Point cloud feature extraction method based on spatial attention mechanism
A feature extraction and attention technology, applied in the field of point cloud processing, can solve the problem of inability to extract semantic features of point clouds, and achieve the effect of accurate segmentation and classification results
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[0021] The present invention will be described in further detail below in conjunction with the accompanying drawings.
[0022] figure 1 Represents the flow chart of the point cloud feature extraction method based on the spatial attention mechanism. The steps shown in the figure are:
[0023] a. Point cloud preprocessing: Use the farthest point sampling algorithm to down-sample the point cloud; while selecting the most representative point cloud, it reduces a lot of calculations. This algorithm has been proven to retain point cloud information to the greatest extent while reducing the number of point clouds.
[0024] b. Point cloud data set expansion: In the training phase, we increase the capacity of the data set by adding Gaussian distribution perturbation and randomly rotating the point cloud collection. This method can effectively prevent overfitting.
[0025] c. Point cloud feature acquisition: We separate the spatial coordinates of the point cloud from other input infor...
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