As the earliest invented and utilized communication approach, shortwave, known as high frequency(HF) communication now experience the deterioration of HF electromagnetic environment. Finding quality frequency in effic...As the earliest invented and utilized communication approach, shortwave, known as high frequency(HF) communication now experience the deterioration of HF electromagnetic environment. Finding quality frequency in efficient manner becomes one of the key challenges in HF communication. Spectrum prediction infers the future spectrum status from history spectrum data by exploring the inherent correlations and regularities. The investigation of HF electromagnetic environment data reveals the correlations and predictability of HF frequency band in both time and frequency domain. To solve this problem, we develop a Spectrum Prediction-based Frequency Band Pre-selection(SP-FBP) for HF communications. The pre-selection of HF frequency band mainly incorporated in prediction of HF spectrum occupancy and prediction of HF usable frequency, which provide the frequency band ranking of spectrum occupancy and alternative frequency for spectrum sensing, respectively. Performance evaluation via real-world HF spectrum data shows that SP-FBP significantly improves the efficiency of finding quality frequency in HF communications.展开更多
根据PDH(Pound-Drever-Hall)稳频技术原理设计了基于FPGA的可调谐光纤激光器频率锁定控制电路,利用Matlab/Simulink建立频率误差信号解调电路模型,仿真结果表明能够输出频率误差信号。以FPGA为核心控制A/D采集光电探测器探测的信号,结合...根据PDH(Pound-Drever-Hall)稳频技术原理设计了基于FPGA的可调谐光纤激光器频率锁定控制电路,利用Matlab/Simulink建立频率误差信号解调电路模型,仿真结果表明能够输出频率误差信号。以FPGA为核心控制A/D采集光电探测器探测的信号,结合DDS(Direct Digital Synthesizer)技术在FPGA内部实现混频和低通滤波的功能,实验结果与仿真结果相符,能够解调出光纤激光器输出激光的频率锁定误差信号。根据此误差信号调节反馈电压,改变受压电陶瓷调谐的有源相移光纤光栅峰值谐振波长,实现对激光器的频率锁定,为光纤激光器稳频系统的集成化奠定了基础。展开更多
基金the Project of National Natural Science Foundation of China (Grant No. 61471395, No. 61301161, and No. 61501510)partly supported by Natural Science Foundation of Jiangsu Province (Grant No. BK20161125 and No. BK20150717)
文摘As the earliest invented and utilized communication approach, shortwave, known as high frequency(HF) communication now experience the deterioration of HF electromagnetic environment. Finding quality frequency in efficient manner becomes one of the key challenges in HF communication. Spectrum prediction infers the future spectrum status from history spectrum data by exploring the inherent correlations and regularities. The investigation of HF electromagnetic environment data reveals the correlations and predictability of HF frequency band in both time and frequency domain. To solve this problem, we develop a Spectrum Prediction-based Frequency Band Pre-selection(SP-FBP) for HF communications. The pre-selection of HF frequency band mainly incorporated in prediction of HF spectrum occupancy and prediction of HF usable frequency, which provide the frequency band ranking of spectrum occupancy and alternative frequency for spectrum sensing, respectively. Performance evaluation via real-world HF spectrum data shows that SP-FBP significantly improves the efficiency of finding quality frequency in HF communications.
文摘根据PDH(Pound-Drever-Hall)稳频技术原理设计了基于FPGA的可调谐光纤激光器频率锁定控制电路,利用Matlab/Simulink建立频率误差信号解调电路模型,仿真结果表明能够输出频率误差信号。以FPGA为核心控制A/D采集光电探测器探测的信号,结合DDS(Direct Digital Synthesizer)技术在FPGA内部实现混频和低通滤波的功能,实验结果与仿真结果相符,能够解调出光纤激光器输出激光的频率锁定误差信号。根据此误差信号调节反馈电压,改变受压电陶瓷调谐的有源相移光纤光栅峰值谐振波长,实现对激光器的频率锁定,为光纤激光器稳频系统的集成化奠定了基础。