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Continuous Volumetric Convolution Network With Self-Learning Kernels for Point Clouds

delete2023-05-01
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PRE
AI
R
Ruifeng Zheng
黄
黄科杰 (Kejie Huang) *
H
Haibin Shen
L
Liyuan Ma
DOI:10.1109/TCE.2022.3218107delete
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Abstract

Abstract

En 中文
Although Convolutional Neural Networks (CNNs) have achieved large successes on image data, the attributes of point cloud data, such as its irregular format and sparse 3D distribution, prevent CNNs from being applied to point cloud data directly. Although considerable works, e.g., Pointnet-like methods, Transformer, and graph methods, have been adopted to process point clouds, these works can not consume spatial information directly like CNNs, leading to the loss of spatial information. Our Continuous Volumetric Convolution Network (CVCN), featuring a novel self-learning continuous convolution kernel, is proposed to address this problem. The continuous convolution kernel omits the manually defined kernel function and the manually set positions of kernel points, which brings convenience and flexibility. Moreover, CVCN hybridizes continuous convolutions with traditional CNNs to eliminate the time-consuming Farthest Point Sampling algorithm. Compared with the state-of-the-art works, competitive results have been achieved on point cloud classification and segmentation tasks.
Keywords:
Kernel
Convolution
Point cloud compression
Feature extraction
Transformers
Task analysis
Three-dimensional displays
Deep learning
point cloud
classification
segmentation

Journal

IEEE Transactions on Consumer Electronics cover
IEEE Transactions on Consumer Electronics
IF:
10.9
Papers:
5.3K
Citations:
6.8K

Organization

Z
zhejiang university
Scholars:
17.7W
Papers: 12.1W
Citations: 152
Cited Papers

Cited Papers

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