An object-based custom ensemble framework for automated water body extraction using Sentinel-2 imagery.
Y V Sai Bhageerath1, Svsp Sharma2, Shashivardhan Reddy P2
1National Remote Sensing Center (NRSC), Indian Space Research Organization (ISRO), Hyderabad, India. saibhageerath1.nitw@gmail.com.
Environmental Monitoring and Assessment
|July 10, 2026
Summary
This study introduces an object-based framework using DBSCAN clustering and XGBoost for accurate surface water monitoring in India. The new method significantly improves water extraction accuracy compared to traditional approaches.
Area of Science:
- Remote Sensing
- Geospatial Analysis
- Environmental Monitoring
Background:
- Pixel-based classification methods for surface water monitoring in India face limitations due to complex landscapes.
- Existing methods often struggle with accuracy and generalization across diverse geographical regions.
Purpose of the Study:
- To develop and validate an automated object-based framework for enhanced surface water extraction using Sentinel-2 imagery.
- To improve the accuracy and regional generalizability of water monitoring in India.
Main Methods:
- Integration of DBSCAN clustering with supervised machine learning classification (XGBoost) for object-based image analysis.
- Training and validation on a multi-site dataset covering 20 diverse geographical locations across India.
- Benchmarking against traditional NDWI thresholding and pixel-based XGBoost classification.
Main Results:
- The proposed DBSCAN-XGBoost framework achieved a superior overall accuracy of 97% and an F1-score of 0.96.
- XGBoost outperformed other machine learning models (Random Forest, SVM) in complex spectral zones.
- The object-oriented approach significantly reduced "salt-and-pepper" noise and topographic shadow errors.
Conclusions:
- The object-based DBSCAN-XGBoost framework offers a significant advancement for automated surface water extraction in India.
- This approach demonstrates improved accuracy and robustness compared to traditional methods.
- Further multi-site validation could enable high-fidelity water auditing across diverse Indian landscapes.
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