Towards Automatic Landslide-Quake Identification Using a Random Forest Classifier
Abstract
:1. Introduction
2. Study Materials and Method
2.1. Seismic Data
2.2. Automatic Classifier Using the Random Forest Algorithm
2.2.1. Random Forest Algorithm and Training Sample Collection
2.2.2. Time-Domain Attributes
2.2.3. Frequency-Domain Attributes
2.3. Classifier Performance
3. Results and Discussion
3.1. Performance of the Automatic Classifier Using 24 Attributes
3.2. Influence of Signal Attributes
3.3. Influence of Attributes between the Time and Frequency Domains
4. Application to Seismic Records of Typhoon Periods
4.1. Typhoon Morakot in 2009
4.2. Typhoon Soudelor in 2015
5. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Time-Domain Attributes | Frequency-Domain Attributes |
---|---|
T1. μMA T2. σMA T3. MAR T4. σMA/μMA T5. μSI T6. σSI T7. SIR T8. σSI/μSI T9. Mean of absolute amplitude | F10. 0.02–0.05 Hz PSD (LF1) F11. 0.05–0.1 Hz PSD (LF2) F12. 0.02–0.1 Hz PSD (LF3) F13. 0.1–1 Hz PSD (LF4) F14. 1–5 Hz PSD (HF1) F15. 5–8 Hz PSD (HF2) F16. 1–8 Hz PSD (HF3) F17. LF1/HF1 (RPSD11) F18. LF1/HF2 (RPSD12) F19. LF2/HF1 (RPSD21) F20. LF2/HF2 (RPSD22) F21. LF3/HF3 (RPSD33) F22. F_max F23. F_high F24. F_low |
Identified Class | |||
---|---|---|---|
A | B | ||
Manual class | A | True Positive | False Negative |
B | False Positive | True Negative |
Classifier | |||||
Landslide | Earthquake | Noise | Sensitivity | ||
Manual | Landslide | 186 | 25 | 3 | 86.9% |
Earthquake | 19 | 190 | 5 | 88.8% | |
Noise | 4 | 0 | 210 | 98.1% | |
Precision | 89.0% | 88.4% | 96.3% | 91.3% |
For Landslide-Quake | For Earthquake | Accuracy (%) | |||
---|---|---|---|---|---|
Sensitivity (%) | Precision (%) | Sensitivity (%) | Precision (%) | ||
σMA classifier | 50.5 | 50.9 | 53.7 | 54.3 | 65.6 |
LF1 classifier | 46.3 | 47.8 | 45.3 | 54.8 | 53.9 |
TD classifier | 80.4 | 83.5 | 84.6 | 82.6 | 87.7 |
FD classifier | 74.3 | 80.3 | 85.5 | 85.1 | 84.7 |
TD-FD classifier | 86.9 | 89.0 | 88.8 | 88.4 | 91.3 |
2009 TP Morakot | 98.9 | 73.7 | 44.2 | 59.0 | 95.6 |
2015 TP Sudeler | 100 | 10.0 | 52.9 | 32.5 | 90.2 |
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Lin, G.-W.; Hung, C.; Chang Chien, Y.-F.; Chu, C.-R.; Liu, C.-H.; Chang, C.-H.; Chen, H. Towards Automatic Landslide-Quake Identification Using a Random Forest Classifier. Appl. Sci. 2020, 10, 3670. https://doi.org/10.3390/app10113670
Lin G-W, Hung C, Chang Chien Y-F, Chu C-R, Liu C-H, Chang C-H, Chen H. Towards Automatic Landslide-Quake Identification Using a Random Forest Classifier. Applied Sciences. 2020; 10(11):3670. https://doi.org/10.3390/app10113670
Chicago/Turabian StyleLin, Guan-Wei, Ching Hung, Yi-Feng Chang Chien, Chung-Ray Chu, Che-Hsin Liu, Chih-Hsin Chang, and Hongey Chen. 2020. "Towards Automatic Landslide-Quake Identification Using a Random Forest Classifier" Applied Sciences 10, no. 11: 3670. https://doi.org/10.3390/app10113670
APA StyleLin, G.-W., Hung, C., Chang Chien, Y.-F., Chu, C.-R., Liu, C.-H., Chang, C.-H., & Chen, H. (2020). Towards Automatic Landslide-Quake Identification Using a Random Forest Classifier. Applied Sciences, 10(11), 3670. https://doi.org/10.3390/app10113670