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Photonic Analog-to-Digital Conversion of Microwave Signals Using Spectral-Interval Estimation

机译:使用光谱间隔估计的微波信号的光子模数转换

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Implementation of photonic analog-to-digital convertor (ADC) using an optimal way of information parallelizing at the level of circuit solutions can significantly improve the performance of the total system (signal source - ADC - computing device). Traditional approach for fast photonic ADC uses processing every time-neighbor sample of input signal by its own channel. For the input signals with limited bandwidth, another approach can be used, in which every input signal spectral interval is processed by its own channel, and the width of the spectral interval is adjusted with the performance of an electronic ADC used for digitizing. In many cases, output signals of electronic ADCs are sufficient for obtaining necessary information from the input signal without joint processing of the output signals of all channels; otherwise, outputs of all channels can be Fourier-processed and concatenated to get complete spectrum of a wideband microwave input signal. For realization of this scheme, a mode locked stable laser together with an amplitude modulator and two combs of narrow band optical filters can be used. Alternatively, a mode locked laser can be replaced with a continuous wave (CW) laser together with a number of optical modulators. Performance capabilities for signal ADC using spectral intervals are estimated. Parameters for optimal system operation are derived. It is shown that, for modern optical elements, 8-10 effective bits can be achieved in the digitized signal.
机译:光子模数转换器(ADC)使用在电路解决方案水平下并行化的最佳信息方式可以显着提高总系统的性能(信号源 - ADC - 计算设备)。快速光子ADC的传统方法使用其自己的通道处理每次相邻输入信号的样本。对于具有有限带宽的输入信号,可以使用另一种方法,其中每个输入信号谱间隔由其自身的通道处理,并且通过用于数字化的电子ADC的性能来调节频谱间隔的宽度。在许多情况下,电子ADC的输出信号足以从输入信号获得必要的信息,而无需联合处理所有通道的输出信号;否则,所有通道的输出都可以是傅里叶处理和连接的,以获得宽带微波输入信号的完整光谱。为了实现该方案,可以使用模式锁定稳定激光以及幅度调制器和两个窄带光学滤波器的两个磁带。或者,可以用多个光学调制器一起用连续波(CW)激光替换模式锁定的激光器。估计使用频谱间隔的信号ADC的性能能力。派生了最佳系统操作的参数。结果表明,对于现代光学元件,可以在数字化信号中实现8-10个有效位。

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