Multi-Frequency, Multi-Sonar Mapping of Shallow Habitats—Efficacy and Management Implications in the National Marine Park of Zakynthos, Greece
Abstract
:1. Introduction
2. Study Area
3. Data Acquisition and Manual Habitat Mapping
4. Multifrequency Backscatter Mosaics and Texture Analysis Features
4.1. Mosaicking MBES (180 kHz) and Dual Frequency (100 and 400 kHz) SSS Backscatter data
4.2. Image Texture Features
5. MBES Bathymetric Features
- Data Review: The sonar position and attitude available with the navigation survey lines were closely examined and the sonar data were compensated for heave-pitch-roll, tide-and-draft as well as for sound velocity profile information. Tidal variations were estimated using the Real Time Kinematics (RTK) GPS receiver, installed on the research vessel. True Heave, pitch and roll corrections were acquired through the MRU.
- Swath-by-swath editing: Automated geometric filters removed outliers present as spikes in the data.
- CUBE: Developed by UNH-CCOM [63], CUBE (Combined Uncertainty and Bathymetric Estimator) provides a near-automated editing of multibeam data, allowing for a rapid turn-around of data. CUBE is an error-model based, direct DTM generator, that estimates the depth plus a confidence interval directly on each node point of a bathymetric grid. The output DTM had a 2 m pixel size.
6. MBES Backscatter Angular Response Features
7. Supervised Classification
7.1. Facing Coverage and Resolution Inconsistencies: 100 kHz SSS Mosaic Segmentation for Object Based Classification
7.2. Data Models: Systems’ Features Fusion and Feature Selection
7.3. Supervised Classification: Training, Validation and Accuracies
8. Results
8.1. Angular Backscatter Responses
8.2. Frequency Dependent Separation of Seagrasses
8.3. Relative Importance of MBES and SSS Data Models for Acoustic Habitat Mapping. Allies or Not?
8.4. Classification Accuracy per Habitat Type. Which System is Better for Each Shallow Habitat Type?
9. Discussion
10. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Fakiris, E.; Blondel, P.; Papatheodorou, G.; Christodoulou, D.; Dimas, X.; Georgiou, N.; Kordella, S.; Dimitriadis, C.; Rzhanov, Y.; Geraga, M.; et al. Multi-Frequency, Multi-Sonar Mapping of Shallow Habitats—Efficacy and Management Implications in the National Marine Park of Zakynthos, Greece. Remote Sens. 2019, 11, 461. https://doi.org/10.3390/rs11040461
Fakiris E, Blondel P, Papatheodorou G, Christodoulou D, Dimas X, Georgiou N, Kordella S, Dimitriadis C, Rzhanov Y, Geraga M, et al. Multi-Frequency, Multi-Sonar Mapping of Shallow Habitats—Efficacy and Management Implications in the National Marine Park of Zakynthos, Greece. Remote Sensing. 2019; 11(4):461. https://doi.org/10.3390/rs11040461
Chicago/Turabian StyleFakiris, Elias, Philippe Blondel, George Papatheodorou, Dimitris Christodoulou, Xenophon Dimas, Nikos Georgiou, Stavroula Kordella, Charalampos Dimitriadis, Yuri Rzhanov, Maria Geraga, and et al. 2019. "Multi-Frequency, Multi-Sonar Mapping of Shallow Habitats—Efficacy and Management Implications in the National Marine Park of Zakynthos, Greece" Remote Sensing 11, no. 4: 461. https://doi.org/10.3390/rs11040461