Publikationer av Xiaodan Pang
Refereegranskade
Artiklar
[1]
M. Joharifar et al., "Advancing LWIR FSO communication through high-speed multilevel signals and directly modulated quantum cascade lasers," Optics Express, vol. 32, no. 17, s. 29138-29148, 2024.
[2]
R. Puerta et al., "Analog Mobile Fronthaul for 6G and Beyond," Journal of Lightwave Technology, vol. 42, no. 21, s. 7458-7467, 2024.
[3]
Z. Lyu et al., "Dual-chirp-based photonic THz-ISAC system with adaptive frequency synchronization," Optics Letters, vol. 49, no. 16, s. 4493-4496, 2024.
[4]
H. Zhang et al., "Equivalent Photoconductive Time-Domain Sampling for Monitoring High-Speed Terahertz Communication Signals," Journal of Lightwave Technology, vol. 42, no. 13, s. 4476-4484, 2024.
[5]
Z. Lyu et al., "Preamble-Free Synchronization Based on Dual-chirp Waveforms for Photonic THz-ISAC," Journal of Lightwave Technology, vol. 42, no. 8, s. 2657-2665, 2024.
[6]
L. Li et al., "THz-Over-Fiber System With Orthogonal Chirp Division Multiplexing for Integrated Sensing and Communication," Journal of Lightwave Technology, vol. 42, no. 1, s. 176-183, 2024.
[7]
H. Dely et al., "Unipolar quantum optoelectronics for high speed direct modulation and transmission in 8–14 µm atmospheric window," Nature Communications, vol. 15, no. 1, 2024.
[8]
X. Pang et al., "200 Gb/s Optical-Amplifier-Free IM/DD Transmissions Using a Directly Modulated O-Band DFB+R Laser Targeting LR Applications," Journal of Lightwave Technology, vol. 41, no. 11, s. 3635-3641, 2023.
[9]
M. Han et al., "High Spectral Efficiency Long-Wave Infrared Free-Space Optical Transmission With Multilevel Signals," Journal of Lightwave Technology, vol. 41, no. 20, s. 6514-6520, 2023.
[10]
H. Dely et al., "High bitrate data transmission in the 8-14 mu m atmospheric window using an external Stark-effect modulator with digital equalization," Optics Express, vol. 31, no. 5, s. 7259-7264, 2023.
[11]
M. Joharifar et al., "High-Speed 9.6-μm Long-Wave Infrared Free-Space Transmission With a Directly-Modulated QCL and a Fully-Passive QCD," Journal of Lightwave Technology, vol. 41, no. 4, s. 1087-1094, 2023.
[12]
M. Han et al., "Long-Wave Infrared Discrete Multitone Free-Space Transmission Using a 9.15-μm Quantum Cascade Laser," IEEE Photonics Technology Letters, vol. 35, no. 9, s. 489-492, 2023.
[13]
O. Ozolins et al., "Optical Amplification-Free High Baudrate Links for Intra-Data Center Communications," Journal of Lightwave Technology, vol. 41, no. 4, s. 1200-1206, 2023.
[14]
M. Han et al., "Optical amplification-free deep reservoir computing-assisted high-baudrate short-reach communication," Optics Letters, vol. 48, no. 8, s. 2122-2125, 2023.
[15]
L. Zhang et al., "Quantum Noise Secured Terahertz Communications," IEEE Journal of Selected Topics in Quantum Electronics, vol. 29, no. 5: Terahertz Photonics, s. 1-10, 2023.
[16]
Z. Lyu et al., "Radar-Centric Photonic Terahertz Integrated Sensing and Communication System Based on LFM-PSK Waveform," IEEE transactions on microwave theory and techniques, vol. 71, no. 11, s. 5019-5027, 2023.
[17]
R. Murnieks et al., "Silica micro-rod resonator-based Kerr frequency comb for high-speed short-reach optical interconnects," Optics Express, vol. 31, no. 12, s. 20306-20320, 2023.
[18]
H. Zhang et al., "Single-lane 200 Gbit/s photonic wireless transmission of multicarrier 64-QAM signals at 300 GHz over 30 m," Chinese Optics Letters (COL), vol. 21, no. 2, 2023.
[19]
X. Pang et al., "Bridging the Terahertz Gap: Photonics-assisted Free-Space Communications from the Submillimeter-Wave to the Mid-Infrared," Journal of Lightwave Technology, s. 1-1, 2022.
[20]
X. Pang et al., "Direct Modulation and Free-Space Transmissions of up to 6 Gbps Multilevel Signals With a 4.65-mu m Quantum Cascade Laser at Room Temperature," Journal of Lightwave Technology, vol. 40, no. 8, s. 2370-2377, 2022.
[21]
Y. Fan et al., "Feedforward Neural Network-based EVM Estimation : Impairment Tolerance in Coherent Optical Systems," IEEE Journal of Selected Topics in Quantum Electronics, s. 1-1, 2022.
[22]
X. Feng et al., "Human recognition with the optoelectronic reservoir-computing-based micro-Doppler radar signal processing," Applied Optics, vol. 61, no. 19, s. 5782-5789, 2022.
[23]
L. Zhang et al., "Hybrid fiber-THz fronthaul supporting up to 16384-QAM-OFDM with the delta-sigma modulation," Optics Letters, vol. 47, no. 17, s. 4307-4310, 2022.
[24]
S. Jia et al., "Integrated dual-laser photonic chip for high-purity carrier generation enabling ultrafast terahertz wireless communications," Nature Communications, vol. 13, no. 1, 2022.
[25]
Y. Fan et al., "Linear Regression vs. Deep Learning for Signal Quality Monitoring in Coherent Optical Systems," IEEE Photonics Journal, vol. 14, no. 4, 2022.
[26]
T. Salgals et al., "Silica Microsphere WGMR-Based Kerr-OFC Light Source and Its Application for High-Speed IM/DD Short-Reach Optical Interconnects," Applied Sciences, vol. 12, no. 9, s. 4722, 2022.
[27]
M. Han et al., "Simultaneous modulation format identification and OSNR monitoring based on optoelectronic reservoir computing," Optics Express, vol. 30, no. 26, s. 47515-47527, 2022.
[28]
O. Ozolins et al., "100 Gbaud On-Off Keying/Pulse Amplitude Modulation Links in C-Band for Short-Reach Optical Interconnects," Applied Sciences, vol. 11, no. 9, 2021.
[29]
M. Qiao et al., "60 Gbit/s PAM-4 wireless transmission in the 310 GHz band with nonlinearity tolerant signal processing," Optics Communications, vol. 492, 2021.
[30]
Y. Fan et al., "Experimental validation of CNNs versus FFNNs for time- and energy-efficient EVM estimation in coherent optical systems," Journal of Optical Communications and Networking, vol. 13, no. 10, s. E63-E71, 2021.
[31]
Y. Fan et al., "Fast signal quality monitoring for coherent communications enabled by CNN-based EVM estimation," Journal of Optical Communications and Networking, vol. 13, no. 4, s. B12-B20, 2021.
[32]
X. Feng et al., "Numerical Study of Parallel Optoelectronic Reservoir Computing to Enhance Nonlinear Channel Equalization," Photonics, vol. 8, no. 10, 2021.
[33]
X. Pang et al., "Short Reach Communication Technologies for Client-Side Optics Beyond 400 Gbps," IEEE Photonics Technology Letters, vol. 33, no. 18, s. 1046-1049, 2021.
[34]
H. Zhang et al., "Tbit/s Multi-Dimensional Multiplexing THz-Over-Fiber for 6G Wireless Communication," Journal of Lightwave Technology, vol. 39, no. 18, s. 5783-5790, 2021.
[35]
S. Jia et al., "2 x 300 Gbit/s Line Rate PS-64QAM-OFDM THz Photonic-Wireless Transmission," Journal of Lightwave Technology, vol. 38, no. 17, s. 4715-4721, 2020.
[36]
X. Pang et al., "200 Gbps & x002F;Lane IM & x002F;DD Technologies for Short Reach Optical Interconnects," Journal of Lightwave Technology, vol. 38, no. 2, s. 492-503, 2020.
[37]
S. Wang et al., "26.8-m THz wireless transmission of probabilistic shaping 16-QAM-OFDM signals," APL Photonics., vol. 5, no. 5, 2020.
[38]
L. Zhang et al., "Beyond 100 Gb/s Optoelectronic Terahertz Communications : Key Technologies and Directions," IEEE Communications Magazine, vol. 58, no. 11, s. 34-40, 2020.
[39]
X. Pang et al., "Free-Space Communications Enabled by Quantum Cascade Lasers," Physica Status Solidi (a) applications and materials science, 2020.
[40]
L. Zhang et al., "Kernel Affine Projection for Nonlinearity Tolerant Optical Short Reach Systems," IEEE Transactions on Communications, vol. 68, no. 10, s. 6403-6412, 2020.
[41]
Y. Lu et al., "Mark ratio modulation over pulse position modulation," Optical fiber technology (Print), vol. 57, 2020.
[42]
L. Zhang et al., "Nonlinearity-aware optoelectronic terahertz discrete multitone signal transmission with a zero-bias diode," Optics Letters, vol. 45, no. 18, s. 5045-5048, 2020.
[43]
A. Udalcovs et al., "Optical Power Budget of 25+Gbps IM/DD PON with Digital Signal Post-Equalization," Applied Sciences, vol. 10, no. 17, 2020.
[44]
S. Kolpakov et al., "Optical rogue waves in coupled fiber Raman lasers," Optics Letters, vol. 45, no. 17, s. 4726-4729, 2020.
[45]
R. Lin et al., "Telecommunication Compatibility Evaluation for Co-existing Quantum Key Distribution in Homogenous Multicore Fiber," IEEE Access, vol. 8, s. 78836-78846, 2020.
[46]
P. Rosa et al., "Unrepeatered 240-km 64-QAM Transmission Using Distributed Raman Amplification over SMF Fiber," Applied Sciences, vol. 10, no. 4, 2020.
[47]
J. M. Estaran et al., "140/180/204-Gbaud OOK Transceiver for Inter- and Intra-Data Center Connectivity," Journal of Lightwave Technology, vol. 37, no. 1, s. 178-187, 2019.
[48]
J. Van Kerrebrouck et al., "High-Speed PAM4-Based Optical SDM Interconnects With Directly Modulated Long-Wavelength VCSEL," Journal of Lightwave Technology, vol. 37, no. 2, s. 356-362, 2019.
[49]
L. Zhang et al., "Nonlinearity Tolerant High-Speed DMT Transmission With 1.5-mu m Single-Mode VCSEL and Multi-Core Fibers for Optical Interconnects," Journal of Lightwave Technology, vol. 37, no. 2, s. 380-388, 2019.
[50]
S. Jia et al., "0.4 THz Photonic-Wireless Link With 106 Gb/s Single Channel Bitrate," Journal of Lightwave Technology, vol. 36, no. 2, s. 610-616, 2018.
[51]
K. Liu et al., "100 Gbit/s THz Photonic Wireless Transmission in the 350-GHz Band With Extended Reach," IEEE Photonics Technology Letters, vol. 30, no. 11, s. 1064-1067, 2018.
[52]
S. Jia et al., "A unified system with integrated generation of high-speed communication and high-resolution sensing signals based on THz photonics," Journal of Lightwave Technology, vol. 36, no. 19, s. 4549-4556, 2018.
[53]
Y. Lu et al., "Multi-channel collision-free reception for optical interconnects," Optics Express, vol. 26, no. 10, s. 13214-13222, 2018.
[54]
L. Zhang et al., "Nonlinearity-aware 200 Gbit/s DMT transmission for C-band short-reach optical interconnects with a single packaged electro-absorption modulated laser," Optics Letters, vol. 43, no. 2, s. 182-185, 2018.
[55]
R. Lin et al., "Real-time 100 Gbps/λ/core NRZ and EDB IM/DD transmission over multicore fiber for intra-datacenter communication networks," Optics Express, vol. 26, no. 8, s. 10519-10526, 2018.
[56]
L. Zhang et al., "Spectrally efficient digitized radio-over-fiber system with k-means clustering-based multidimensional quantization.," Optics Letters, vol. 43, no. 7, s. 1546-1549, 2018.
[57]
X. Chen et al., "TDHQ Enabling Fine-Granularity Adaptive Loading for SSB-DMT Systems," IEEE Photonics Technology Letters, vol. 30, no. 19, s. 1687-1690, 2018.
[58]
O. Ozolins et al., "100 GHz Externally Modulated Laser for Optical Interconnects," Journal of Lightwave Technology, vol. 35, no. 6, s. 1174-1179, 2017.
[59]
V. Cristofori et al., "25-Gb/s Transmission Over 2.5-km SSMF by Silicon MRR Enhanced 1.55-mu m III-V/SOI DML," IEEE Photonics Technology Letters, vol. 29, no. 12, s. 960-963, 2017.
[60]
J. Rodrigo Navarro et al., "Blind phase search with angular quantization noise mitigation for efficient carrier phase recovery," Photonics, vol. 4, no. 2, 2017.
[61]
L. Zhang et al., "Digital mobile fronthaul employing differential pulse code modulation with suppressed quantization noise," Optics Express, vol. 25, no. 25, s. 31921-31936, 2017.
[62]
X. Pang et al., "Experimental Evaluation of Impairments in Unrepeatered DP-16QAM Link with Distributed Raman Amplification," Photonics, vol. 4, no. 1, 2017.
[63]
X. Pang et al., "Experimental Study of 1.55-μ m EML-Based Optical IM/DD PAM-4/8 Short Reach Systems," IEEE Photonics Technology Letters, vol. 29, no. 6, s. 523-526, 2017.
[64]
X. Pang et al., "Gigabit free-space multi-level signal transmission with a mid-infrared quantum cascade laser operating at room temperature," Optics Letters, vol. 42, no. 18, s. 3646-3649, 2017.
[65]
A. Kakkar et al., "Laser Frequency Noise in Coherent Optical Systems : Spectral Regimes and Impairments," Scientific Reports, vol. 7, 2017.
[66]
M. Verplaetse et al., "Real-Time 100 Gb/s Transmission Using Three-Level Electrical Duobinary Modulation for Short-Reach Optical Interconnects," Journal of Lightwave Technology, vol. 35, no. 7, s. 1313-1319, 2017.
[67]
J. R. Navarro et al., "Carrier Phase Recovery Algorithms for Coherent Optical Circular mQAM Systems," Journal of Lightwave Technology, vol. 34, no. 11, s. 2717-2723, 2016.
[68]
M. I. Olmedo et al., "Effective Linewidth of Semiconductor Lasers for Coherent Optical Data Links," Photonics, vol. 3, no. 2, 2016.
[69]
A. Kakkar et al., "Equalization Enhanced Phase Noise in Coherent Optical Systems with Digital Pre- and Post-Processing," Photonics, vol. 3, no. 2, 2016.
[70]
J. R. Navarro et al., "Two-Stage n-PSK Partitioning Carrier Phase Recovery Scheme for Circular mQAM Coherent Optical Systems," Photonics, vol. 3, no. 2, 2016.
[71]
J. Rodrigo Navarro et al., "Adaptive Boundaries Scheme for Cycle-Slip Mitigation in C-mQAM Coherent Systems," IEEE Photonics Technology Letters, vol. 27, no. 20, s. 2154-2157, 2015.
[72]
A. Kakkar et al., "Comprehensive study of equalization-enhanced phase noise in coherent optical systems," Journal of Lightwave Technology, vol. 33, no. 23, s. 4834-4841, 2015.
[73]
A. Kakkar et al., "Impact of local oscillator frequency noise on coherent optical systems with electronic dispersion compensation," Optics Express, vol. 23, no. 9, s. 11221-11226, 2015.
[74]
M. Piels et al., "Laser Rate Equation-Based Filtering for Carrier Recovery in Characterization and Communication," Journal of Lightwave Technology, vol. 33, no. 15, s. 3271-3279, 2015.
[75]
A. Kakkar et al., "Mitigation of EEPN in Coherent Optical Systems With Low-Speed Digital Coherence Enhancement," IEEE Photonics Technology Letters, vol. 27, no. 18, s. 1942-1945, 2015.
[76]
L. Deng et al., "All-VCSEL Transmitters With Remote Optical Injection for WDM-OFDM-PON," IEEE Photonics Technology Letters, vol. 26, no. 5, s. 461-464, 2014.
[77]
X. Pang et al., "Centralized optical-frequency-comb-based RF carrier generator for DWDM fiber-wireless access systems," Journal of Optical Communications and Networking, vol. 6, no. 1, s. 1-7, 2014.
[78]
J. V. Olmos, X. Pang och I. T. Monroy, "E-and W-Band High-Capacity Hybrid Fiber-Wireless Links," IEICE transactions on communications, vol. 97, no. 7, s. 1290-1294, 2014.
[79]
L. Deng et al., "Experimental demonstration of nonlinearity and phase noise tolerant 16-QAM OFDM W-band (75–110 GHz) signal over fiber system," Journal of Lightwave Technology, vol. 32, no. 8, s. 1442-1448, 2014.
[80]
A. Lebedev et al., "Low complexity source and channel coding for mm-wave hybrid fiber-wireless links," Optics Communications, vol. 318, s. 142-146, 2014.
[81]
X. Pang et al., "Multigigabit W-band (75–110 GHz) bidirectional hybrid fiber-wireless systems in access networks," Journal of Lightwave Technology, vol. 32, no. 23, s. 3983-3990, 2014.
[82]
S. O. Zafra et al., "Phase noise tolerance study in coherent optical circular QAM transmissions with Viterbi-Viterbi carrier phase estimation," Optics Express, vol. 22, no. 25, s. 30579-30585, 2014.
[83]
A. Lebedev et al., "Simultaneous 60-GHz RoF transmission of lightwaves emitted by ECL, DFB, and VCSEL," IEEE Photonics Technology Letters, vol. 26, no. 7, s. 733-736, 2014.
[84]
J. V. Olmos et al., "Wireless and wireline service convergence in next generation optical access networks-the FP7 WISCON project," IEICE transactions on communications, vol. 97, no. 8, s. 1537-1546, 2014.
[85]
A. Lebedev et al., "Demonstration and comparison study for V-and W-band real-time high-definition video delivery in diverse fiber-wireless infrastructure," Fiber and Integrated Optics, vol. 32, no. 2, s. 93-104, 2013.
[86]
A. Lebedev et al., "Feasibility study and experimental verification of simplified fiber-supported 60-GHz picocell mobile backhaul links," IEEE Photonics Journal, vol. 5, no. 4, s. 7200913-7200913, 2013.
[87]
A. Lebedev et al., "Gigabit close-proximity wireless connections supported by 60 GHz RoF links with low carrier suppression," Optics Express, vol. 21, no. 21, s. 24574-24581, 2013.
[88]
X. Pang et al., "Uplink transmission in the W-band (75-110 GHz) for hybrid optical fiber-wireless access networks," Microwave and optical technology letters (Print), vol. 55, no. 5, s. 1033-1036, 2013.
[89]
X. Pang et al., "25 Gbit/s QPSK Hybrid Fiber-Wireless Transmission in the W-Band (75–110 GHz) With Remote Antenna Unit for In-Building Wireless Networks," IEEE Photonics Journal, vol. 4, no. 3, s. 691-698, 2012.
[90]
L. Deng et al., "2x2 MIMO-OFDM Gigabit fiber-wireless access system based on polarization division multiplexed WDM-PON," Optics Express, vol. 20, no. 4, s. 4369-4375, 2012.
[91]
L. Deng et al., "42.13 Gbit/S 16qam-OFDM Photonics-Wireless Transmission in 75-110 GHz Band," Progress In Electromagnetics Research, vol. 126, s. 449-461, 2012.
[92]
X. Pang et al., "Experimental characterization of a hybrid fiber-wireless transmission link in the 75 to 110 GHz band," Optical Engineering : The Journal of SPIE, vol. 51, no. 4, 2012.
[93]
L. Deng et al., "Fiber Wireless Transmission of 8.3-Gb/s/ch QPSK-OFDM Signals in 75–110-GHz Band," IEEE Photonics Technology Letters, vol. 24, no. 5, s. 383-385, 2012.
[94]
X. Zhang et al., "High phase noise tolerant pilot-tone-aided DP-QPSK optical communication systems," Optics Express, vol. 20, no. 18, s. 19990-19995, 2012.
[95]
M. Beltran et al., "Single- and Multiband OFDM Photonic Wireless Links in the 75-110 GHz Band EmployingOptical Combs," IEEE Photonics Journal, vol. 4, no. 5, s. 2027-2036, 2012.
[96]
Y. Zhao et al., "Ultra-Broadband Photonic Harmonic Mixer Based on Optical Comb Generation," IEEE Photonics Technology Letters, vol. 24, no. 1, s. 16-18, 2012.
[97]
X. Pang et al., "100 Gbit/s hybrid optical fiber-wireless link in the W-band (75–110 GHz)," Optics Express, vol. 19, no. 25, s. 24944-24949, 2011.
[98]
Y. Zhao et al., "Digital predistortion of 75–110 GHz W-band frequency multiplier for fiber wireless short range access systems," Optics Express, vol. 19, no. 26, s. 18-25, 2011.
[99]
Y. Zhao et al., "High accuracy microwave frequency measurement based on single-drive dual-parallel Mach-Zehnder modulator," Optics Express, vol. 19, no. 26, s. 681-686, 2011.
[100]
M. B. Othman et al., "MIMO-OFDM WDM PON with DM-VCSEL for femtocells application," Optics Express, vol. 19, no. 26, s. 537-542, 2011.
Konferensbidrag
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M. Joharifar et al., "16.9 Gb/s Single-Channel LWIR FSO Data Transmission with Directly Modulated QCL and MCT Detector," i 2024 Optical Fiber Communications Conference and Exhibition, OFC 2024 - Proceedings, 2024.
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Z. Lyu et al., "A Beam-Scannable Photonic THz-ISAC System Based on Risley Prisms," i 2023 Asia Communications and Photonics Conference/2023 International Photonics and Optoelectronics Meetings, ACP/POEM 2023, 2023.
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M. Han et al., "Deep Reservoir Computing for 100 Gbaud PAM6 IM/DD Transmission Impairment Mitigation," i 2023 OPTICAL FIBER COMMUNICATIONS CONFERENCE AND EXHIBITION, OFC, 2023.
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R. Puerta et al., "Experimental Validation of Coherent Joint Transmission in a Distributed-MIMO System with Analog Fronthaul for 6G," i 2023 Joint European Conference on Networks and Communications and 6G Summit, EuCNC/6G Summit 2023, 2023, s. 585-590.
[124]
O. Ozolins et al., "High-Baudrate SiP and InP Modulators for Data Center Interconnects," i 2023 31st International Conference on Software, Telecommunications and Computer Networks, SoftCOM 2023, 2023.
[125]
O. Ozolins et al., "High-Baudrate Silicon Photonics Ring Resonator Modulators for Short-Reach Applications," i 2023 Asia Communications and Photonics Conference/2023 International Photonics and Optoelectronics Meetings, ACP/POEM 2023, 2023.
[126]
O. Ozolins et al., "High-Baudrate Silicon Photonics Ring Resonator and Mach-Zehnder Modulators for Short-Reach Applications," i 2023 23rd International Conference on Transparent Optical Networks, ICTON 2023, 2023.
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O. Ozolins et al., "Optical Amplification-Free 310/256 Gbaud OOK, 197/145 Gbaud PAM4, and 160/116 Gbaud PAM6 EML/DML-based Data Center Links," i 2023 Optical Fiber Communications Conference and Exhibition, OFC 2023 - Proceedings, 2023.
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L. Bai et al., "Performance Analysis of Multicarrier Modulation Waveforms for Terahertz Wireless Communication," i 2023 21st International Conference on Optical Communications and Networks, ICOCN 2023, 2023.
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2024-11-17 01:58:59