SU-Net: Pose estimation network for non-cooperative spacecraft on-orbit
Hu Gao, Zhihui Li, Depeng Dang, Ning Wang, Jingfan Yang

TL;DR
This paper introduces SU-Net, a deep learning model combining DR-U-Net and transfer learning for accurate, end-to-end pose estimation of non-cooperative spacecraft in challenging space image conditions.
Contribution
The paper proposes a novel neural network architecture, SU-Net, with residual and dense connections for improved spacecraft pose estimation in space images.
Findings
Outperforms state-of-the-art pose estimation methods
Achieves low absolute error of 0.1557 to 0.4491
Demonstrates robustness without hand-crafted features
Abstract
Spacecraft pose estimation plays a vital role in many on-orbit space missions, such as rendezvous and docking, debris removal, and on-orbit maintenance. At present, space images contain widely varying lighting conditions, high contrast and low resolution, pose estimation of space objects is more challenging than that of objects on earth. In this paper, we analyzing the radar image characteristics of spacecraft on-orbit, then propose a new deep learning neural Network structure named Dense Residual U-shaped Network (DR-U-Net) to extract image features. We further introduce a novel neural network based on DR-U-Net, namely Spacecraft U-shaped Network (SU-Net) to achieve end-to-end pose estimation for non-cooperative spacecraft. Specifically, the SU-Net first preprocess the image of non-cooperative spacecraft, then transfer learning was used for pre-training. Subsequently, in order to solve…
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Taxonomy
TopicsSpace Satellite Systems and Control · Astro and Planetary Science · Planetary Science and Exploration
MethodsConvolution · Concatenated Skip Connection · *Communicated@Fast*How Do I Communicate to Expedia? · Max Pooling · U-Net · Residual Connection
