团队负责人
郑其斌
团队成员
卜朝晖、周宇、丁丽、周立国、田福英、汤璐、李雅芬、杨文星、任浩冉、贾子健
团队简介
团队长期致力于前沿电子测量装备和智能感知系统研究,主要研究方向包括:(1)前沿感知技术及应用;(2)高速高精度测量仪器系统;(3)信号处理和成像算法;(3)端侧AI智能算法;(4)机器学习与模式识别;(5)人工智能系统。科研团队的研究领域全链条涵盖科学仪器系统、智能仪器系统,能够支持大型科研项目的实施与管理。
代表性成果
[1]2026-2029年,国家自然科学基金-面上项目,基于国产飞秒激光器与太赫兹辐射器件的THz-TDR ASIC封装缺陷检测仪关键技术研究
[2]2025-2027年,国家自然科学基金-青年基金项目,面向助听系统的多通道线性预测双耳去混响理论与方法研究
[3]2024-2026年,国家自然科学基金-青年基金项目,MRI自适应放疗中MRI/CT医学影像模态转换方法研究
[4]2023-2025年,国家自然科学基金-青年基金项目,直线拓扑高温超导双通带滤波器综合理论与传输零点调控机理
[5]2022-2024年,国家自然科学基金-青年基金项目,太赫兹时域高效实时检测的电子学关键技术研究
[6]2017-2019年,国家自然科学基金-青年基金项目,基于Sinclair散射矩阵重构的全极化毫米波/太赫兹高分辨成像研究
[7]2016-2018年,国家自然科学基金-联合基金项目,基于声表面波编码器件激励的高精度事件计时测量方法的研究
[8]2026-2029年,国家JKW重点项目,XXX精度时频XXX研究
[9]2023-2026年,国家重点研发计划项目子课题,太赫兹宽频带辐射源器件的测试研究
[10]2018-2022年,国家重点研发计划课题,毫米波/太赫兹大视场快扫功能器件研制
[11]2016-2018年,国家重点研发计划子课题,基于毫米波/太赫兹光谱的病原体识别平台与技术建立
[12]2021-2024年,上海市自然科学基金项目,毫米波/太赫兹MIMO成像前端传输网络关键技术研究
[13]2016-2018年,上海市自然科学基金项目,针对人体隐匿物探测的主动式毫米波/太赫兹偏振成像研究
[14]2024-2026年,省自然科学基金面上项目,交叉耦合拓扑XX可重构滤波器综合理论与设计技术研究
[15]2022-2023年,省自然科学基金青年项目,基于多阶耦合XX双通带电调滤波器研究
[16]2020-2022年,市自然科学基金面上项目,面向卫星通信XX双频带电调滤波器研究
[17]2026-2027年,国网科学技术项目,适用于配网关键设备的量子传感技术研究及应用
[18]2024-2025年,国网科学技术项目,配网微型量子电流传感技术研究及应用
[19]2023-2024年,国网科学技术项目,量子精密测量在配网业务中的应用关键技术研究
[20]2025-2028年,省级科技创新攻坚计划项目,芯片级量子气体传感技术研究
[21]2021-2023年,自然资源部页岩气资源勘查重点实验室项目,含气页岩有机质和有机质孔隙的核磁共振响应特征和评价方法研究
2.发明专利
[1]郑其斌、卜朝晖、陶争屹等;一种全数字化的便携式光梳频率锁定方法及系统,2024103390953
[2]郑其斌、卜朝晖、丁丽等;一种便携式高精度频率测量与快速修正的装置及方法,2023115283996
[3]郑其斌、丁丽、李银伟等;一种提高太赫兹被动成像单元灵敏度的调制解调方法,CN202011069662.6
[4]郑其斌、丁丽、李萍等;一种无本振信号的IQ解调方法与系统,CN202011169342.8
[5]郑其斌、卜朝晖、周立国等;一种从频域实现相位无偏估计的光梳频率锁定方法及系统,CN122027022A
[6]薛亦鑫、江贤峰、郑其斌等;一种高稳定频率源之间的无缝数字切换的方法,2024107061461
[7]薛亦鑫、江贤峰、郑其斌等;一种高稳定频率源之间的无缝数字切换的方法,CN118487596A
[8]林欣、郑其斌、浦聪等;一种用于脊椎手术的关节刮刀无线扭矩测量手柄,CN118177884A
[9]卜朝晖、王欣钰、王嘉雯等;一种基于指端压力脉搏波的血管内皮功能检测装置及方法,CN202410372690.7
[10]周立国、郑其斌、朱亦鸣等;一种高阶耦合高温超导双通带滤波器,2025100626193
[11]周立国、郑其斌、朱亦鸣等;一种超窄带高温超导对称双通道滤波器,202510174532
[12]周立国、江疆、张戴尧等;具有独立调整通带特性的多传输零点高温超导双通带滤波器,CN120165210A
[13]周立国、郑其斌、朱亦鸣等;一种宽阻带抑制高温超导低通滤波器,CN120199997A
[14]周立国、郑其斌、朱亦鸣等;一种超窄带高温超导对称双通道滤波器,CN119994422A
[15]周立国、郑其斌、朱亦鸣等;一种高阶耦合高温超导双通带滤波器,CN119726026A
[16]周立国、章文、黄炳钧等;引入成对传输零点的Cul-de-sac拓扑结构、构建及高温超导滤波器,CN116885410A
[17]周立国、冯全源;一种广义切比雪夫函数响应通道连续相同宽带三工器,CN113346205A
[18]周立国、冯全源、文彦;闭环交叉耦合微带结构的超宽阻带高温超导低通滤波器,ZL202110330206.0
[19]丁丽、李银伟、李萍等;一种基于单站阵型映射到MIMO阵型的设计方法,ZL202011171211.6
[20]丁丽、王喜旺、李萍等;基于布鲁斯特角测量的毫米波/太赫兹物质介电常数测量系统,ZL201810200665,2020/3/20
[21]丁丽、赵天乐、李萍;用于高维矩阵遍历运算的并行加速软件,登记号2020SR1185398,2020/09/29
[22]丁丽、鲍佳辰、李萍;GPU加速的二维柱面傅里叶变换软件,登记号2020SR1185404,2020/09/29
[23]汤璐、杨玺霖、王祥瑞;一种运算放大器表面态缺陷失效分析方法,202210851828.2
[24]朱艳春、李雅芬、刘勇等;基于磁共振成像的施源位置定位方法和施源器外管,CN106345048B
[25]梁灿、贾子健、郭龙等;一种核磁共振测量致密岩石润湿性的方法,CN202111578975.9
3.学术论文
[1] A High Precision Time Measurement Method Based on Frequency-Domain Phase-Fitting for Nuclear Pulse Detection. IEEE Transactions on Nuclear Science, 2025, 72(5): 1819-1827.
[2] A Digital and Compact High-Precision Locking System for Pulse Laser Repetition Frequency. IEEE Transactions on Instrumentation and Measurement, 2025, 74: 1-10, Art. no. 2007710.
[3] Many-body computing on Field Programmable Gate Arrays. Communications Physics, 2025, 8(1): 117.
[4] FPGA acceleration of tensor network computing for quantum spin models. Review of Scientific Instruments, 2025, 96(1): 013903.
[5] Optimization of three-dimensional superposed constellation with probabilistic shaping for MIMO visible light communication systems. Optics Express, 2024, 32(13): 22634-22646.
[6] Superposed probabilistically shaped QAM constellation design based on nonlinear coding for MIMO visible light communication systems. Chinese Optics Letters, 2024, 22(6): 060601.
[7] An improved design of the readout base board of the photomultiplier tube for future PandaX dark matter experiments. Journal of Instrumentation, 2020, 15(12): T12006.
[8] Symmetry-protected topological phase transitions and robust chiral order on a tunable zigzag lattice. Physical Review B, 2020, 101(16): 165131.
[9] Development of a 6D Kalman filter for charged particle tracking in time projection chamber without magnetic field. Radiation Detection Technology and Methods, 2020, 4(1): 70-77.
[10] A Prototype Scalable Readout System for Micropattern Gas Detectors. Chinese Physics C, 2016, 40(8): 086101.
[11] Design and Implementation of a High Resolution DAQ System for an (e, 2e+ ion) Electron Momentum Spectrometer. IEEE Transactions on Nuclear Science, 2015, 62(6): 3155-3162.
[12] Limits on the luminance of dark matter from xenon recoil data. Nature, 2023, 618: 47-50.
[13] Dark Matter Search Results from the PandaX-4T Commissioning Run. Physical Review Letters, 2021, 127(26): 261802.
[14] Search for Light Dark Matter-Electron Scatterings in the PandaX-II Experiment. Physical Review Letters, 2021, 126(21): 211803.
[15] Constraining Dark Matter Models with a Light Mediator at the PandaX-II Experiment. Physical Review Letters, 2018, 121(2): 021304.
[16] High-Precision Time Interval Measurement Based on Triggerable Ring Oscillators and All-Phase FFT Algorithm. 2019 Joint Conference of the IEEE International Frequency Control Symposium and European Frequency and Time Forum (EFTF/IFCS), 2019, Art. no. 8856045.
[17] Feature-Enhanced PointPillars for 3D Millimeter-Wave Object Detection. IEEE Transactions on Aerospace and Electronic Systems, 2024, early access. DOI: 10.1109/TAES.2024.3491058.
[18] Segmentation-Aided Upsampling for High-Resolution Reconstruction of 3-D MMW Images. IEEE Sensors Journal, 2024, 24(12): 37524-37530.
[19] Three-Dimensional Millimeter-Wave Object Detector Based on the Enhancement of Local-Global Contextual Information. IEEE Access, 2024, 12: 130963-130971.
[20] Geometrically-Inspired Sparse MIMO Array Design for Enhanced mm-Wave Near-Field Imaging. IEEE Access, 2024, 12: 47283-47295.
[21] A multimodal fusion network based on a cross-attention mechanism for the classification of Parkinsonian tremor and essential tremor. Scientific Reports, 2024, 14(1): 28050.
[22] Wearable Sensor-Based Multi-modal Fusion Network for Automated Gait Dysfunction Assessment in Children with Cerebral Palsy. Advanced Intelligent Systems, 2024, 6(7): 2300845.
[23] IRDC-Net: An Inception Network with a Residual Module and Dilated Convolution for Sign Language Recognition Based on Surface Electromyography. Sensors, 2023, 23: 5775.
[24] Assessment of Upper Limb Motor Dysfunction for Children with Cerebral Palsy Based on Muscle Synergy Analysis. Frontiers in Human Neuroscience, 2017, 11: 130.
[25] Muscle synergy analysis in children with cerebral palsy. Journal of Neural Engineering, 2015, 12(4).
[26] Dual-way magnetic resonance image translation with transformer-based adversarial network. Medical Physics, 2025, 52(7): e17837.
[27] Clinical feasibility of MRI-based synthetic CT imaging in the diagnosis of lumbar disc herniation: a comparative study. Acta Radiologica, 2024, 65(1): 41-48.
[28] Artificial intelligence-based bone-enhanced magnetic resonance image-a computed tomography/magnetic resonance image composite image modality in nasopharyngeal carcinoma radiotherapy. Quantitative Imaging in Medicine and Surgery, 2021, 11(12): 4709-4720.
[29] Comparison of Supervised and Unsupervised Deep Learning Methods for Medical Image Synthesis between Computed Tomography and Magnetic Resonance Images. BioMed Research International, 2020, 2020: 5193707.
[30] Magnetic resonance image (MRI) synthesis from brain computed tomography (CT) images based on deep learning methods for magnetic resonance (MR)-guided radiotherapy. Quantitative Imaging in Medicine and Surgery, 2020, 10(6): 1223-1236.
[31] Shading correction for volumetric CT using deep convolutional neural network and adaptive filter. Quantitative Imaging in Medicine and Surgery, 2019, 9(7): 1242-1254.
[32] CT synthesis from MRI images based on deep learning methods for MRI-only radiotherapy. 2019 International Conference on Medical Imaging Physics and Engineering (ICMIPE), Shenzhen, China, 2019.
[33] Exploring Control Mechanism of Motoneuron Pools for the Forearm Antagonist Synergistic Muscles. IEEE Transactions on Neural Systems and Rehabilitation Engineering, 2025.
[34] fNIRS-based dynamic functional connectivity reveals the innate musical sensing brain networks in preterm infants. IEEE Transactions on Neural Systems and Rehabilitation Engineering, 2022, 30: 1806-1816.
[35] Evaluation of the short-term music therapy on brain functions of preterm infants using functional near-infrared spectroscopy. Frontiers in Neurology, 2021, 12: 649340.
[36] A review of cerebral hemodynamics during sleep using near-infrared spectroscopy. Frontiers in Neurology, 2020, 11: 524009.
[37] Quantifying spatial activation patterns of motor units in finger extensor muscles. IEEE Journal of Biomedical and Health Informatics, 2020, 25(3): 647-655.
[38] A novel cardiac auscultation monitoring system based on wireless sensing for healthcare. IEEE Journal of Translational Engineering in Health and Medicine, 2018, 6: 1-12.
[39] Moleculardynamics and composition of crude oil by low-field nuclear magnetic resonance. Magnetic Resonance in Chemistry, 2016, 54(8).
[40] Magic Echo for Nuclear Magnetic Resonance Characterization of Shales. Energy & Fuels, 2017, 31(8): 7824-7830.
[41] Synthesis CT images based on brain MRI images using generative adversarial network with attention mechanisms. Biomedical Signal Processing and Control, 2026, 128: 111311.


