DreamSat: Towards a General 3D Model for Novel View Synthesis of Space Objects
Nidhi Mathihalli, Audrey Wei, Giovanni Lavezzi, Peng Mun Siew, Victor, Rodriguez-Fernandez, Hodei Urrutxua, and Richard Linares

TL;DR
DreamSat introduces a novel 3D reconstruction method for space objects that generalizes across scenes, improving accuracy and detail without retraining, leveraging diffusion models and 3D Gaussian splatting.
Contribution
The paper presents DreamSat, a new approach that fine-tunes a single-view reconstruction model for space objects, enabling generalization and improved reconstruction quality.
Findings
Enhanced reconstruction metrics (CLIP, PSNR, SSIM, LPIPS) on unseen spacecraft images.
Addresses the lack of domain-specific 3D tools in space industry.
Maintains efficiency while improving accuracy with diffusion models and Gaussian splatting.
Abstract
Novel view synthesis (NVS) enables to generate new images of a scene or convert a set of 2D images into a comprehensive 3D model. In the context of Space Domain Awareness, since space is becoming increasingly congested, NVS can accurately map space objects and debris, improving the safety and efficiency of space operations. Similarly, in Rendezvous and Proximity Operations missions, 3D models can provide details about a target object's shape, size, and orientation, allowing for better planning and prediction of the target's behavior. In this work, we explore the generalization abilities of these reconstruction techniques, aiming to avoid the necessity of retraining for each new scene, by presenting a novel approach to 3D spacecraft reconstruction from single-view images, DreamSat, by fine-tuning the Zero123 XL, a state-of-the-art single-view reconstruction model, on a high-quality…
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Taxonomy
TopicsSpace Satellite Systems and Control · Space Exploration and Technology · Spacecraft Design and Technology
MethodsSparse Evolutionary Training · Diffusion
