Yen-Cheng Kuan

dblp:41/10347 · DBLP profile ↗
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8ranked-venue papers
1as first author
6since 2021 · last 2026
0000-0001-7026-4595ORCID · verified

Domains — the database's venue-derived domains; a paper can count in several

Systems, architecture and hardware · 5 · 4 since 2021Artificial intelligence and machine learning · 1 · 1 since 2021Graphics, computer vision, multimedia, augmented reality and games · 1 · 1 since 2021Applied, interdisciplinary, general and emerging computing · 1 · 1 first-author
YearPublicationVenuePosition
2026 An Enhanced-Bandwidth Noise-Shaping SAR ADC Using RC-Tracking Circuit as Amplifier
Eric Christie, Yen-Cheng Kuan, Long Kong, Shiuh-Hua Wood Chiang
ISCAS3
2025 Reservoir Computing with VCO-Based Spiking Neurons for Regression and Classification
abstract
Reservoir computing (RC) significantly reduces the requirement on hardware and training resources, making it suitable for edge-computing applications. This work proposes using voltage-controlled oscillator (VCO)-based spiking neurons for RC to leverage the intrinsic randomness and variability of the neuron circuit for low-power operations. We describe the underlying circuit design and propose a network architecture based on the spiking neuron for RC. We demonstrate the effectiveness of the proposed RC network using VCO-based spiking neurons through benchmark tasks and electrocardiogram (ECG) classification.
Kanta Yoshioka, Parker Allred, Taylor Barton, Bibhu Datta Sahoo 0003, Yen-Cheng Kuan, Shiuh-Hua Wood Chiang, Hakaru Tamukoh
ISCAS5
2024 A Ka- to W-Band Tightly Coupled Array Antenna-in-Package Using Glass IPD for Ultrawideband mmWave Wireless Communication
abstract
This paper presents the broadband communication capability of a millimeter-wave (mmWave) ultrawideband tightly coupled array (TCA) antenna based on high-density interconnect (HDI) antenna-in-package (AiP) technology. The essential antenna array elements are crafted using glass-based integrated passive devices (IPDs) and are subsequently flip-chipped on a multilayered HDI printed circuit board (PCB). The antenna features a wide impedance bandwidth from Ka- to W-band, suiting applications that demand a large signal bandwidth.
Ching-Wen Chiang, Neda Khiabani, Donglin Gao, Chien-Nan Kuo, Yen-Cheng Kuan, Chung-Tse Michael Wu
ISCAS5
2024 Multistage Charge Pump Design Methodology for Zero-Crossing-Based Amplifiers
abstract
The multi-stage charge pump in a zero-crossing-based amplifier (ZCBA) presents complex trade-offs. In this brief, we propose a generalized behavioral model for the ZCBA to quickly predict the optimal charge pump design for a ZCBA based on circuit parameters, without conducting time-consuming transistor-level simulations iteratively. This model enables us to numerically analyze in MATLAB the effects of the circuit parameters, which include the current scaling factor, number of current sources, current value, and input amplitude, on the settling performance including overshoot and settling time. The analysis results conclude that there exists an optimal number of stages that yields the fastest settling time for a given total current and load capacitance. Additionally, the settling time exhibits an asymptotic behavior with respect to the total current. To validate this behavioral model, we designed and simulated a transistor-level ZCBA in a 28-nm CMOS process, demonstrating a good agreement between the model analysis and simulation result.
Taylor Barton, Shea Smith, Yixin Song 0001, Yen-Cheng Kuan, Shiuh-Hua Wood Chiang
IEEE Trans. Comput. Aided Des. Integr. Circuits Syst.4
2022 A Novel Protocol-Free Bandage-Cover Cryptographer
abstract
Cyber security has become an important problem nowadays as almost everyone is often linked to the Internet for business and entertainment. Conventional cryptographers fail to address timely issues regarding cyber-attacks, such as cyber identity theft. In this work, we propose a novel idea, namely, a bandage-cover cryptographer (BCC), which is completely software-defined and protocol-free. Besides, this new cryptographic approach can enable camouflages to confuse data-mining robots, which are often encountered in the cyber world nowadays. Because all of the existing cryptographers aim to protect the entire data (document and file) altogether, they cannot have camouflagibility to mislead data-mining robots. Conversely, by our proposed novel BCC, one can select arbitrary contexts or parts of the data (related to individual identify and/or private confidential information) under protection. To evaluate such a first-ever cryptographer capable of misleading data-mining robots, we define two new metrics, namely: 1) vulnerability and 2) camouflage rates. The theoretical analyses of vulnerability rate and camouflage rate for our proposed new BCC are also presented in this article to demonstrate the corresponding effectiveness.
Elaine Y.-N. Sun, Hsiao-Chun Wu, Scott C.-H. Huang, Yen-Cheng Kuan
IEEE Trans. Cybern.4
2021 Efficient Recoverable Cryptographic Mosaic Technique by Permutations
abstract
Mosaic is a popular approach to provide privacy of data and image. However, the existing demosaicing techniques cannot accomplish efficient perfect-reconstruction. If the receiver wants to recover the original image, the extra transmission of the original subimage to be mosaicked is necessary, which consumes much channel resource and is therefore inefficient. In this paper, we propose a novel efficient recoverable cryptographic mosaic technique by permutations. A mosaic, or a privacy-protected subimage, can be constructed through either of the three permutations (Busch's, Wu's, and Sun's/Minmax). These three permutations are designed to maximize the objective function as the sum of the absolute row/column index-differences. This objective is related to the sum of the pixel-to-pixel cross-correlation by our pertinent theoretical study. To measure the effectiveness of the image-mosaicing methods, we propose two image-discrepancy measures, namely summed cross-correlation (SCC) and Kullback-Leibler divergence of discrete cosine transform (DCT-KLD). Compared to the big majority of random permutations for image-mosaicing, our proposed three permutation methods can achieve much better performances in terms of SCC. Nevertheless, the advantage of the three proposed permutation methods over random permutations is not obvious according to DCT-KLD.
Elaine Y.-N. Sun, Hsiao-Chun Wu, Costas Busch, Scott C.-H. Huang, Yen-Cheng Kuan, Shih Yu Chang
IEEE Trans. Circuits Syst. Video Technol.5
2018 A Single Layer 3-D Touch Sensing System for Mobile Devices Application
abstract
Touch sensing has been widely implemented as a main methodology to bridge human and machine interactions. The traditional touch sensing range is 2-D and therefore limits the user experience. To overcome these limitations, we propose a novel 3-D contactless touch sensing called Airtouch system, which improves user experience by remotely detecting single/multi-finger position. A single layer touch panel with triangle-shaped electrodes is proposed to achieve multitouch detection capability as well as manufacturing cost reduction. Moreover, an oscillator-based-capacitive touch sensing circuit is implemented as the sensing hardware with the bootstrapping technique to eliminate the interchannel coupling effects. To further improve the system accuracy, a grouping algorithm is proposed to group the useful channels' data and filter out hardware noise impact. Finally, improved algorithms are proposed to eliminate the fringing capacitance effect and achieve accurate finger position estimation. EM simulation proved that the proposed algorithm reduced the maximum systematic error by 11 dB in the horizontal position detection. The proposed system consumes 2.3 mW and is fully compatible with existing mobile device environments. A prototype is built to demonstrate that the system can successfully detect finger movement in a vertical direction up to 6 cm and achieve a horizontal resolution up to 0.6 cm at 1 cm finger-height. As a new interface for human and machine interactions, this system offers great potential in finger movement detection and gesture recognition for small-sized electronics and advanced human interactive games for mobile device.
Yan Zhang 0050, Yilei Li, Yuan Du, Yen-Cheng Kuan, Mau-Chung Frank Chang
IEEE Trans. Comput. Aided Des. Integr. Circuits Syst.6
2015 Wireless Gigabit Data Telemetry for Large-Scale Neural Recording
abstract
Implantable wireless neural recording from a large ensemble of simultaneously acting neurons is a critical component to thoroughly investigate neural interactions and brain dynamics from freely moving animals. Recent researches have shown the feasibility of simultaneously recording from hundreds of neurons and suggested that the ability of recording a larger number of neurons results in better signal quality. This massive recording inevitably demands a large amount of data transfer. For example, recording 2000 neurons while keeping the signal fidelity ( > 12 bit, > 40 KS/s per neuron) needs approximately a 1-Gb/s data link. Designing a wireless data telemetry system to support such (or higher) data rate while aiming to lower the power consumption of an implantable device imposes a grand challenge on neuroscience community. In this paper, we present a wireless gigabit data telemetry for future large-scale neural recording interface. This telemetry comprises of a pair of low-power gigabit transmitter and receiver operating at 60 GHz, and establishes a short-distance wireless link to transfer the massive amount of neural signals outward from the implanted device. The transmission distance of the received neural signal can be further extended by an externally rendezvous wireless transceiver, which is less power/heat-constraint since it is not at the immediate proximity of the cortex and its radiated signal is not seriously attenuated by the lossy tissue. The gigabit data link has been demonstrated to achieve a high data rate of 6 Gb/s with a bit-error-rate of 10(-12) at a transmission distance of 6 mm, an applicable separation between transmitter and receiver. This high data rate is able to support thousands of recording channels while ensuring a low energy cost per bit of 2.08 pJ/b.
Yen-Cheng Kuan, Yi-Kai Lo, Yanghyo Kim, Mau-Chung Frank Chang, Wentai Liu
IEEE J. Biomed. Health Informatics1