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27.4 A 0.75-million-point fourier-transform chip for frequency-sparse signals

机译:27.4频率稀疏信号的0.75亿点傅立叶变换芯片

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Applications like spectrum sensing, radar signal processing, and pattern matching by convolving a signal with a long code, as in GPS, require large FFT sizes. ASIC implementations of such FFTs are challenging due to their large silicon area and high power consumption. However, the signals in these applications are sparse, i.e., the energy at the output of the FFT/IFFT is concentrated at a limited number of frequencies and with zero/negligible energy at most frequencies. Recent advances in signal processing have shown that, for such sparse signals, a new algorithm called the sparse FFT (sFFT) can compute the Fourier transform more efficiently than traditional FFTs [1].
机译:通过卷积带有长代码的信号的频谱感测,雷达信号处理和模式匹配,如GPS,需要大的FFT尺寸。由于其大的硅面积和高功耗,这种FFT的ASIC实现具有挑战性。然而,这些应用中的信号是稀疏的,即FFT / IFFT输出的能量在最有限数量的频率下集中,并且在大多数频率下具有零/可忽略的能量。信号处理的最新进步表明,对于这种稀疏信号,一种新的算法,称为稀疏FFT(SFFT)可以比传统FFT更有效地计算傅里叶变换[1]。

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