Use of single bin Fourier transform algorithm for high speed tone detection and parallel processing

S. K. Sakib, F. Ferdaus, Md. Saifur Rahman
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引用次数: 2

Abstract

Fourier transform is the classical tool for performing spectral analysis of a short-duration signal and fast Fourier transform (FFT) is the widely used algorithm for achieving the same with a high degree of computational efficiency. Recently a “single bin Fourier transform algorithm” has been proposed by the present authors, which is designed to compute the spectral amplitude and phase of a single frequency present in the time signal to be analyzed. The traditional detection scheme involves sampling the analog signal first using the Nyquist's sampling theorem, apply the FFT on the sampled signal and then identify the desired frequency from the FFT output. However, in case of tone detection, only the presence of a single frequency is to be tested. The computation of the whole FFT output dataset is superfluous in this case. In this paper, we have used the single bin Fourier transform algorithm for tone detection, which makes the detection scheme less complex and computationally more efficient than the traditional FFT algorithm. Moreover, the method of parallel processing can be applied to make the system more efficient in detecting the existence of more than one frequency component present in the incoming signal. The main objective of the proposed scheme is to improve the detection speed of a single frequency, or a narrow band of frequencies, present in a signal.
采用单bin傅里叶变换算法进行高速音调检测和并行处理
傅里叶变换是对短持续时间信号进行频谱分析的经典工具,快速傅里叶变换(FFT)是实现短持续时间信号频谱分析的一种广泛使用的算法,具有很高的计算效率。最近,本文作者提出了一种“单bin傅里叶变换算法”,该算法用于计算待分析时间信号中存在的单频的频谱幅度和相位。传统的检测方案是首先使用奈奎斯特采样定理对模拟信号进行采样,然后对采样信号进行FFT处理,然后从FFT输出中识别出所需的频率。然而,在音调检测的情况下,只需要测试单个频率的存在。在这种情况下,整个FFT输出数据集的计算是多余的。在本文中,我们使用了单bin傅里叶变换算法进行音调检测,使得检测方案比传统的FFT算法更简单,计算效率更高。此外,可以应用并行处理的方法使系统更有效地检测输入信号中存在的多个频率分量的存在。该方案的主要目标是提高信号中存在的单频或窄频带的检测速度。
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