Generative Models for 3D Point Clouds
2023-02-26Code Available0· sign in to hype
Lingjie Kong, Pankaj Rajak, Siamak Shakeri
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Abstract
Point clouds are rich geometric data structures, where their three dimensional structure offers an excellent domain for understanding the representation learning and generative modeling in 3D space. In this work, we aim to improve the performance of point cloud latent-space generative models by experimenting with transformer encoders, latent-space flow models, and autoregressive decoders. We analyze and compare both generation and reconstruction performance of these models on various object types.