A lifecycle model approach for predicting mangrove extent
Brad Henderson1, William Glamore1
1Water Research Laboratory, School of Civil and Environmental Engineering, UNSW, Sydney, NSW, Australia.
The Science of the Total Environment
|September 5, 2024
Summary
A new mangrove lifecycle model accurately predicts Avicennia marina distribution by considering tidal dynamics and establishment stressors. This causal approach improves mangrove restoration success by understanding species viability across different life stages.
Area of Science:
- Ecology
- Marine Biology
- Environmental Science
Background:
- Traditional mangrove distribution models rely on tidal parameters but overlook species-specific survivability thresholds and lifecycle stages.
- This lack of understanding contributes to poor outcomes in mangrove restoration and creation projects globally.
- Avicennia marina viability is influenced by complex interactions between tidal dynamics, estuarine typology, and physiological thresholds.
Purpose of the Study:
- To propose and validate a novel mangrove lifecycle model using a multi-forcing threshold approach for simulating Avicennia marina viability.
- To provide physiological reasoning for mangrove establishment and development across different life phases.
- To accurately predict mangrove extent by integrating lifecycle stages, environmental conditions, and estuarine characteristics.
Main Methods:
- Developed a mangrove lifecycle model incorporating critical thresholds for reproduction, seed dispersal, seedling establishment, and mature tree survival.
- Validated the model at 37 sites across eastern Australia, considering diverse estuary types and tidal dynamics.
- Employed statistical analysis, including RMSE and R-squared, to assess the accuracy of predicted mangrove surface elevations.
Main Results:
- The model accurately predicted upper (RMSE = 0.0676, R² = 0.8932) and lower (RMSE = 0.0899, R² = 0.7417) mangrove surface elevations.
- Mangrove establishment stressors were identified as the primary drivers of extent, with estuarine typology influencing threshold limits.
- Estuaries with limited tidal decay offered greater establishment opportunities, and mature Avicennia forests demonstrated resilience to hydrologic changes.
Conclusions:
- The proposed causal lifecycle model offers a more accurate method for estimating mangrove extent across various stages and locations.
- Understanding lifecycle-specific thresholds and establishment stressors is crucial for successful mangrove restoration and conservation.
- Mature Avicennia forests exhibit resilience, but predicting their response to escalating climatic and hydrologic pressures requires further investigation.
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