Applied Sciences (Jan 2024)

Iterative Interferometric Denoising Filter for Traveltime Picking

  • Hanqing Qiao,
  • Yicheng Zhou,
  • Sherif M. Hanafy,
  • Cai Liu

DOI
https://doi.org/10.3390/app14020733
Journal volume & issue
Vol. 14, no. 2
p. 733

Abstract

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Traveltime picking accuracy is frequently affected by incoherent or random data noise. Within this context, we put forth a new denoising method called iterative interferometric denoising filtering. This method leverages the pseudo-Wigner distribution function to capture the offset and time-symmetric patterns of source wavelets convolved in seismic signals. Incoherent or random noises without this characteristic are eliminated via this approach. The processed data have waveform information distortion and more frequency components. However, the traveltime information can be considered correct, and the improved signal-to-noise ratio makes traveltime picking much more convenient. Our method’s practical applications in a synthetic and in two field datasets show that this technology can increase the signal-to-noise ratio, and the picked traveltime information can be used in traveltime tomography. These two field datasets were collected near the Aqaba Gulf and the Qademah fault, located in King Abdullah Economic City.

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