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Terrain following - low level fixed altitude flying

dc.contributor.advisorCho, Namhoon
dc.contributor.advisorTsourdos, Antonios
dc.contributor.authorPadilla Moure, Pol
dc.contributor.industryTebay, Andrew
dc.date.accessioned2026-06-26T14:16:04Z
dc.date.available2026-06-26T14:16:04Z
dc.date.freetoread2026-06-26
dc.date.issued2025-08
dc.description.abstractThis thesis studies a terrain following capability for fixed-wing tier 1 UAS (<25 kg), designing a system to perform very low-level altitude flights adapting to the terrain contour and avoiding obstacles. It is the first work on terrain following combining uncertain digital elevation models (DEM) and real-time observations with risk-awareness. An innovative dual-stage system is proposed, using a cubic B-spline curve to generate an upper envelope combining DEM datasets and direct ground mapping measurements through onboard sensors, and a non-linear model predictive control (NMPC) to track the reference envelope with altitude range constraints. The system is designed for real-time implementation, employing moving window predictions, and an aggressiveness modulation to improve solver times while safely overcoming obstacles. The cubic B-spline DEM-Obstacle envelope is a geometric object that is found through solving a quadratic program with guaranteed convergence. The NMPC uses the full non-linear longitudinal dynamic model of the UAS to provide optimal vertical guidance and control to the non-linear underactuated platform, tracking the envelope. The performance is critically sensitive to the rangefinder angular uncertainty, forcing higher flight paths while maintaining minimal collision risk. Chance constraint formulation in the envelope allows improvements through moderate risk allowance, balancing a trade-off between risk and performance. Although the obstacle avoidance sensors are essential, the best performance is achieved using both a quality elevation dataset and sensor suite, employing LiDAR DEM and LiDAR rangefinders.
dc.description.coursenameMSc in Autonomous Vehicle Dynamics and Control
dc.identifier.urihttps://dspace.lib.cranfield.ac.uk/handle/1826/25381
dc.language.isoen
dc.publisherCranfield University
dc.publisher.departmentAIRS
dc.subjectavoidance
dc.subjectbasis spline (B-spline)
dc.subjectcontrol
dc.subjectdigital elevation model (DEM)
dc.subjectenvelope
dc.subjectground
dc.subjectguidance
dc.subjectnavigation
dc.subjectnon-linear model predictive control (NMPC)
dc.subjectnap-of-the-earth (NOE)
dc.subjectobstacle
dc.subjectpath planning
dc.subjectrisk
dc.subjectsensors
dc.subjectunmanned aerial system (UAS)
dc.titleTerrain following - low level fixed altitude flying
dc.typeThesis
dc.type.qualificationlevelMasters
dc.type.qualificationnameMSc

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