太赫兹通信是未来6G中业界关注的重要场景之一。太赫兹频段可以支持超大带宽和超高速率的无线通信,目前3GPP协议中的正交频分复用(Orthogonal Frequency Division Multiplex, OFDM)技术使用支持的最大子载波间隔和最大快速傅里叶逆变换(...太赫兹通信是未来6G中业界关注的重要场景之一。太赫兹频段可以支持超大带宽和超高速率的无线通信,目前3GPP协议中的正交频分复用(Orthogonal Frequency Division Multiplex, OFDM)技术使用支持的最大子载波间隔和最大快速傅里叶逆变换(Inverse Fast Fourier Transform, IFFT)点数不足以满足太赫兹场景超大带宽的需求。提出了一种新的波形方案:广义滤波器组-正交频分复用(Generalized Filter Bank Orthogonal Frequency Division Multiplexing, GFB-OFDM)波形,可以将原有的大点数IFFT分解成两级小点数的IFFT,以支持更大的传输带宽。GFB-OFDM还可以灵活地支持不同子载波间隔、不同数据类型的联合处理,以实现不同业务类型的传输。GFB-OFDM在接收端仍然可以采用传统的循环前缀正交频分复用(Cyclic Prefix Orthogonal Frequency Division Multiplexing, CP-OFDM)接收方法,仿真结果表明GFB-OFDM的综合性能优于CP-OFDM。展开更多
This paper presents a new Transmitted Reference (TR) Ultra-WideBand (UWB) receiver based on Spatial Diversity (SD), which employs Multi-Antenna Technology (MAT) to improve the performance of TR-UWB receiver. According...This paper presents a new Transmitted Reference (TR) Ultra-WideBand (UWB) receiver based on Spatial Diversity (SD), which employs Multi-Antenna Technology (MAT) to improve the performance of TR-UWB receiver. According to the amplitude of correlator output of every antenna branch, this paper analyzed the performances of the proposed TR-UWB receiver employing three different kinds of combination strategies, i.e., Maximum Ratio Combination (MRC), Equal Gain Combination (EGC), and Selective Combination (SC), which are different from conventional ones, and theoretically proved that the performance of EGC is better than MRC. Simulation results verify that when EGC is adopted and BER=10-3, increasing three antennas provides Signal to Noise Ratio (SNR) gain of about 3 dB in CM4 channel and SNR gain of about 2 dB in CM2 channel.展开更多
We propose a novel scheme to generate the ultra-wideband (UWB) doublet signal pulse based on the cross-gain modulation (XGM) in a semiconductor optical amplifier (SOA). In the scheme, only an optical source and an SOA...We propose a novel scheme to generate the ultra-wideband (UWB) doublet signal pulse based on the cross-gain modulation (XGM) in a semiconductor optical amplifier (SOA). In the scheme, only an optical source and an SOA are needed. As there is only one wavelength included in the output doublet signal pulse, no time difference between the upper and down pulses is introduced during the transmission process. By using the software of Optisystem 7.0, the impacts of the optical power, the SOA current, the wavelength and the input signal pulse width on the generated doublet pulse are simulated and tudied numerically. The results show that when the pulse width of the input signal pulse is larger, the output signal pulse is better, and is insensitive to the change of wavelength. In addition, the ultra-wideband positive and negative monocycles can be generated by choosing suitable optical source power and SOA current.展开更多
文摘太赫兹通信是未来6G中业界关注的重要场景之一。太赫兹频段可以支持超大带宽和超高速率的无线通信,目前3GPP协议中的正交频分复用(Orthogonal Frequency Division Multiplex, OFDM)技术使用支持的最大子载波间隔和最大快速傅里叶逆变换(Inverse Fast Fourier Transform, IFFT)点数不足以满足太赫兹场景超大带宽的需求。提出了一种新的波形方案:广义滤波器组-正交频分复用(Generalized Filter Bank Orthogonal Frequency Division Multiplexing, GFB-OFDM)波形,可以将原有的大点数IFFT分解成两级小点数的IFFT,以支持更大的传输带宽。GFB-OFDM还可以灵活地支持不同子载波间隔、不同数据类型的联合处理,以实现不同业务类型的传输。GFB-OFDM在接收端仍然可以采用传统的循环前缀正交频分复用(Cyclic Prefix Orthogonal Frequency Division Multiplexing, CP-OFDM)接收方法,仿真结果表明GFB-OFDM的综合性能优于CP-OFDM。
文摘This paper presents a new Transmitted Reference (TR) Ultra-WideBand (UWB) receiver based on Spatial Diversity (SD), which employs Multi-Antenna Technology (MAT) to improve the performance of TR-UWB receiver. According to the amplitude of correlator output of every antenna branch, this paper analyzed the performances of the proposed TR-UWB receiver employing three different kinds of combination strategies, i.e., Maximum Ratio Combination (MRC), Equal Gain Combination (EGC), and Selective Combination (SC), which are different from conventional ones, and theoretically proved that the performance of EGC is better than MRC. Simulation results verify that when EGC is adopted and BER=10-3, increasing three antennas provides Signal to Noise Ratio (SNR) gain of about 3 dB in CM4 channel and SNR gain of about 2 dB in CM2 channel.
基金supported by the National Natural Science Foundation of China (No.60707006)the Natural Science Research Project of Jiangsu University (No.09KJB510009)the Scientific Research Foundation for Introducing Talent of Nanjing University of Posts & Telecom- munications (No.NY207142)
文摘We propose a novel scheme to generate the ultra-wideband (UWB) doublet signal pulse based on the cross-gain modulation (XGM) in a semiconductor optical amplifier (SOA). In the scheme, only an optical source and an SOA are needed. As there is only one wavelength included in the output doublet signal pulse, no time difference between the upper and down pulses is introduced during the transmission process. By using the software of Optisystem 7.0, the impacts of the optical power, the SOA current, the wavelength and the input signal pulse width on the generated doublet pulse are simulated and tudied numerically. The results show that when the pulse width of the input signal pulse is larger, the output signal pulse is better, and is insensitive to the change of wavelength. In addition, the ultra-wideband positive and negative monocycles can be generated by choosing suitable optical source power and SOA current.