Junhua Liu 0001

dblp:30/4261-1 · DBLP profile ↗
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18ranked-venue papers
1as first author
6since 2021 · last 2024
0000-0002-2492-8124ORCID · verified

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

Systems, architecture and hardware · 16 · 6 since 2021Applied, interdisciplinary, general and emerging computing · 2 · 1 first-authorSoftware engineering, systems software and programming languages · 1 · 1 since 2021
YearPublicationVenuePosition
2024 DRGA-Based Second-Order Block Arnoldi Method for Model Order Reduction of MIMO RCS Circuits
abstract
With the escalating demand for fast simulation of large-scale multi-input multi-output (MIMO) RCS circuits formulated as second-order differential systems, the need arises for more effective decentralized second-order model order reduction (MOR) methods, while providing a desired approximation of the original system. Dynamic relative gain array (DRGA) that takes into account both the steady-state and dynamic system information has shown promising efficacy in measuring the degree of each loop interaction, which is crucial for decoupling a MIMO system into several multi-input single-output (MISO) subsystems. Although several decentralized MOR methods have been introduced for dimension reduction to linear MIMO networks, hardly has any research explored second-order decentralized MOR methods with regard to MIMO RCS circuits. Besides, the existing DRGA method based on first-order state feedback predictive control greatly increases the computational complexity when directly applying to second-order RCS systems. Hence, we develop a second-order block Arnoldi method based on DRGA, termed DRGA-SOBAR, which enables the extension of the SOAR method and the second-order DRGA method to MIMO scenarios. Experimental results on RCS networks show that most input-output interactions are negligible in terms of the magnitude-wise insignificance, and our proposed DRGA-SOBAR based reduced systems perform with higher accuracy compared to the PRIMA and the generalized block SOAR (SOBAR) methods, and higher efficiency compared to the decentralized SOBAR algorithm based on RGA method as well.
Haibao Chen, Jie Chen 0005, Pengpeng Ren, Zhigang Ji, Junhua Liu 0001, Runsheng Wang, Ru Huang 0001
IEEE Trans. Circuits Syst. I Regul. Pap.7
2023 SAGERoute: Synergistic Analog Routing Considering Geometric and Electrical Constraints with Manual Design Compatibility
abstract
Routing is critical to the post-layout performance of analog circuits. As modern analog layouts need to consider both geometric constraints (e.g., design rules and low bending constraints) and electrical constraints (e.g., electromigration (EM), IR drop, symmetry, etc.), it becomes increasingly challenging to investigate the complicated design space. Most previous work has focused only on geometric constraints or basic electrical constraints, lacking holistic and systematic investigation. Such an approach is far from typical manual design practice and can not guarantee post-layout performance on real-world designs. In this work, we propose SAGERoute, a synergistic routing framework taking both geometric and electrical constraints into consideration. Through Steiner tree based wire sizing and guided detailed routing, the framework can generate high-quality routing solutions efficiently under versatile constraints on real-world analog designs.
Haoyi Zhang, Xiaohan Gao, Haoyang Luo, Xiyuan Tang, Junhua Liu 0001, Yibo Lin, Runsheng Wang, Ru Huang 0001
DATE6
2023 Equiprobability-Based Local Response Surface Method for High-Sigma Yield Estimation With Both High Accuracy and Efficiency
abstract
With the ever-increasing transistor density and memory capability in integrated circuits, the high-sigma yield estimation has become a growing concern. This work presents an equiprobability-based local response surface (ELRS) method that can perform a high-sigma yield estimation with both high accuracy and efficiency. Demonstrating with 6T-SRAM, the proposed method exhibits more than ten times improvement in accuracy when compared with the state-of-the-art while maintaining the efficiency to the best record in the literature.
Pengpeng Ren, Haibao Chen, Zhigang Ji, Junhua Liu 0001, Runsheng Wang, Jianfu Zhang 0001, Ru Huang 0001
IEEE Trans. Comput. Aided Des. Integr. Circuits Syst.5
2023 A 2.85-mm2 Wideband RF Transceiver in 40-nm CMOS for IoT Micro-Hub Applications
abstract
This paper presents a 2.85-mm2 0.4-6 GHz RF transceiver in 40-nm CMOS for low-cost and low-power IoT micro-hub applications. A single-path receiver (RX), an all-digital phase-locked loop (ADPLL), and a digital transmitter (DTX) (including a digital power amplifier, DPA) are integrated. In the RX, to reduce the chip area and power consumption, an inductor-less capacitive-feedforward wideband LNA and a Gm-C filter-based dc offset cancellation (Gm-C-DCOC) technique are proposed. The RX achieves a noise figure (NF) of 1.3-4.9 dB over 0.4-6 GHz while consuming 31 mW. The measured average IIP3, in-band P1dB, and calibrated IIP2 of the receiver are 4.5 dBm, −13.8 dBm, and 67.5 dBm, respectively. In the ADPLL, a calibration-free retiming fractional frequency dividing (FFD) scheme based on a parasitic insensitive digital phase interpolator is adopted, for releasing the narrow loop bandwidth limitation and achieving better phase noise without active noise cancellation techniques. In the DTX design, a piecewise bias voltage (PBV) technique is proposed for the AM-AM linearization. It achieves a peak output power of 22.5 dBm at 840 MHz with a drain efficiency of 60.2%. The DPA can work in a high-power mode without PBV and a middle-power mode with PBV for modulation with different complexity. Thanks to PBV, the DTX achieves 5.9%, 5.3% EVM for 2MS/s 16-QAM and 64-QAM without digital pre-distortion (DPD), respectively. The designed broadband reconfigurable transceiver can support most of the common IoT protocols in most key metrics.
Zexue Liu, Haoyun Jiang, Xinyu Bao, Yixiao Wang 0001, Junhua Liu 0001, Huailin Liao
IEEE Trans. Circuits Syst. I Regul. Pap.9
2021 A Gm-Compensated 46-101 GHz Broadband Power Amplifier for High-Resolution FMCW Radars
abstract
A Gm-compensated 46-101 GHz broadband power amplifier (PA) for high-resolution FMCW radars is presented in this paper. For bandwidth (BW) expanding, a Gm compensator-based negative feedback chain is applied to the PA, compensating the large gain ripple caused by a high-k transformer (TF)-based ultra-wideband interstage matching network (IMN). Based on the proposed Gm-compensated technique, a flat and ultra-wideband power gain of the PA can be obtained with the high-k TF-based IMN. The proposed PA achieves a 55-GHz BW without additional area overhead and efficiency loss. 74.8% of the fractional BW is obtained with2.
Zhengkun Shen, Xiaolei Su, Zexue Liu, Junhua Liu 0001, Huailin Liao
ISCAS7
2021 A Hybrid Digital Transmitter Architecture for High- Efficiency and High-Speed Applications
abstract
A Quadrature/Polar hybrid digital transmitter architecture (HB-TX) is proposed in this paper, which consists of a main digital power amplifier (DPA), an auxiliary DPA, and a low-bit phase selector. In the proposed HB-TX, coarse polar modulation is realized by combining the main DPA and a low-bit selector, while a fine quadrature modulation is realized by the asymmetrical quadrature recombination of main and auxiliary DPAs in a small range. Through coarse and fine modulation, the HB-TX realizes fast signal modulation and does not require high-speed and high-resolution phase modulator. With the coarse polar modulation, the HB-TX achieves high efficiency which is close to that of polar transmitter and no longer suffers from 3 dB back-off. Since the asymmetry of two-path DPA arrays improves the isolation between two channels, local oscillators (LOs) with 50% duty cycle is employed to further improve the HB-TX's efficiency. Simulation results show that the HB-TX with a 4-bit selector achieves 23.7-dBm peak output power with 39.2% peak power added efficiency (PAE). When modulating a 64-QAM signal with 80-Msym/s symbol rate and 6.5-dB peak average power rate (PAPR), the HB-TX improves the average drain efficiency from 16.3% (achieved in quadrature transmitter) to 22.2% The average output power that is delivered by the HB-TX is 17.6-dBm with 17.4% average PAE, while the error vector magnitude (EVM) is -35.87 dB.
Xiaolei Su, Zhengkun Shen, Zexue Liu, Hailong Jiao, Junhua Liu 0001, Huailin Liao
ISCAS8
2020 An 81-99 GHz Tripler with Fundamental Cancellation and 3rd Harmonic Enhancement Technique in 40-nm CMOS
abstract
An 81-99 GHz tripler for wireless transceiver LO generation is presented in this paper. To suppress the fundamental signal and enhance the 3rd harmonic, the inversion signal is applied to the gate of the cascading transistor of the push-push differential pair. A capacitor is connected to the source and drain of the cascading transistor to further suppress the fundamental signal. Without additional filters, the tripler achieves more than 40 dBc of fundamental suppression with an even harmonic suppression of up to 60 dBc. The tripler reaches an output power of -2.6 dBm (4-dBm input) at 91.5 GHz with a 20% bandwidth of from 81 to 99 GHz. The core area of the chip occupies only 190 μm×530 μm in TSMC 40-nm CMOS process and consumes 28.2 mW.
Xiaolei Su, Xiucheng Hao, Zhengkun Shen, Zexue Liu, Junhua Liu 0001, Huailin Liao
ISCAS6
2019 A Calibration-Free Fractional-N ADPLL using Retiming Architecture and a 9-bit 0.3ps-INL Phase Interpolator
abstract
This paper presents a fractional-N all digital phase locked loop (ADPLL) using a retiming high linear digital phase interpolator (DPI), which is free from pre- and background-calibration. The DPI utilizes a charge-sharing effect insensitive charge-based structure to improve the linearity. Designed in a 40-nm CMOS technology, the proposed DPI achieves 9-bit resolution, 0.3ps integral nonlinearity (INL) and 0.083ps differential nonlinearity (DNL). The proposed ADPLL achieves −118 dBc/Hz in-band phase noise at 1MHz and −93.9dBc fractional spur with the 0.3ps nonlinearity of DPI.
Haoyun Jiang, Zhengkun Shen, Xiucheng Hao, Zexue Liu, Qiang Zhou 0012, Junhua Liu 0001, Huailin Liao
ISCAS9
2019 A 0.5-V Ultra-Low-Power Low-Pass Filter with a Bulk-Feedback Technique
abstract
In wearable biomedical applications, a constant dc common-mode (CM) voltage of low-pass filters (LPFs) is needed to boost the dynamic range when low supply voltage is used for high power efficiency. Traditional source-follower based LPFs consume very low power but introduce a CM voltage difference between input and output. This paper presents an ultra-low-power LPF, which features a source-follower based topology with a bulk-feedback technique. The bulk-feedback technique is proposed to keep a constant dc CM voltage, which is robust to process and temperature variations. In order to validate the proposed concept, a fourth-order LPF has been designed as a prototype. Implemented in a TSMC 180 nm CMOS process, the filter occupies an active area of only 0.048 mm2. Simulation results show that the filter consumes 9.0-nW static power from a 0.5-V voltage supply when the cutoff frequency is set to about 200 Hz. The filter achieves an input-referred noise in -3 dB bandwidth of 41.21 μVrms and an in-band IIP3 of 4.0 dBV, which corresponds to a spurious free dynamic range (SFDR) of 61.1 dB. The proposed LPF achieves a competitive FOM among the reported works.
Zexue Liu, Zhengkun Shen, Haoyun Jiang, Junhua Liu 0001, Huailin Liao
ISCAS6
2019 A 28 GHz 8-Bit Calibration-Free LO-Path Phase Shifter using Transformer-Based Vector Summing Topology in 40 nm CMOS
abstract
This paper presents an 8-bit calibration-free LO-path phase shifter (PS) for large scale 28 GHz phased-array transceiver. To overcome the nonlinearity of a vector-summing PS, two 8-bit digitally-controlled variable gain amplifier are utilized to generate high linearity amplitude modulation. Three transformers cooperating with a parallel resonator are developed to sum the I/Q signal as well as provide a fine isolation between I/Q path, thus provide a high linearity vector summation. Simulation results show that the PS achieves 360° phase shift with 8-bit resolution and a RMS phase error of 0.51°. The INL and DNL of phase-shifting is +0.66°/-0.83° and +0.22°/-0.19° respectively. Implemented in TSMC 40 nm LP process, the chip occupies an active area of 0.18 mm2and consumes 28.6 mW from 1.1 V supply voltage.
Zhengkun Shen, Zexue Liu, Haoyun Jiang, Xiucheng Hao, Junhua Liu 0001, Huailin Liao
ISCAS7
2018 A 43.2 μW 2.4 GHz 64-QAM Pseudo-Backscatter Modulator Based on Integrated Directional Coupler
abstract
This paper proposes a 2.4 GHz ultra-low power pseudo-backscatter modulator with an integrated directional coupler for wireless sensor network applications. In order to improve the performance of backscatter modulator for multilevel modulation, an integrated directional coupler is employed to isolate the radio frequency carrier wave from the modulated signal. As a result, the carrier wave can be modulated in radio frequency domain independently without being affected by reflection coefficient of a conventional backscatter modulator. For further reducing power dissipation, the modulator only employs buffers for output and implements modulation by passive circuits. The proposed modulator is demonstrated in a standard 40 nm CMOS 1P10M process and it achieves 64-QAM modulation at 3 Mb/s data rate by consuming only 43.2 μW with a supply voltage of 0.8 V.
Xiucheng Hao, Zhengkun Shen, Zexue Liu, Haoyun Jiang, Junhua Liu 0001, Huailin Liao
ISCAS7
2018 A 12-bit 2.5 GHz 0.37ps-Peak-INL Digital-to-Time Converter with Parasitic-Insensitive Charge-Based Phase Interpolator
abstract
A 12-bit 2.5GHz digital-to-time converter (DTC) for high resolution and high linearity applications is presented in this paper. The DTC is segmented into a 4-bit coarse stage and an 8-bit fine stage. The proposed fine stage utilizes parasitic-insensitive charge-based (PICB) phase interpolator (PI) with significant improvement in linearity. The PICB PI outputs 50% duty cycle differential clock and its performance is insensitive to parasitic effect. The DTC is designed in 40nm CMOS technology and consumes 7.1mW with a 1.1-V supply voltage. Simulation results show that the peak integral nonlinearity and differential nonlinearity are 0.37ps and 0.085ps, respectively.
Haoyun Jiang, Zexue Liu, Xiucheng Hao, Zhengkun Shen, Junhua Liu 0001, Huailin Liao
ISCAS7
2018 A Low Power SAW-less 2.4-GHz Receiver with an LC Matched Series N-path Filter
abstract
This paper presents a low power SAW-less 2.4-GHz receiver for short-range communications. To ensure sufficient out-of-band (OOB) linearity for SoC existence, a LC matched series N-path filter based receiver topology is proposed. The radio frequency input is followed by the LC matched series N-path filter, which provides sufficient ultimate rejection when consuming less power than conventional N-path filters. An on-chip inductor and a capacitor are utilized to achieve input matching and improve the NF. Implemented in TSMC 40nm LP process, the chip occupies an active area of 0.312 mm2. Simulation results show that the receiver consumes 2.2 mW from 1.1V supply voltage with a NF of 6.3 dB (with the on-chip inductor) and a voltage gain of 38.4 dB. The baseband achieves a third order filtering response with 1.5 MHz bandwidth. The OOB 1-dB compression point is +7 dBm and the OOB IIP3 is +22 dBm.
Zexue Liu, Haoyun Jiang, Xiucheng Hao, Junhua Liu 0001, Huailin Liao
ISCAS6
2018 A Digital Phase Noise Cancelling Scheme for Ring Oscillator-based Fractional-N ADPLL
abstract
This paper presents a digital phase noise cancelling scheme for ring oscillator (RO)-based fractional-N ADPLL, which can suppress both in-band and out-of-band phase noise of RO. The scheme adopts a high-resolution time-to-digital convertor (TDC) to sample the rising edge timing errors between RO output and the reference signal (REF) and a matched digital-to-time convertor (DTC) to compensate these timing errors to align RO output with each rising edge of REF, eliminating the phase noise of RO output. To get accurate phase noise cancelling, it is essential to realize high resolution and good match between TDC and DTC. These two modules are implemented in 40 nm CMOS with 2 ps resolution and 8.34% mismatch. System-level simulation results show that, the in-band phase noise at 1 MHz offset can be cancelled by the level of 20 dB and the out-of-band phase noise at 10 MHz offset can be cancelled by 10 dB, with the 200 MHz reference signal.
Fan Yang 0077, Haoyun Jiang, Junhua Liu 0001, Huailin Liao
ISCAS5
2017 An 89 μW MICS/ISM band receiver for ultra-low-power applications
abstract
This paper presents a MICS/ISM band receiver for ultra-low-power applications with a passive RF front-end. A shunt passive mixer along with low input capacitance amplifiers is introduced to decrease the large load capacitor and minimize power consumption of the Local Oscillator (LO) buffers without significant noise figure (NF) degradation. Measurement results show that the receiver consumes 89 μW from 1 V supply voltage with a NF of 7.5 dB and a voltage gain of 47.6 dB. S112.
Zexue Liu, Fan Yang 0077, Haoyun Jiang, Xiucheng Hao, Junhua Liu 0001, Huailin Liao
ISCAS5
2015 A high frequency resolution digitally controlled oscillator with differential tapped inductor
abstract
A novel architecture of high frequency resolution LC-tank based digitally controlled oscillator (DCO) is presented in this paper. The proposed architecture utilizes a differential tapped inductor and a capacitor array within the taps for fine frequency tuning. A prototype of 1.6 GHz DCO integrated in 0.18-μm CMOS technology exhibits a tuning range of 40.2% and a phase noise of -123.6 dBc/Hz@1MHz. With a minimal capacitance step of 7.5 fF, the frequency resolution is improved to 7.6 kHz/LSB. The DCO dissipates 3.2 mA from a 1.8 V supply and occupies an area of 0.46 mm2.
Fan Yang 0077, Runhua Wang, Xiaozhe Liu, Junhua Liu 0001, Huailin Liao
ISCAS4
2014 A power efficient 1.0625-3.125 Gb/s serial transceiver in 130 nm digital CMOS for multi-standard applications
Zhongyuan Hou, Fan Yang 0077, Junhua Liu 0001, Xing Zhang 0002
Sci. China Inf. Sci.3
2013 A 65 mW fully integrated UHF-band CMMB tuner in 65 nm CMOS process
Junhua Liu 0001, Chen Li 0014, Long Chen 0009, Congyin Shi, Xuankai Weng, Yixiao Wang 0001, Yu Liao, Le Ye, Huailin Liao, Ru Huang 0001
Sci. China Inf. Sci.1