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作者 | Shiyi Guo ; Yujie Fu ; Zhengda Qian ; Zheng Rong ; Yihong Wu
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出版日期 | 2022
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会议日期 | July 18-22,2022
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会议地点 | TaiPei Taiwan
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英文摘要 | In recent years, the feature-based point cloud registration
methods have attracted more attention. However, most existing
methods focus on extracting features with strong antiinterference
ability from a single point cloud while neglecting
the differences within point cloud pairs. In this paper, unlike
these methods treating each point cloud independently, we
instead consider the information between point cloud pairs
when extracting features. Specifically, we propose a crossattention-
based network for modeling the correlation between
a pair of point clouds, where a 3D cross-attention mechanism
is proposed and combined with 3D convolution elegantly for
feature extraction. The extracted features achieve better robustness
under various conditions, such as rotation and translation
changes. Then accurate point cloud registration is
achieved by matching these features. Experimental results
on 3DMatch dataset show that the proposed method achieves
state-of-the-art performance on feature matching and point
cloud registration tasks compared with the previous featurebased
methods. |
源URL | [http://ir.ia.ac.cn/handle/173211/47454]  |
专题 | 自动化研究所_模式识别国家重点实验室_机器人视觉团队
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通讯作者 | Shiyi Guo; Yihong Wu |
作者单位 | National Laboratory of Pattern Recognition, Institute of Automation, Chinese Academy of Sciences, China
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推荐引用方式 GB/T 7714 |
Shiyi Guo,Yujie Fu,Zhengda Qian,et al. Cross-attention-based Feature Extraction Network for 3D Point Cloud Registration[C]. 见:. TaiPei Taiwan. July 18-22,2022.
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