Point Cloud Acceleration by Exploiting Geometric Similarity
Cen Chen, Xiaofeng Zou, Hongen Shao, Yangfan Li, Kenli Li
2023Year
19Citations
3Top-tier citations
Abstract
Deep learning on point clouds has attracted increasing attention for various emerging 3D computer vision applications, such as autonomous driving, robotics, and virtual reality. These applications interact with people in real-time on edge devices and thus require low latency and low energy. To accelerate the execution of deep neural networks (DNNs) on point clouds, some customized accelerators have been proposed, which achieved a significantly higher performance with reduced energy consumption than GPUs and existing DNN accelerators.
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Cited by top-tier papers3
- Ditto: Accelerating Diffusion Model via Temporal Value SimilaritySungbin Kim, Hyunwuk Lee, Wonho Cho, Mincheol Park et al.HPCA 2025 · 9 citations
- L-PCN: A Point Cloud Accelerator Exploiting Spatial Locality through Octree-Based IslandizationYiming Gao, Jieming Yin, Yuxiang Wang, Xiangru Chen et al.ISCA 2026 · 1 citation
- IDEA-GP: Instruction-Driven Architecture with Efficient Online Workload Allocation for Geometric PerceptionSuquan Zhang, Yu Hu, Yunfei Xiang, Dawei Zhao et al.ISCA 2025
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