调制宽带变换器的硬件标定

E. Israeli, Shahar Tsiper, Deborah Cohen, Eli Shoshan, R. Hilgendorf, Alex Reysenson, Yonina C. Eldar
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引用次数: 27

摘要

在认知无线电(CR)的背景下,机会传输可以利用暂时空置的频谱带。高效、可靠的频谱感知是CR过程的关键。传统的CR接收机处理具有高奈奎斯特速率和低信噪比(SNRs)的宽带信号。为了在cr中进行有效的采样,已经提出了这种信号的亚奈奎斯特采样。调制宽带变换器(MWC)就是这种采样方案的一个例子。它由一个模拟前端组成,在以低速率采样之前有意地对信号进行混叠。然后,利用已知的样本和原始信号之间的关系,可以从低速率样本对信号进行数字重建。不幸的是,在实际的硬件实现中,这种关系是未知的。物理效应对采样过程有相当大的影响,因此,信号不能可靠地恢复。在本文中,我们提出了一种有效的自动校准算法,该算法无需任何先验知识即可构建系统的实际传递函数。然后,我们提出了一个新的基于MWC的CR原型,并在其上对校准算法进行了测试。在基于嵌入式专有卡的硬件样机上进行的实验表明,我们校准的传递函数可以实现信号重构,而理论传递函数则无法实现。我们的规范符合IEEE 802.22标准的CR要求,并通过不同调制方式的实验验证。它在带宽、更高的最大频率和更低的信噪比方面大大改进了以前的原型。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Hardware calibration of the modulated wideband converter
In the context of Cognitive Radio (CR), opportunistic transmissions can exploit temporarily vacant spectral bands. Efficient and reliable spectrum sensing is key in the CR process. CR receivers traditionally deal with wideband signals with high Nyquist rates and low Signal to Noise Ratios (SNRs). Sub-Nyquist sampling of such signals has been proposed for efficient sampling in CRs. The modulated wideband converter (MWC) is an example of such a sampling scheme. It is composed of an analog front-end, that aliases the signal intentionally before sampling it at a low rate. The signal can then be digitally reconstructed from the low rate samples, using the known relation between the samples and the original signal. Unfortunately, in real hardware implementation, this relation becomes unknown. Physical effects have a considerable impact on the sampling process, and as a consequence, the signal cannot be reliably recovered. In this paper, we present an efficient automated calibration algorithm that builds the actual transfer function of the system, without any prior knowledge. We then present a new, MWC based, CR prototype, on which the calibration algorithm was tested. Experiments on our hardware prototype, based on an embedded proprietary card, show that our calibrated transfer function leads to signal reconstruction whereas the theoretical one fails. Our specification complies with CR requirements of the IEEE standard 802.22 and was experimentally verified with different modulations. It vastly improves a previous prototype in terms of bandwidth, higher maximal frequency and coping with lower SNR.
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