Production, Validation and Morphometric Analysis of a Digital Terrain Model for Lake Trichonis Using Geospatial Technologies and Hydroacoustics
Abstract
:1. Introduction
2. Study Area
3. Materials and Methods
3.1. Topographic and Bathymetric Maps
3.2. DTM Production
3.2.1. DTM Interpolation
3.2.2. DTM Accuracy Analysis
- 1)
- New contours at a 5 m interval (i.e., at half the original 10 m interval) were created from the interpolated DTM (DTM_original);
- 2)
- The 5 m contours, together with the original 135 depth points, were used to create a new DTM using the Topo-to-Raster algorithm;
- 3)
- 4)
- The ratio of interpolated depth to interpolation error was calculated as a proxy for the signal-to-noise ratio and was plotted along the transect (Figure 4).
3.3. Echosoundings and GPS Data
3.3.1. Bathymetric Data Extraction from Hydroacoustic Data
3.3.2. Echosounder Accuracy Analysis
- Horizontal Accuracy (Spatial Resolution)
- Vertical (Depth) Accuracy
- i.
- Bottom Slope
- ii.
- Sound Velocity Variations
- iii.
- Time-Dependent Variations
- iv.
- Water-Undulation-Related Variations
- v.
- Vertical Datum Error
- Overall Uncertainty
3.3.3. Data Processing
3.4. Absolute Elevation Validation
3.5. Relative Elevation Validation
3.6. Bathymetric Model
3.7. Morphometric Analysis
4. Results
4.1. DTM
4.2. Absolute Elevation Error
4.3. Relative Elevation Error
4.4. Bathymetric Model
4.5. Morphometry
4.5.1. Absolute Depth and Volume
4.5.2. Relative Depth
5. Discussion
6. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Minimum (m) | −4.6 |
Maximum (m) | 2.3 |
Mean (m) | 0.0 |
Standard Deviation (m) | 0.4 |
Number of pixels | 136,640 |
Statistical Measure | Value |
---|---|
Mean (m) | 3.39 |
Standard Deviation (m) | 5.26 |
RMSE (Root Mean Squared Error) (m) | 5.38 |
RMSE 95% (m) | 3.90 |
RMSE 90% (m) | 2.98 |
Median (m) | 1.51 |
NMAD (Normalized Median Absolute Deviation) (m) | 2.86 |
(Excess) Kurtosis | 2.48 |
Skewness | –1.71 |
Minimum (m) | –3.93 |
Maximum (m) | 24.05 |
Range (m) | 27.98 |
N (number of samples) | 3284 |
Statistical Measure | Value |
---|---|
Mean (m) | 0.00 |
Standard Deviation (m) | 7.49 |
RMSE (Root Mean Square Error) (m) | 7.49 |
RMSE 95% (m) | 6.20 |
RMSE 90% (m) | 5.22 |
Median (m) | 0.72 |
Normalised Median Average Deviation (NMAD) (m) | 2.86 |
(Excess) Kurtosis | 1.17 |
Skewness | 0.04 |
Minimum (m) | –24.80 |
Maximum (m) | 24.67 |
Range (m) | 49.47 |
n (number of samples) | 3284 |
Mean | 0.00 m |
Median | –0.09 m |
Minimum | –6.30 m |
Maximum | 4.60 m |
Standard Deviation | 2.11 m |
Mean | 0.29 m |
Median | 0.18 m |
Minimum | −10.42 m |
Maximum | 10.89 m |
Standard Deviation | 2.81 m |
1st Order Surface (Plane) | |
Coefficient of (x’) | 0.0003035 |
Coefficient of (y’) | 0.0004229 |
Constant Term | 2.913 m |
Mean Error | 0.000 m |
Median Error | –0.931 m |
Minimum | –6.645 m |
Maximum | 16.689 m |
Range | 23.334 m |
Mean Absolute Error | 3.148 m |
RMSE | 4.331 m |
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Perivolioti, T.-M.; Mouratidis, A.; Terzopoulos, D.; Kalaitzis, P.; Ampatzidis, D.; Tušer, M.; Frouzova, J.; Bobori, D. Production, Validation and Morphometric Analysis of a Digital Terrain Model for Lake Trichonis Using Geospatial Technologies and Hydroacoustics. ISPRS Int. J. Geo-Inf. 2021, 10, 91. https://doi.org/10.3390/ijgi10020091
Perivolioti T-M, Mouratidis A, Terzopoulos D, Kalaitzis P, Ampatzidis D, Tušer M, Frouzova J, Bobori D. Production, Validation and Morphometric Analysis of a Digital Terrain Model for Lake Trichonis Using Geospatial Technologies and Hydroacoustics. ISPRS International Journal of Geo-Information. 2021; 10(2):91. https://doi.org/10.3390/ijgi10020091
Chicago/Turabian StylePerivolioti, Triantafyllia-Maria, Antonios Mouratidis, Dimitrios Terzopoulos, Panagiotis Kalaitzis, Dimitrios Ampatzidis, Michal Tušer, Jaroslava Frouzova, and Dimitra Bobori. 2021. "Production, Validation and Morphometric Analysis of a Digital Terrain Model for Lake Trichonis Using Geospatial Technologies and Hydroacoustics" ISPRS International Journal of Geo-Information 10, no. 2: 91. https://doi.org/10.3390/ijgi10020091
APA StylePerivolioti, T. -M., Mouratidis, A., Terzopoulos, D., Kalaitzis, P., Ampatzidis, D., Tušer, M., Frouzova, J., & Bobori, D. (2021). Production, Validation and Morphometric Analysis of a Digital Terrain Model for Lake Trichonis Using Geospatial Technologies and Hydroacoustics. ISPRS International Journal of Geo-Information, 10(2), 91. https://doi.org/10.3390/ijgi10020091