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An Efficient Adaptive Window Size Selection Method for Improving Spectrogram Visualization

机译:一种改进频谱图可视化的有效自适应窗口大小选择方法

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摘要

Short Time Fourier Transform (STFT) is an important technique for the time-frequency analysis of a time varying signal. The basic approach behind it involves the application of a Fast Fourier Transform (FFT) to a signal multiplied with an appropriate window function with fixed resolution. The selection of an appropriate window size is difficult when no background information about the input signal is known. In this paper, a novel empirical model is proposed that adaptively adjusts the window size for a narrow band-signal using spectrum sensing technique. For wide-band signals, where a fixed time-frequency resolution is undesirable, the approach adapts the constant Q transform (CQT). Unlike the STFT, the CQT provides a varying time-frequency resolution. This results in a high spectral resolution at low frequencies and high temporal resolution at high frequencies. In this paper, a simple but effective switching framework is provided between both STFT and CQT. The proposed method also allows for the dynamic construction of a filter bank according to user-defined parameters. This helps in reducing redundant entries in the filter bank. Results obtained from the proposed method not only improve the spectrogram visualization but also reduce the computation cost and achieves 87.71% of the appropriate window length selection.
机译:短时间傅里叶变换(STFT)是时频分析时间变化信号的重要技术。其背后的基本方法涉及将快速傅里叶变换(FFT)应用于乘以具有固定分辨率的适当窗口功能的信号。当没有已知有关输入信号的背景信息时,难以选择适当的窗口大小。在本文中,提出了一种新的经验模型,其使用频谱感测技术自适应地调节窄带信号的窗口大小。对于宽带信号,在不希望的固定时频分辨率的情况下,该方法适应常数Q变换(CQT)。与STF不同,CQT提供不同的时频分辨率。这导致低频频率高,高频的高频率分辨率。在本文中,STFT和CQT之间提供了一种简单但有效的交换框架。所提出的方法还允许根据用户定义的参数进行滤波器组的动态构造。这有助于减少滤波器库中的冗余条目。从所提出的方法获得的结果不仅改善了谱图可视化,而且还降低了计算成本并实现了适当的窗口长度选择的87.71%。

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