Jae-Sung An
Orcid: 0000-0002-9831-5902
According to our database1,
Jae-Sung An
authored at least 11 papers
between 2016 and 2021.
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Bibliography
2021
A Readout IC for Capacitive Touch Screen Panels With 33.9 dB Charge-Overflow Reduction Using Amplitude-Modulated Multi-Frequency Excitation.
IEEE J. Solid State Circuits, 2021
2020
A 64-Channel Transmit Beamformer With ±30-V Bipolar High-Voltage Pulsers for Catheter-Based Ultrasound Probes.
IEEE J. Solid State Circuits, 2020
IEEE J. Solid State Circuits, 2020
23.6 A 2pA/√Hz Transimpedance Amplifier for Miniature Ultrasound Probes with 36dB Continuous-Time Gain Compensation.
Proceedings of the 2020 IEEE International Solid- State Circuits Conference, 2020
28.1 A Capacitive Touch Chipset with 33.9dB Charge-Overflow Reduction Using Amplitude-Modulated Multi-Frequency Excitation and Wireless Power and Data Transfer to an Active Stylus.
Proceedings of the 2020 IEEE International Solid- State Circuits Conference, 2020
2019
An Integrated Programmable High-Voltage Bipolar Pulser With Embedded Transmit/Receive Switch for Miniature Ultrasound Probes.
Proceedings of the 45th IEEE European Solid State Circuits Conference, 2019
2018
A Low-Power Analog Delay Line Using a Current-Splitting Method for 3-D Ultrasound Imaging Systems.
IEEE Trans. Circuits Syst. II Express Briefs, 2018
A 3.9-kHz Frame Rate and 61.0-dB SNR Analog Front-End IC With 6-bit Pressure and Tilt Angle Expressions of Active Stylus Using Multiple-Frequency Driving Method for Capacitive Touch Screen Panels.
IEEE J. Solid State Circuits, 2018
Multi-way interactive capacitive touch system with palm rejection of active stylus for 86" touch screen panels.
Proceedings of the 2018 IEEE International Solid-State Circuits Conference, 2018
2017
9.6 A 3.9kHz-frame-rate capacitive touch system with pressure/tilt angle expressions of active stylus using multiple-frequency driving method for 65″ 104×64 touch screen panel.
Proceedings of the 2017 IEEE International Solid-State Circuits Conference, 2017
2016
A highly linear and accurate touch data extraction algorithm based on polar coordinates for large-sized capacitive touch screen panels.
IEEE Trans. Consumer Electron., 2016