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Home Science News Athmospheric

Global mangrove cover rises despite losses in key regions, data shows

August 20, 2026
in Athmospheric
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Global mangrove cover rises despite losses in key regions, data shows

Global mangrove cover rises despite losses in key regions, data shows

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Mangrove forests, the salt-tolerant coastal ecosystems often described as natural climate shields, have expanded globally over the past four decades despite severe losses in several countries, according to the latest analysis from the Global Mangrove Watch. Researchers report a net worldwide increase of 47,720 hectares between 1985 and 2025, a finding that offers a rare note of optimism in the wider story of habitat destruction. Yet the headline figure conceals a far more complicated reality: while mangroves have recovered or expanded in some locations, large areas have disappeared in regions where deforestation, aquaculture, coastal development, pollution and changing environmental conditions continue to place intense pressure on these forests.

The new assessment is based on detailed maps created through an international collaboration involving scientists at Aberystwyth University and other Global Mangrove Watch partners. By combining satellite imagery with advanced computational analysis, researchers tracked where mangroves were lost, where they re-established themselves and where they remained stable. The resulting dataset provides a four-decade view of coastal change at a level of detail that would have been impossible using field surveys alone. Satellite monitoring is particularly important for mangrove ecosystems because they are distributed across thousands of kilometres of often inaccessible coastlines, tidal wetlands and river deltas.

Mangroves are not ordinary forests. They grow in environments where seawater, freshwater and sediment constantly interact, and their survival depends on complex adaptations to salinity, waterlogging and fluctuating tides. Specialized root systems allow the trees to exchange gases in oxygen-poor soils, while some species remove excess salt through their leaves or roots. These tangled networks of trunks and aerial roots slow the movement of water, trap sediment and create sheltered nurseries for fish, crustaceans and other marine organisms. In many tropical and subtropical regions, mangrove habitats support food supplies, fisheries and local economies while also forming a physical barrier against waves, storm surges and coastal erosion.

Their importance extends deep below the surface. Mangrove soils can accumulate layers of organic matter over centuries, storing substantial quantities of carbon in waterlogged conditions that slow decomposition. This carbon, often called “blue carbon” when it is held in coastal and marine ecosystems, can remain locked away for long periods if the forest and its soils are left undisturbed. When mangroves are cleared or drained, however, the stored organic material can be exposed to oxygen and begin releasing carbon dioxide and other greenhouse gases. Protecting existing forests can therefore prevent emissions, while restoring degraded areas may help rebuild ecological functions, although the speed and success of recovery depend heavily on local hydrology, sediment supply and species composition.

The global increase identified by the new mapping does not mean that mangrove conservation has become a success story everywhere. Indonesia, which contains the largest total area of mangroves in the world, has lost approximately 2,044 square kilometres since 1985. Myanmar, Malaysia and Nigeria have also experienced substantial declines. These losses are especially significant because large, continuous mangrove forests provide benefits that fragmented patches may not be able to maintain. Removing vegetation can alter tidal flows, increase shoreline instability and reduce the ability of wetlands to absorb storm energy. It can also damage breeding grounds for commercially important species and weaken the ecological connections between rivers, estuaries, coastal waters and offshore habitats.

The causes of mangrove decline vary from one coastline to another. Conversion for shrimp and fish ponds has been a major driver in some countries, while urban expansion, ports, roads, agriculture and industrial development have transformed other coastal zones. Dams and river engineering can reduce the flow of freshwater and sediment needed to sustain mangrove soils. Pollution may further stress trees and aquatic organisms, and rising seas create an additional challenge where wetlands cannot migrate inland because buildings, embankments or farmland block their path. Climate change is therefore not a single isolated pressure but a force that can intensify existing problems by increasing sea-level rise, altering rainfall patterns and making extreme storms more destructive.

At the same time, the maps reveal that mangrove gains can result from more than one process. Some areas may reflect deliberate restoration programmes in which communities or governments replant trees and attempt to recover damaged wetlands. Other increases may occur naturally when sediment accumulates in suitable coastal settings and mangrove propagules, or floating seedlings, colonize newly available ground. Distinguishing between these pathways is scientifically important. A planted forest may appear green from space while still lacking the complex structure, species diversity and soil development of an older natural mangrove. Conversely, natural expansion can demonstrate that the landscape still has the hydrological conditions required for long-term recovery.

The latest Global Mangrove Watch update, known as GMW v4.1, uses improved satellite data and machine-learning methods to refine this distinction between loss, recovery and stability. Machine-learning systems are trained to recognize patterns in imagery associated with mangrove vegetation, water, bare sediment and other land-cover types. By comparing images collected at different times, researchers can identify changes in canopy distribution and shoreline vegetation across multiple decades. The analysis must account for cloud cover, tidal conditions, seasonal variation, differences among satellite sensors and the fact that young or sparse mangroves can be difficult to separate from other coastal plants. Improved algorithms and higher-quality imagery can reduce these uncertainties, producing more reliable information for conservation planning.

Dr Pete Bunting, a reader in remote sensing in the Department of Geography and Earth Sciences at Aberystwyth University, said the update provides a clearer picture of how mangrove ecosystems are changing worldwide. He described the overall increase as encouraging but emphasized that progress remains uneven, with some regions continuing to experience significant losses. According to Bunting, the findings also demonstrate the complexity of mangrove change, because gains may be connected both to organized restoration and to natural processes. Reliable measurements are essential for determining which interventions work, where protection is most urgent and whether apparent recovery represents a durable ecological transformation rather than a temporary change in vegetation cover.

The researchers say the new mapping resource can help governments, conservation groups and scientists target their efforts more effectively. Instead of treating all mangrove coastlines as equally threatened, decision-makers can identify locations where forests are rapidly disappearing, areas with strong natural recovery potential and sites that remain stable but require protection. The information may also support studies of biodiversity, coastal risk, carbon storage and the relationship between mangroves and nearby communities. The central message is both hopeful and cautionary: the world has not lost every battle for its mangrove forests, but a net global gain can coexist with devastating regional collapse. Whether the positive trend continues will depend on protecting intact ecosystems, restoring wetlands according to their natural water flows and ensuring that coastal development does not eliminate the space mangroves need to survive.

Subject of Research: Global mangrove cover, ecosystem change, conservation, restoration and satellite-based environmental monitoring

Web References: Global Mangrove Watch

Image Credits: Pete Bunting, Aberystwyth University

Keywords: Mangroves, climate change, conservation ecology, ecological restoration, ecosystem management, biodiversity, remote sensing, satellite mapping, machine learning, coastal ecosystems, blue carbon, Indonesia, Global Mangrove Watch

Tags: advanced computational analysis in habitat trackingcoastal development and habitat losscoastal ecosystem climate resilienceenvironmental change and mangrove healthfour-decade global mangrove change dataimpact of aquaculture on mangrovesinternational collaboration in mangrove researchmangrove deforestation and reforestationMangrove forest global coverageregional variations in mangrove ecosystem stabilitysatellite imagery mangrove monitoringsignificance of satellite technology for mangrove conservation
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