Applied Sciences (Aug 2024)

Research on Seismic Phase Recognition Method Based on Bi-LSTM Network

  • Li Wang,
  • Jianxian Cai,
  • Li Duan,
  • Lili Guo,
  • Xingxing Shi,
  • Huanyu Cai

DOI
https://doi.org/10.3390/app14166917
Journal volume & issue
Vol. 14, no. 16
p. 6917

Abstract

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In order to improve the precision of phase recognition and reduce the rate of misdetection, this paper applies the deep learning method to automatic phase recognition. In this paper, an automatic seismic phase recognition model based on the Bi-LSTM network is designed. To test the performance of this model, the STEAD dataset is used for training and testing, and this model is compared with the traditional STA/LTA and AIC methods. The experimental results show that, compared to STA/LTA and AIC methods, the Bi-LSTM network can reduce the misdetection rate by about 8–15%, and improve the RSEM; especially, the prediction error of S-wave is greatly reduced.

Keywords