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Fading testbed for free-space optical communications

机译:用于自由空间光通信的衰落试验台

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摘要

Free-space optical (FSO) communication is a very attractive technology offering very high throughput without spectral regulation constraints, yet allowing small antennas (telescopes) and tap-proof communication. However, the transmitted signal has to travel through the atmosphere where it gets influenced by atmospheric turbulence, causing scintillation of the received signal. In addition, climatic effects like fogs, clouds and rain also affect the signal significantly. Moreover, FSO being a line of sight communication requires precise pointing and tracking of the telescopes, which otherwise also causes fading. To achieve error-free transmission, various mitigation techniques like aperture averaging, adaptive optics, transmitter diversity, sophisticated coding and modulation schemes are being investigated and implemented. Evaluating the performance of such systems under controlled conditions is very difficult in field trials since the atmospheric situation constantly changes, and the target scenario (e.g. on aircraft or satellites) is not easily accessible for test purposes. Therefore, with the motivation to be able to test and verify a system under laboratory conditions, DLR has developed a fading testbed that can emulate most realistic channel conditions. The main principle of the fading testbed is to control the input current of a variable optical attenuator such that it attenuates the incoming signal according to the loaded power vector. The sampling frequency and mean power of the vector can be optionally changed according to requirements. This paper provides a brief introduction to software and hardware development of the fading testbed and measurement results showing its accuracy and application scenarios.
机译:自由空间光学(FSO)通信是一种非常有吸引力的技术,提供了非常高的吞吐量,而无需光谱调节约束,却允许小型天线(望远镜)和防纬通信。然而,传输信号必须通过大气影响到大气湍流的气氛,从而导致接收信号的闪烁。此外,像雾,云和雨等气候效果也显着影响信号。此外,FSO是视线通信需要精确指向和跟踪望远镜,否则也会导致衰落。为了实现无差错传输,正在研究和实现各种缓解技术,如孔径平均,自适应光学,发射机分集,复杂的编码和调制方案。评估在受控条件下的这种系统的性能在现场试验中非常困难,因为大气情况不断变化,并且目标场景(例如,在飞机或卫星上)不易获得测试目的。因此,随着能够在实验室条件下测试和验证系统的动机,DLR开发了一种褪色试验台,可以模拟最逼真的渠道条件。衰落试验台的主要原理是控制可变光学衰减器的输入电流,使得它根据加载的电力矢量衰减输入信号。可以根据要求可选地改变向量的采样频率和平均功率。本文简要介绍了软件和硬件开发的衰落试验台和测量结果,显示了其准确性和应用场景。

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