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Papers/Point Transformer

Point Transformer

Nico Engel, Vasileios Belagiannis, Klaus Dietmayer

2020-11-02Semantic Segmentation3D Object Classification3D Part Segmentation3D Point Cloud Classification
PaperPDFCodeCode(official)

Abstract

In this work, we present Point Transformer, a deep neural network that operates directly on unordered and unstructured point sets. We design Point Transformer to extract local and global features and relate both representations by introducing the local-global attention mechanism, which aims to capture spatial point relations and shape information. For that purpose, we propose SortNet, as part of the Point Transformer, which induces input permutation invariance by selecting points based on a learned score. The output of Point Transformer is a sorted and permutation invariant feature list that can directly be incorporated into common computer vision applications. We evaluate our approach on standard classification and part segmentation benchmarks to demonstrate competitive results compared to the prior work. Code is publicly available at: https://github.com/engelnico/point-transformer

Results

TaskDatasetMetricValueModel
Semantic SegmentationShapeNet-PartInstance Average IoU85.9Point Transformer
Shape Representation Of 3D Point CloudsModelNet40Overall Accuracy92.8Point Transformer
3D Point Cloud ClassificationModelNet40Overall Accuracy92.8Point Transformer
10-shot image generationShapeNet-PartInstance Average IoU85.9Point Transformer
3D Point Cloud ReconstructionModelNet40Overall Accuracy92.8Point Transformer

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