Topographic Correction of Wind-Driven Rainfall for Landslide Analysis in Central Taiwan with Validation from Aerial and Satellite Optical Images
Abstract
:1. Introduction
2. Study Area and Rainfall Event for an Experiment
3. Methodology
3.1. Determining the Terminal Velocity of Raindrops
V | the terminal velocity (m/s), |
D | the raindrop size (mm), |
R | the regression coefficient. |
3.2. Determining the Wind Vector
3.3. Determine the Rainfall Vector
- (a). the average rainfall vector of the highest 24-h rainfall intensity;
- (b). the accumulated rainfall vector of hourly average rainfall vectors in the highest 24-h rainfall intensity;
- (c). the average rainfall vector of the 12 h prior to the peak intensity of the event;
- (d). the accumulated rainfall vector of the hourly average rainfall vectors in the 12 h prior to the peak intensity of the event; and,
- (e). the accumulated rainfall vector of the hourly average rainfall vectors in the all hours of the event.
3.4. Determining the Correction Factor of Topographic Projection
3.5. Kernel Density Analysis of Landslides
τ | radius of circle neighborhood, |
hi | distance between the point s and the observation point si, |
n | number of observation points, |
D(s) | density at point s (grid cell center), |
si | observation point i (equals 1 or a quantity). |
4. Experimental Results and Discussion
4.1. The Generation of Reference Data for Evaluation
4.2. Effects of Topographic Correction with Rainfall Vectors
4.3. Landslide Distribution in Various Slope Aspects and Rainfall
4.4. Landslide Distribution in Various Slope Angles and Rainfall
5. Conclusions and Future Work
Acknowledgments
- Conflict of InterestThe authors declare no conflict of interest.
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Type of Movements | Type of Materials | |||
---|---|---|---|---|
Bed Rock | Engineering Soils | |||
Debris | Soils | |||
Falls | Rock falls | Shallow-seated slide | ||
Topples | ||||
Slide | Translational | Dip-slope and wedge slide | ||
Rotational | Deep-seated slide | |||
Flows | (not applicable) | Debris flow | (not applicable) |
Taken before Mindulle | Taken after Mindulle | |
---|---|---|
Image ID | CSR_P0000358_SP5G1J_20040115 | CSR_P0000787_SP5G1J_20041102 |
Receiving time | 2004/01/15_02:40:31 | 2004/11/02_02:26:21 |
Viewing incidence angle | −3.088 | −30.333551 |
Path/Row | 299/300 | 299/301 |
Width/Height (Km) | 121/324 | 149.5/391 |
Lines/pixels | 32400(lines)/12100(pixels) | 39100(lines)/14950(pixels) |
Sun Elevation | 39.607085 | 39.607085 |
Sun Azimuth | 154.07631 | 153.53001 |
Orientation | 12.9894 | 11.6754 |
Class | Lower Bound (m2) | Upper Bound (m2) | By Image on 20040115 | By Image on 20041102 | ||
---|---|---|---|---|---|---|
Slide Number | Slide Area | Slide Number | Slide Area | |||
1 | 0 | 1,600 | 16 | 17,332 | 20 | 21,748 |
2 | 1,600 | 3,200 | 8 | 19,323 | 19 | 42,971 |
3 | 3,200 | 6,400 | 21 | 109,372 | 27 | 130,225 |
4 | 6,400 | 12,800 | 23 | 210,572 | 24 | 222,137 |
5 | 12,800 | 25,600 | 9 | 156,715 | 14 | 243,953 |
6 | 25,600 | 51,200 | 4 | 151,399 | 6 | 221,090 |
7 | 51,200 | 80,437 | 3 | 212,585 | 3 | 173,041 |
Total | 84 | 877,298 | 113 | 1,055,165 |
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Liu, J.-K.; Shih, P.T.Y. Topographic Correction of Wind-Driven Rainfall for Landslide Analysis in Central Taiwan with Validation from Aerial and Satellite Optical Images. Remote Sens. 2013, 5, 2571-2589. https://doi.org/10.3390/rs5062571
Liu J-K, Shih PTY. Topographic Correction of Wind-Driven Rainfall for Landslide Analysis in Central Taiwan with Validation from Aerial and Satellite Optical Images. Remote Sensing. 2013; 5(6):2571-2589. https://doi.org/10.3390/rs5062571
Chicago/Turabian StyleLiu, Jin-King, and Peter T.Y. Shih. 2013. "Topographic Correction of Wind-Driven Rainfall for Landslide Analysis in Central Taiwan with Validation from Aerial and Satellite Optical Images" Remote Sensing 5, no. 6: 2571-2589. https://doi.org/10.3390/rs5062571
APA StyleLiu, J. -K., & Shih, P. T. Y. (2013). Topographic Correction of Wind-Driven Rainfall for Landslide Analysis in Central Taiwan with Validation from Aerial and Satellite Optical Images. Remote Sensing, 5(6), 2571-2589. https://doi.org/10.3390/rs5062571