Trends in Coral Reef Habitats over Two Decades: Lessons Learned from Nha Trang Bay Marine Protected Area, Vietnam
Abstract
:1. Introduction
2. Materials and Methods
2.1. Study Area
2.2. Mapping Coral Reef Habitat
2.2.1. Working Flow and Field Data Collection
2.2.2. Remote Sensing of Coral Change Detection
2.3. Machine Learning Approach
2.3.1. Introduction of LGBM and DF Models
2.3.2. Model Hyper-Parameter Optimization
2.3.3. Model Implementation
2.3.4. Model Evaluation
3. Results
3.1. Current Status of the Coral Reef Habitat in Nha Trang MPA
3.2. Coral Reef Area Changed over Two Decades
3.2.1. Coral Changes Between 2002 and 2016
3.2.2. Coral Changes Between 2016 and 2024
3.2.3. Coral Changes Between 2002 and 2024
4. Discussion
4.1. Coral Reef Detection Using Remote Sensing and ML
4.2. Major Factors Governing Changes in Coral Reef Habitat
4.2.1. Local Resident Activities
4.2.2. Crown-of-Thorns Starfish
4.2.3. Pollution Discharged from Mainland
4.2.4. Global Warming
4.2.5. Climate Change, an Increase in Tropical Storms and Cyclones
4.3. Proposed Approach for Better Management
4.3.1. Community-Based Management (CBM) and Community-Based Tourism (CBT)
- -
- Reducing local anthropogenic impacts may increase coral reefs’ resilience to climate change.
- -
- Reducing local stressors also provides time for coral reef species to adapt or acclimate [5].
- -
- Reducing dependence on fishing is crucial for protecting coral reefs.
- -
- Alternative fishing restrictions, such as controlling the species caught, fishing gear, access, and seasonal closures of breeding sites, can successfully sustain fish biomass while maintaining key ecosystem functions, such as herbivory.
- -
- Improving water quality by minimizing sedimentation and nutrient enrichment could enhance ecosystem health.
- -
- Coral reef conservation is a multi-scale objective that requires support from various stakeholders and organizations, from local, rights-based management to regional and national marine planning and international laws and regulations on trade.
4.3.2. Ecosystem-Based Management (EBM)
- (i)
- Minimize local stressors to reduce additional environmental pressure.
- (ii)
- Redesign the Nha Trang Bay MPA (e.g., through zoning and rezoning) to address both local pressures and global environmental changes.
- (iii)
- Implement active management approaches, such as human-assisted evolution and reef restoration, to support ecosystem recovery.
- (iv)
- Develop coordinated management and governance systems at multiple levels, incorporating local customary tenure and community participation.
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Scene ID | Date of Acquisition | Processing Level | Cloud Coverage | Spectral Bands | |
---|---|---|---|---|---|
Year 2016 | 20160831_022110_0e30 | 31 August 2016 | 3B | 0 | 4 (Blue, Green, Red, NIR) |
20160831_022111_0e30 | |||||
20160831_022119_0e0e | |||||
20160831_022120_0e0e | |||||
Year 2024 | 20240424_022649_77_24d0 | 24 April 2024 | 3B | 0 | 8 (Coastal, Blue, Green 1, Green 2, Yellow, Red, RedEdge, NIR) |
Scene ID | Date of Acquisition | Processing Level | Cloud Coverage | Spectral Bands | |
---|---|---|---|---|---|
Year 2002 | LE07_L1TP_123052_20020114_20200917_02_T1 | 14 January 2002 | 1T | 7 | 6 (Blue, Green, Red, NIR, SWIR 1, SWIR 2) |
Parameter | Value |
---|---|
aerosol_correction | dark_spectrum |
dsf_interface_reflectance | True |
min_tgas_aot | 0.85 |
min_tgas_rho | 0.70 |
dsf_residual_glint_correction | False |
dsf_aot_compute | min |
dsf_aot_estimate | fixed |
Output | Surface reflectance at blue, green, and red channels |
R2 | ||||
---|---|---|---|---|
– | 0.93 | 0.94 | ||
– | 0.87 | 0.80 | ||
– | 0.73 | 1.00 |
R2 | ||||
---|---|---|---|---|
– | 0.90 | 0.84 | ||
– | 0.94 | 0.46 | ||
– | 0.76 | 0.36 |
Band Ratio | Principal Component Analysis (PCA) | Spectral Index | |
---|---|---|---|
Landsat 7 ETM (2002) | Yes | Yes | No |
Planet (2016) | Yes | Yes | No |
Planet (2024) | Yes | Yes | Yes |
Index | Abbreviation | Formula | Reference | |
---|---|---|---|---|
1 | Red–green Ratio index | IRG | r/g | [33] |
2 | Excess green index | ExG | 2grb | [34] |
LGBM | |||
boosting_type | dart | n_estimators | 90 |
learning_rate | 0.19 | num_leave | 10 |
max_depth | −1 | ||
DF | |||
max_layers | 20 | n_estimators | 6 |
use_predictor | True | predictor | lightgbm |
back_end | sklearn | Predictor_kwargs (lightgbm) | |
max_depth | −1 | ||
min_sample_split | 4 | ||
min_sample_leaf | 4 | ||
n_estimators | 100 | ||
learining_rate | 0.09 |
Number of Input Bands | Number of Training Pixels | Number of Validation Pixels | |
---|---|---|---|
Landsat 7 ETM (2002) | 10 | 341 | 341 |
Planet (2016) | 10 | 15,918 | 15,918 |
Planet (2024) | 12 | 7850 | 7850 |
Planet (2024) | 0.94 | 0.92 | 0.88 | 0.84 | 0.86 |
Planet (2016) | 0.92 | 0.89 | 0.82 | 0.83 | 0.82 |
Landsat 7 ETM+ (2002) | 0.88 | 0.83 | 0.84 | 0.85 | 0.85 |
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Hieu, N.T.D.; Quang, N.H.; Dien, T.D.; Ha, V.T.; Tran, N.D.H.; Son, T.P.H.; Nguyen-Quang, T.; Hang, T.T.T.; Thang, H.N. Trends in Coral Reef Habitats over Two Decades: Lessons Learned from Nha Trang Bay Marine Protected Area, Vietnam. Water 2025, 17, 1224. https://doi.org/10.3390/w17081224
Hieu NTD, Quang NH, Dien TD, Ha VT, Tran NDH, Son TPH, Nguyen-Quang T, Hang TTT, Thang HN. Trends in Coral Reef Habitats over Two Decades: Lessons Learned from Nha Trang Bay Marine Protected Area, Vietnam. Water. 2025; 17(8):1224. https://doi.org/10.3390/w17081224
Chicago/Turabian StyleHieu, Nguyen Trinh Duc, Nguyen Hao Quang, Tran Duc Dien, Vo Thi Ha, Nguyen Dang Huyen Tran, Tong Phuoc Hoang Son, Tri Nguyen-Quang, Tran Thi Thuy Hang, and Ha Nam Thang. 2025. "Trends in Coral Reef Habitats over Two Decades: Lessons Learned from Nha Trang Bay Marine Protected Area, Vietnam" Water 17, no. 8: 1224. https://doi.org/10.3390/w17081224
APA StyleHieu, N. T. D., Quang, N. H., Dien, T. D., Ha, V. T., Tran, N. D. H., Son, T. P. H., Nguyen-Quang, T., Hang, T. T. T., & Thang, H. N. (2025). Trends in Coral Reef Habitats over Two Decades: Lessons Learned from Nha Trang Bay Marine Protected Area, Vietnam. Water, 17(8), 1224. https://doi.org/10.3390/w17081224