Enhancement of Signal-to-noise Ratio in Natural-source Transient Magnetotelluric Data with Wavelet Transform

被引:0
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作者
Y. Zhang
K. V. Paulson
机构
[1] Cybernetics Laboratory,
[2] Department of Physics and Engineering Physics,undefined
[3] University of Saskatchewan,undefined
[4] Saskatoon ,undefined
[5] S7N 5E2,undefined
[6] Canada.,undefined
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Key words: Wavelet transform, audio-frequency magnetotellurics, signal-to-noise ratio.;
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摘要
—For audio-frequency magnetotelluric surveys where the signals are lightning-stroke transients, the conventional Fourier transform method often fails to produce a high quality impedance tensor. An alternative approach is to use the wavelet transform method which is capable of localizing target information simultaneously in both the temporal and frequency domains. Unlike Fourier analysis that yields an average amplitude and phase, the wavelet transform produces an instantaneous estimate of the amplitude and phase of a signal. In this paper a complex well-localized wavelet, the Morlet wavelet, has been used to transform and analyze audio-frequency magnetotelluric data. With the Morlet wavelet, the magnetotelluric impedance tensor can be computed directly in the wavelet transform domain. The lightning-stroke transients are easily identified on the dilation-translation plane. Choosing those wavelet transform values where the signals are located, a higher signal-to-noise ratio estimation of the impedance tensor can be obtained.   In a test using real data, the wavelet transform showed a significant improvement in the signal-to-noise ratio over the conventional Fourier transform.
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页码:405 / 419
页数:14
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