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Neural Elevation Models for Terrain Mapping and Path Planning
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This work introduces Neural Elevations Models (NEMos), which adapt Neural Radiance Fields to a 2.5D continuous and differentiable terrain model. In contrast to traditional terrain representations such as digital elevation models, NEMos can be readily generated from imagery, a low-cost data source, and provide a lightweight representation of terrain through an implicit continuous and differentiable height field. We propose a novel method for jointly training a height field and radiance field within a NeRF framework, leveraging quantile regression. Additionally, we introduce a path planning algorithm that performs gradient-based optimization of a continuous cost function for minimizing distance, slope changes, and control effort, enabled by differentiability of the height field. We perform experiments on simulated and real-world terrain imagery, demonstrating NEMos ability to generate high-quality reconstructions and produce smoother paths compared to discrete path planning methods. Future work will explore the incorporation of features and semantics into the height field, creating a generalized terrain model.
Forward citations
Cited by 2 Pith papers
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Uncertainty-aware Accurate Elevation Modeling for Off-road Navigation via Neural Processes
A semantic-conditioned neural process with local ball-query attention estimates off-road terrain elevation and uncertainty more accurately than prior baselines.
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Construction of Digital Terrain Maps from Multi-view Satellite Imagery using Neural Volume Rendering
Neural terrain maps reconstruct digital elevation models from multi-view satellite imagery alone, reaching near image-resolution accuracy.
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