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Glenn E. R. Cowan
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- affiliation: Concordia University, Montréal, Canada
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2020 – today
- 2024
- [j18]Vinicius G. Sirtoli, Laura Morelli, Ricardo J. Zednik, Glenn E. R. Cowan, Ghyslain Gagnon:
Motion Artifact Modeling of Capacitive Electrodes Based on Triboelectric Nanogenerators. IEEE Trans. Instrum. Meas. 73: 1-10 (2024) - [c44]Yu-Neng Wang, Glenn E. R. Cowan, Ulrich Rührmair, Sara Achour:
Design of Novel Analog Compute Paradigms with Ark. ASPLOS (2) 2024: 269-286 - [c43]Sara Radfar, Glenn E. R. Cowan:
Interleaving Active Feedback in Inverter-Based Optical Receivers for Bandwidth Extension and Linearity Improvement. ISCAS 2024: 1-5 - [c42]Allan Riboullet, Frédéric Nabki, Yves Blaquière, Glenn E. R. Cowan:
Configurable and Intelligent Switched CMOS Current Driver Powering Arrays of Electrothermal Actuators for MEMS Switches. ISCAS 2024: 1-5 - [c41]Sara Radfar, Glenn E. R. Cowan:
Linearity Enhancement for Inverter-Based Optical Receivers Employing Active Feedback. MWSCAS 2024: 10-14 - [i2]J. Garcia-Echeverria, D. Musat, A. Mahsafar, Kaveh Rahbardar Mojaver, D. Rolston, Glenn E. R. Cowan, Odile Liboiron-Ladouceur:
Self-calibrated Microring Weight Function for Neuromorphic Optical Computing. CoRR abs/2409.06604 (2024) - 2023
- [j17]Vinicius G. Sirtoli, Mokhtar Liamini, Lucas T. Lins, Mathieu Lessard-Tremblay, Glenn E. R. Cowan, Ricardo J. Zednik, Ghyslain Gagnon:
Removal of Motion Artifacts in Capacitive Electrocardiogram Acquisition: A Review. IEEE Trans. Biomed. Circuits Syst. 17(3): 394-412 (2023) - [j16]Abdullah Ibn Abbas, Xiangdong Jia, Glenn E. R. Cowan:
A Power-Proportional, Dual-Bandwidth, and Constant-Delay Receiver Front-End for Energy-Efficient Dual-Rate Optical Links. IEEE Trans. Very Large Scale Integr. Syst. 31(4): 431-441 (2023) - [i1]Yu-Neng Wang, Glenn E. R. Cowan, Ulrich Rührmair, Sara Achour:
Design of Novel Analog Compute Paradigms with Ark. CoRR abs/2309.08774 (2023) - 2022
- [j15]Abdullah Ibn Abbas, Glenn E. R. Cowan:
Fast-Locking Burst-Mode Clock and Data Recovery for Parallel VCSEL-Based Optical Link Receivers. IEEE Access 10: 34306-34320 (2022) - [j14]Diaaeldin Abdelrahman, Odile Liboiron-Ladouceur, Glenn E. R. Cowan:
CMOS-Driven VCSEL-Based Photonic Links: an Exploration of the Power-Sensitivity Trade-Off. IEEE Access 10: 89331-89345 (2022) - [j13]Bahaa Radi, Diaaeldin Abdelrahman, Odile Liboiron-Ladouceur, Glenn E. R. Cowan, Tony Chan Carusone:
Optimal Optical Receivers in Nanoscale CMOS: A Tutorial. IEEE Trans. Circuits Syst. II Express Briefs 69(6): 2604-2609 (2022) - [j12]Abdullah Ibn Abbas, Glenn E. R. Cowan:
A Receiver Front-End for VCSEL-Based Optical Links With 49 UI Turn-On Time. IEEE Trans. Very Large Scale Integr. Syst. 30(4): 539-543 (2022) - [c40]Sami Sattar, Glenn E. R. Cowan:
Single-Event Transient Tolerant Optical Receiver Using Triple Modular Redundancy. ISCAS 2022: 995-999 - [c39]Karthi Srinivasan, Glenn E. R. Cowan:
Subthreshold CMOS Implementation of the Izhikevich Neuron Model. ISCAS 2022: 1062-1066 - [c38]Sara Mahran, Odile Liboiron-Ladouceur, Glenn E. R. Cowan:
Triple-Mode Low-Power 20 Gb/s SST Driver for Short Reach Interconnects. ISCAS 2022: 1127-1131 - [c37]Van Ha Nguyen, Xuan-Dien Do, Yves Blaquière, Glenn E. R. Cowan:
Multi-Phase Hybrid Boost Converter with High Conduction Loss Reduction and Fast Dynamic Response for Automotive Applications. NEWCAS 2022: 183-187 - [c36]Van Ha Nguyen, Nueraimaiti Aimaier, Gabriel Nobert, Tan Pham, Nicolas G. Constantin, Yves Blaquière, Glenn E. R. Cowan:
A Reconfigurable Power System-in-Package Module using GaN HEMTs and IC Bare Dies on LTCC Substrate: Design - Implementation - Experiment and Future Directions. NEWCAS 2022: 188-192 - [c35]Van Ha Nguyen, Xuan-Dien Do, Yves Blaquière, Glenn E. R. Cowan:
A 3.3 V 0.1-1 A Hybrid Buck-Boost Converter with 85-97 % Power Efficiency Range Highly-Suited for Battery-Powered Devices using Low-Profile High-DCR Inductor. NEWCAS 2022: 303-307 - [c34]Seyed Amirhossein Nasrollahi, Anatoly Syutkin, Glenn E. R. Cowan:
Input-Layer Neuron Implementation Using Delta-Sigma Modulators. NEWCAS 2022: 533-537 - 2021
- [j11]Van Ha Nguyen, Nam Ly, Abdul Hafiz Alameh, Yves Blaquière, Glenn E. R. Cowan:
A Versatile 200-V Capacitor-Coupled Level Shifter for Fully Floating Multi-MHz Gate Drivers. IEEE Trans. Circuits Syst. II Express Briefs 68(5): 1625-1629 (2021) - [c33]Nueraimaiti Aimaier, Nam Ly, Gabriel Nobert, Yves Blaquière, Nicolas G. Constantin, Glenn E. R. Cowan:
SHEPWM Class-D Amplifier with a Reconfigurable Gate Driver Integrated Circuit. ISCAS 2021: 1-5 - [c32]Van Ha Nguyen, Abdul Hafiz Alameh, Nam Ly, Yves Blaquière, Glenn E. R. Cowan:
A Novel Minimum-Phase Dual-Inductor Hybrid Boost Converter with PWM Voltage-Mode Controller. ISCAS 2021: 1-5 - [c31]Van Ha Nguyen, Nam Ly, Abdul Hafiz Alameh, Yves Blaquière, Glenn E. R. Cowan:
Compact and Low-Power Under-Voltage Lockout and Thermal-Shutdown Protection Circuits Using a Novel Low-Iq All-in-One Bandgap Comparator. ISCAS 2021: 1-5 - [c30]Sara Mahran, Odile Liboiron-Ladouceur, Glenn E. R. Cowan:
20 Gb/s Dual-Mode SST VCSEL Driver. MWSCAS 2021: 428-431 - [c29]Di Zhang, Glenn E. R. Cowan:
A Pull-up VCSEL Driver With a Shunt RC Load in 65-nm CMOS. MWSCAS 2021: 1022-1025 - [c28]Pouria Aminfar, Glenn E. R. Cowan:
Multi-Stage Damping Factor Modulation in Optical Receiver Front-Ends. MWSCAS 2021: 1031-1034 - 2020
- [j10]Mathieu Lessard-Tremblay, Joshua Weeks, Laura Morelli, Glenn E. R. Cowan, Ghyslain Gagnon, Ricardo J. Zednik:
Contactless Capacitive Electrocardiography Using Hybrid Flexible Printed Electrodes. Sensors 20(18): 5156 (2020) - [c27]Christopher Williams, Diaaeldin Abdelrahman, Xiangdong Jia, Abdullah Ibn Abbas, Glenn E. R. Cowan, Odile Liboiron-Ladouceur:
Reconfiguration in Source-Synchronous Receivers for Short-Reach Parallel Optical Links. ISCAS 2020: 1 - [c26]Diaaeldin Abdelrahman, Glenn E. R. Cowan:
Noise Analysis and Design Considerations for Equalizer-Based Optical Receivers. ISCAS 2020: 1 - [c25]Pouria Aminfar, Glenn E. R. Cowan:
Dynamic Damping in Transimpedance Amplifiers. ISCAS 2020: 1-5 - [c24]Pouria Aminfar, Glenn E. R. Cowan:
Square-Wave Modulated Damping in Transimpedance Amplifiers. MWSCAS 2020: 691-694 - [c23]Nam Ly, Nueraimaiti Aimaier, Abdul Hafiz Alameh, Yves Blaquière, Glenn E. R. Cowan, Nicolas G. Constantin:
A High Voltage Multi-Purpose On-the-fly Reconfigurable Half-Bridge Gate Driver for GaN HEMTs in 0.18-μm HV SOI CMOS Technology. NEWCAS 2020: 178-181 - [c22]Vinicius G. Sirtoli, Ghyslain Gagnon, Glenn E. R. Cowan:
Motion Artifact Mitigation Using Negative Feedback in Capacitively-Coupled ECG. NEWCAS 2020: 323-326
2010 – 2019
- 2019
- [j9]Diaaeldin Abdelrahman, Glenn E. R. Cowan:
Noise Analysis and Design Considerations for Equalizer-Based Optical Receivers. IEEE Trans. Circuits Syst. I Regul. Pap. 66-I(8): 3201-3212 (2019) - [j8]Christopher Williams, Diaaeldin Abdelrahman, Xiangdong Jia, Abdullah Ibn Abbas, Odile Liboiron-Ladouceur, Glenn E. R. Cowan:
Reconfiguration in Source-Synchronous Receivers for Short-Reach Parallel Optical Links. IEEE Trans. Very Large Scale Integr. Syst. 27(7): 1548-1560 (2019) - 2018
- [j7]Monireh Moayedi Pour Fard, Odile Liboiron-Ladouceur, Glenn E. R. Cowan:
1.23-pJ/bit 25-Gb/s Inductor-Less Optical Receiver With Low-Voltage Silicon Photodetector. IEEE J. Solid State Circuits 53(6): 1793-1805 (2018) - 2017
- [c21]Xiangdong Jia, Glenn E. R. Cowan:
A 8-Gb/s 0.256-pJ/b transceiver for 5-mm on-chip interconnects in 130-nm CMOS. ISCAS 2017: 1-4 - [c20]Diaa Abdelrahman, Glenn E. R. Cowan, Odile Liboiron-Ladouceur:
Low-noise optical receiver front-end using narrow-bandwidth TIA and cascaded linear equalizer. MWSCAS 2017: 735-738 - [c19]Marjan Madani, Glenn E. R. Cowan:
10 Gb/s optical receiver with continuous-time feed-forward equalization. MWSCAS 2017: 926-929 - 2015
- [j6]Monireh Moayedi Pour Fard, Glenn E. R. Cowan, Odile Liboiron-Ladouceur:
Analysis of Low-Bit Soft-Decision Error Correction in Optical Front Ends. JOCN 7(9): 885-897 (2015) - [j5]Shahaboddin Moazzeni, Mohamad Sawan, Glenn E. R. Cowan:
An Ultra-Low-Power Energy-Efficient Dual-Mode Wake-Up Receiver. IEEE Trans. Circuits Syst. I Regul. Pap. 62-I(2): 517-526 (2015) - [c18]Glenn E. R. Cowan, Kevin Cushon, Warren J. Gross:
Mixed-signal implementation of differential decoding using binary message passing algorithms. ASAP 2015: 116-119 - [c17]Paul Leons, Aryan Yaghoubian, Glenn E. R. Cowan, Jelena Trajkovic, Yvon Nazon, Samar Abdi:
On improving the range of inductive proximity sensors for avionic applications. ISQED 2015: 547-551 - [c16]Weihao Ni, Marc-Alexandre Chan, Glenn E. R. Cowan:
Inductorless bandwidth extension using local positive feedback in inverter-based TIAs. MWSCAS 2015: 1-4 - 2013
- [c15]Partha Protim Dash, Glenn E. R. Cowan, Odile Liboiron-Ladouceur:
Inductorless, powerl-proportional, optical receiver front-end in TSMC 90 nm. ISCAS 2013: 1127-1130 - [c14]Shahaboddin Moazzeni, Glenn E. R. Cowan, Mohamad Sawan:
A mismatch-robust period-based VCO frequency comparison technique for ULP receivers. ISCAS 2013: 1765-1768 - [c13]Glenn E. R. Cowan, Christopher Williams:
Phase-locked loop architecture for enhanced voltage-controlled oscillator phase-noise suppression. ISCAS 2013: 2476-2479 - [c12]Glenn E. R. Cowan, Mounir Meghelli, Daniel J. Friedman:
A linearized voltage-controlled oscillator for dual-path phase-locked loops. ISCAS 2013: 2678-2681 - [c11]Partha Protim Dash, Glenn E. R. Cowan, Odile Liboiron-Ladouceur:
A variable-bandwidth, power-scalable optical receiver front-end in 65 nm. MWSCAS 2013: 717-720 - [c10]Christopher Williams, Glenn E. R. Cowan, Odile Liboiron-Ladouceur:
Power and noise configurable phase-locked loop using multi-oscillator feedback alignment. MWSCAS 2013: 1023-1026 - [c9]Majid Behbahani, Glenn E. R. Cowan:
Phase-noise tuneable ring voltage-controlled oscillator in 90 nm CMOS. MWSCAS 2013: 1031-1034 - 2012
- [j4]Seyed Ebrahim Esmaeili, Asim J. Al-Khalili, Glenn E. R. Cowan:
Low-Swing Differential Conditional Capturing Flip-Flop for LC Resonant Clock Distribution Networks. IEEE Trans. Very Large Scale Integr. Syst. 20(8): 1547-1551 (2012) - [c8]Seyed Ebrahim Esmaeili, Ali M. Farhangi, Asim J. Al-Khalili, Glenn E. R. Cowan:
Clock tree structure with reduced wire length using the matched-delay skew compensation technique. CCECE 2012: 1-4 - [c7]Seyed Ebrahim Esmaeili, Riadul Islam, Asim J. Al-Khalili, Glenn E. R. Cowan:
Dual-edge triggered sense amplifier flip-flop utilizing an improved scheme to reduce area, power, and complexity. ICECS 2012: 292-295 - [c6]Shahaboddin Moazzeni, Glenn E. R. Cowan, Mohamad Sawan:
A 28µW sub-sampling based wake-up receiver with -70dBm sensitivity for 915MHz ISM band applications. ISCAS 2012: 2797-2800 - [c5]Shahaboddin Moazzeni, Glenn E. R. Cowan, Mohamad Sawan:
A comprehensive study on the power-sensitivity trade-off in TRF receivers. NEWCAS 2012: 401-404 - 2010
- [j3]Seyed Ebrahim Esmaeili, Ali M. Farhangi, Asim J. Al-Khalili, Glenn E. R. Cowan:
Skew compensation in energy recovery clock distribution networks. IET Comput. Digit. Tech. 4(1): 56-72 (2010) - [j2]Seyed Ebrahim Esmaeili, A. J. Al-Khalili, Glenn E. R. Cowan:
Dual-edge triggered sense amplifier flip-flop for resonant clock distribution networks. IET Comput. Digit. Tech. 4(6): 499-514 (2010) - [c4]Seyed Ebrahim Esmaeili, Asim J. Al-Khalili, Glenn E. R. Cowan:
Estimating required driver strength in the resonant clock generator. APCCAS 2010: 927-930
2000 – 2009
- 2009
- [c3]Seyed Ebrahim Esmaeili, A. J. Al-Khalili, Glenn E. R. Cowan:
Dual-edge triggered energy recovery DCCER flip-flop for low energy applications. ECCTD 2009: 57-60 - [c2]Omidreza Ghasemi, Rabin Raut, Glenn E. R. Cowan:
A Low Power Transimpedance Amplifier using Inductive Feedback Approach in 90nm CMOS. ISCAS 2009: 1937-1940 - 2006
- [j1]Glenn E. R. Cowan, Robert C. Melville, Yannis P. Tsividis:
A VLSI analog computer/digital computer accelerator. IEEE J. Solid State Circuits 41(1): 42-53 (2006) - 2005
- [c1]Yannis P. Tsividis, Glenn E. R. Cowan, Yee William Li, Kenneth L. Shepard:
Continuous-time DSPs, analog/digital computers and other mixed-domain circuits. ESSCIRC 2005: 113-116
Coauthor Index
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last updated on 2024-10-23 20:35 CEST by the dblp team
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