a Single Inductive Link: Methodological Review. IEEE Reviews in Biomedical Engineering, 12, 72-87. Lien externe
Trigui, A., Ali, M., Ammari, A. C., Savaria, Y., & Sawan, M. (2018). A 1.5-pJ/bit, 9.04-Mbit/s Carrier-Width Demodulator for Data Transmission Over an Inductive Link Supporting Power and Data Transfer. IEEE Transactions on Circuits and Systems II: Express Briefs, 65(10), 1420-1424. Lien externe
Trigui, A., Ali, M., Ammari, A. C., Savaria, Y., & Sawan, M. (juin 2017). A 14.5 W generic carrier width demodulator for telemetry-based medical devices [Communication écrite]. 15th IEEE International New Circuits and Systems Conference (NEWCAS 2017), Strasbourg, France. Lien externe
Trigui, A., Ali, M., Ammari, A. C., Savaria, Y., & Sawan, M. (juin 2016). Quad-Level Carrier Width Modulation demodulator for micro-implants [Communication écrite]. 14th IEEE International New Circuits and Systems Conference (NEWCAS 2016), Vancouver, Canada (4 pages). Lien externe
Trigui, A., Hached, S., Mounaïm, F., Ammari, A. C., & Sawan, M. (2015). Inductive power transfer system with self-calibrated primary resonant frequency. IEEE Transactions on Power Electronics, 30(11), 6078-6087. Lien externe
Trigui, A., Mehri, S., Ammari, A., Ben Hadj Slama, J., & Sawan, M. (2015). Prosthetic power supplies. Dans Wiley Encyclopedia of Electrical and Electronics Engineering . Lien externe
Trigui, A. (2014). Asservissement de l'énergie inductive transmise aux implants électroniques [Mémoire de maîtrise, École Polytechnique de Montréal]. Disponible
Trigui, A., Hached, S., & Sawan, M. (mai 2013). Automatic control of inductive energy transmitted to electronic implants [Communication écrite]. International Symposium on Wireless Power Transmission (ISPWT 2013), Guiyang, China. Non disponible