PS 26012SOFTWARERobotics and DronesHidden GemHeavy R&D

AI-Based Automated Urban Parcel Mapping and Cadastral Feature Extraction System using Drone lmagery

Ministry of Rural DevelopmentDept of land resources (DoLR)
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30-Second Plain English Summary

Manual parcel delineation and field ground-truthing in dense Indian urban settlements is exceptionally slow due to complex building footprints, narrow alleys, and irregular encroachments. Build an AI automated cadastral feature extraction platform that processes high-resolution drone orthophotos to segment building footprints, vectorize parcel property lines, and validate topological consistency.

5-Dimension Strategic ScorecardOverall Score: 4.1 / 5.0
Innovation
4.4 / 5
36h Feasibility
4.3 / 5
Uniqueness
3.6 / 5
Jury Appeal
4.1 / 5
Tech Depth
4.3 / 5
Recommended System Architecture Pipeline
Drone Orthomosaic GeoTIFF -> GDAL Tile Cutter -> YOLOv8-OBB / SAM Extraction Model -> PostGIS Vector Topology Engine -> WebGIS Cadastral Editor
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Official Government Problem Description
Background: Accurate and up-to-date urban land records are essential for effective land governance, urban planning, taxation, infrastructure development, and delivery of citizen-centric services. At present, preparation of cadastral maps and delineation of urban parcel boundaries is largely dependent on manual interpretation of drone imagery and field-based Ground Truthing (GT) activities. The process is time- consuming, resource intensive, and requires extensive human intervention for extraction of parcel boundaries, building footprints, road networks, and other cadastral features.Further, dense urban settlements, irregular parcel geometries, encroachments,overlapping structures, narrow access roads, and mixed land-use patterns create significant challenges in preparation of accurate parcel maps. Manual digitization and validation of parcel boundaries often lead to delays in completion of cadastral surveys and generation of urban land records.With availability of high-resolution orthorectified lmagery (ORl), Digital surface Models (DSM), Digital Terrain Models (DTM), and drone datasets, there exists significant potential for leveraging Artificial lntelligence (Al), computer Vision, and GeoAl technologies for automated extraction of cadastral features and preparation of preliminary urban Parcel maps. Description: The system should be capable of: . Automatic extraction of parcel boundaries . ldentification and delineation of building footprints . Detection of roads, pathways, and access corridors . Classification of land-use features in urban areas The proposed solution should utilize: . High-resolution Drone lmagery . Orthorectified lmagery (ORl) . DSM/DTM datasets . Existing GIS Parcel layers . Ground Truthing (GT) datasets . GNSS/CORS-enabled surveY data The platform should incorporate: 1. Al-based image segmentation models for parcel delineation. 2. Deep learning techniques for feature extraction and object detection. 3. Automated topology generation and parcel polygon creation. 4. Detection of overlapping or inconsistent parcel geometries. 5. Web-GlS visualization and editing interface. Expected Solution: The expected outcome is development of an Al-enabled automated cadastral mapping platform capable of significantly reducing manual efforts involved in urban parcel mapping and cadastral preparation. The final solution should: . Automatically generate preliminary urban parcel maps . lmprove speed and efficiency of cadastral surveys . Reduce manual digitization efforts . Enhance accuracy of parcel boundary extraction . Support Ground Truthing and field verification activities The solution should include: . Al/ML-based parcel extraction engine . GIS-ready cadastral outputs . Web-based visualization dashboard . Automated topology validation module
AI & PPT Citation Format

Smart India Hackathon 2026 Problem Statement PS-26012: "AI-Based Automated Urban Parcel Mapping and Cadastral Feature Extraction System using Drone lmagery", Ministry: Ministry of Rural Development. Strategy & Architecture via SIH ONE (https://sihone.pages.dev/ps/26012)

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