Development of a Regional Coral Observation Method by a Fluorescence Imaging LIDAR Installed in a Towable Buoy
Abstract
:1. Introduction
2. Methods
2.1. Fluorescence Properties of Corals
2.2. Fluorescence Imaging LIDAR System
UV—pulsed Laser (Quantel CFR400) | Type | neodymium-doped yttrium aluminium garnet (Nd:YAG) |
Wavelength | 355 nm | |
Energy | 90 mJ/pulse | |
Pulse Width | 9 ns | |
Repetition | 1–5 Hz (adjustable) | |
Spread Angle | 45 to 350 mrad (adjustable) | |
Gated ICCD Camera (Hamamatsu Photonics C10054-22) Collective Lens (Fujinon C22-17A-M41) | ICCD Type | Image—intensifiedCCD with Gate function of usual OFF |
Quantum Efficiency | 50% (Max) | |
Image Gain | 5 × 106 (Max) | |
ICCD Wavelength Range | 280–720 nm | |
Max. sensitive wavelength | 530 nm | |
CCD number of pixels | 768 × 494 | |
Lens Diameter | 70 mm | |
Lens Wavelength Range | 407 nm–Visible | |
Field of View | 35 to 660 mrad (adjustable) | |
Video Camera (Sony HDR-CX560V) | Type | 1/3 inch complementary metal–oxide–semiconductor (CMOS) |
Field of View | 90 to 1050 mrad (adjustable) | |
CMOS pixel size | 6.14 × 106 pixel (16:9) | |
DGPS Sensor (Septentrio PolaRx2e@) | Type | Single frequency, 3 antenna |
Position Accuracy | 1 m | |
Attitude Accuracy | 5 mrad | |
SONAR Depth Sounder (Tamaya Technics TDM-9000B) | Frequency | 200 kHz |
Spread Angle | 200 mrad | |
Observation Range | 1 to 100 m | |
Depth Accuracy | 0.1 m | |
Towable Buoy | Diameter | 200 mm |
Length | 2 m | |
Observation Window | Pyrex–reinforced glass |
3. Results
3.1. Long Line Observation
3.2. Coral Cover Observations
4. Conclusions
Acknowledgments
Author Contributions
Conflicts of Interest
References
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Sasano, M.; Imasato, M.; Yamano, H.; Oguma, H. Development of a Regional Coral Observation Method by a Fluorescence Imaging LIDAR Installed in a Towable Buoy. Remote Sens. 2016, 8, 48. https://doi.org/10.3390/rs8010048
Sasano M, Imasato M, Yamano H, Oguma H. Development of a Regional Coral Observation Method by a Fluorescence Imaging LIDAR Installed in a Towable Buoy. Remote Sensing. 2016; 8(1):48. https://doi.org/10.3390/rs8010048
Chicago/Turabian StyleSasano, Masahiko, Motonobu Imasato, Hiroya Yamano, and Hiroyuki Oguma. 2016. "Development of a Regional Coral Observation Method by a Fluorescence Imaging LIDAR Installed in a Towable Buoy" Remote Sensing 8, no. 1: 48. https://doi.org/10.3390/rs8010048
APA StyleSasano, M., Imasato, M., Yamano, H., & Oguma, H. (2016). Development of a Regional Coral Observation Method by a Fluorescence Imaging LIDAR Installed in a Towable Buoy. Remote Sensing, 8(1), 48. https://doi.org/10.3390/rs8010048