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Less-parametric point cloud upsampling network
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作者 Aihua Ling Hongfang Liu +1 位作者 Junwen Wang Ruyu Liu 《Optoelectronics Letters》 2026年第1期53-57,共5页
In the field of aircraft design and maintenance,with the innovation of cabin cable three-dimensional(3D)scanning and sensor technology,high-precision cabin point cloud data has become the key to improving the accuracy... In the field of aircraft design and maintenance,with the innovation of cabin cable three-dimensional(3D)scanning and sensor technology,high-precision cabin point cloud data has become the key to improving the accuracy of cabin navigation and building a realistic virtual reality environment.In the face of largescale point cloud data,how to efficiently and uniformly construct a realistic virtual reality environment has become a challenge.In this paper,we propose a new low-parametric point cloud upsampling network(LPNet),which is based on the no-learn model to learn the complementary geometric knowledge between point clouds based on some simple data transformations,to efficiently retain the geometric properties of point clouds,and then input the results into the up-sampling module,and simply insert a few layers of multilayer perceptron(MLP)to efficiently generate high-resolution point clouds.It is able to efficiently generate high-resolution point clouds,showing great flexibility and realizing the efficient use of computational resources. 展开更多
关键词 aircraft design maintenancewith sensor technologyhigh precision building realistic virtual reality environmentin virtual reality environment point cloud upsampling aircraft design maintenance D scanning low parametric network
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