Google Earth Engine

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From pixels to planning: Earth AI for nature restoration

Google Research developed a high-resolution AI system that converts satellite imagery into vector data identifying small ecological features such as hedgerows, stone walls, and copses. These features can store carbon and support biodiversity without taking agricultural land out of production, but they are often missed by conventional forest inventories. The resulting open dataset aims to make fine-scale nature restoration measurable and actionable across the UK. ## The case for fine-scale restoration - Forests support carbon sequestration, water filtration, and biodiversity, but expanding forests can compete with food production. - Conservation efforts can also create “leakage,” shifting environmental damage elsewhere. - Hedgerows, shelterbelts, and other woody features offer ecological benefits while remaining integrated into farmland. - Google’s earlier **Farmscapes 2020** raster map detected these features across England, but pixel data was insufficient for planning, restoration, and carbon accounting. ## Challenges in mapping the countryside - Agricultural features often overlap spatially, such as hedgerows growing alongside or over stone walls. - Processing data in S2-cell tiles can split features at tile boundaries. - A generic “woody” classification does not reveal whether a feature is a forest, wildlife corridor, or isolated copse. - England’s more than 130,000 km² of high-resolution imagery created major computational demands for conventional raster-to-vector processing. ## Deep learning and vectorization - The team fine-tuned Remote Sensing Foundations’ Vision Transformer, pretrained on more than 300 million global satellite images. - Only about 247 km² of annotated British landscape data was available, so the pretrained model helped transfer broad visual knowledge to local conditions. - A dual-layer labeling system combined submeter imagery with 1-meter LiDAR to distinguish: - Ground-level boundaries such as fields and water - Above-ground features such as trees and walls - Geometry-merging algorithms reconnected features split across S2-cell borders. ## Classifying ecological features - The system used the **Polsby–Popper compactness score** to classify detected shapes by geometry. - Woodlands were defined as contiguous canopies at least 30 meters in diameter. - Woody patches included small copses and individual trees. - Linear woody features, including hedgerows and corridors, were identified using a compactness score below 0.5. - This classification turns raw detections into an inventory tied more closely to ecological function. ## Scaling the analysis - Google Earth Engine processed thousands of S2 cells in parallel. - This made it possible to generate vector geometries for millions of features across England without overwhelming traditional systems. - The resulting dataset is intended for landowners, conservationists, scientists, and policymakers. ## Future applications - The researchers plan to apply the method to silvopasture and agrisilviculture. - High-precision monitoring could help detect conservation “leakage” beyond project boundaries. - Open access to the data could support restoration while protecting agricultural productivity and food security. The dataset provides a practical foundation for planning and measuring nature recovery on working lands, demonstrating how AI can translate overlooked landscape details into conservation decisions.

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Separating natural forests from other tree cover with AI for deforestation-free supply chains (opens in new tab)

Researchers from Google DeepMind and Google Research have developed "Natural Forests of the World 2020," an AI-powered global map that distinguishes natural ecosystems from commercial tree plantations. By utilizing high-resolution satellite data and machine learning, the project provides a critical 10-meter resolution baseline to support deforestation-free supply chain regulations like the EUDR. This tool enables governments and companies to monitor biodiversity-rich areas with unprecedented accuracy, ensuring that natural forests are protected from industrial degradation. **The Limitation of Traditional Tree Cover Maps** * Existing maps frequently conflate all woody vegetation into a generic "tree cover" category, leading to "apples-to-oranges" comparisons between different land types. * This lack of distinction makes it difficult to differentiate between the harvesting of short-term plantations and the permanent loss of ancient, biodiversity-rich natural forests. * Precise mapping is now a legal necessity due to regulations like the European Union Regulation on Deforestation-free Products (EUDR), which bans products from land deforested or degraded after December 31, 2020. **The MTSViT Modeling Approach** * To accurately identify forest types, researchers developed the Multi-modal Temporal-Spatial Vision Transformer (MTSViT). * Rather than relying on a single snapshot, the AI "observes" 1280 x 1280 meter patches over the course of a year to identify seasonal, spectral, and textural signatures. * The model integrates multi-modal data, including Sentinel-2 satellite imagery, topographical information (such as elevation and slope), and specific geographical coordinates. * This temporal-spatial analysis allows the AI to recognize the complex patterns of natural forests that distinguish them from the uniform, fast-growing structures of commercial plantations. **Dataset Scale and Global Validation** * The model was trained on a massive dataset comprising over 1.2 million global patches at 10-meter resolution. * The final map provides seamless global coverage, achieving a best-in-class validation accuracy of 92.2% against an independent global dataset. * The research was a collaborative effort involving the World Resources Institute and the International Institute for Applied Systems Analysis to ensure scientific rigor and practical utility. The "Natural Forests of the World 2020" dataset is publicly available via Google Earth Engine and other open repositories. Organizations should leverage this high-resolution baseline to conduct environmental due diligence, support government monitoring, and target conservation efforts in preparation for global climate milestones like COP30.