Generalized Gaussian Entropy Model for Point Cloud Attribute Compression with Dynamic Likelihood Intervals
Changhao Peng
摘要
Gaussian and Laplacian entropy models are proved effective in learned point cloud attribute compression, as they assist in arithmetic coding of latents. However, we demonstrate through experiments that there is still unutilized information in entropy parameters estimated by neural networks in current methods, which can be used for more accurate probability estimation. Thus we introduce generalized Gaussian entropy model, which controls the tail shape through shape parameter to more accurately estimate the probability of latents. Meanwhile, to the best of our knowledge, existing methods use fixed likelihood intervals for each integer during arithmetic coding, which limits model performance. We propose Mean Error Discriminator (MED) to determine whether the entropy parameter estimation is accurate and then dynamically adjust likelihood intervals. Experiments show that our method significantly improves rate-distortion (RD) performance on three VAEbased models for point cloud attribute compression, and our method can be applied to other compression tasks, such as image and video compression.
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它引用的顶会 Paper7
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- MLIC: Multi-Reference Entropy Model for Learned Image CompressionWei Jiang, Jiayu Yang, Yongqi Zhai, Peirong Ning 等ACM MM 2023 · 被引用 117 次
- Laplacian Matrix Learning for Point Cloud Attribute Compression with Ternary Search-Based Adaptive Block PartitionChanghao Peng, Wei GaoACM MM 2024 · 被引用 27 次
- Checkerboard Context Model for Efficient Learned Image CompressionDailan He, Yaoyan Zheng, Baocheng Sun, Yan Wang 等CVPR 2021
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