JOURNAL ARTICLE

Multi-scale Network with Attentional Multi-resolution Fusion for Point Cloud Semantic Segmentation

Yuyan LiYe Duan

Year: 2022 Journal:   2022 26th International Conference on Pattern Recognition (ICPR) Pages: 3980-3986

Abstract

In this paper, we present a comprehensive point cloud semantic segmentation network that aggregates both local and global multi-scale information. First, we propose an Angle Correlation Point Convolution (ACPConv) module to effectively learn the local shapes of points. Second, based upon ACPConv, we introduce a local multi-scale split (MSS) block that hierarchically connects features within one single block and gradually enlarges the receptive field which is beneficial for exploiting local context. Third, inspired by HRNet that has excellent performance on 2D image vision tasks, we build an HRNet customized for point cloud to learn global multi-scale context. Lastly, we introduce a point-wise attention fusion approach that fuses multi-resolution predictions and further improves point cloud semantic segmentation performance. Our experimental results and ablations on several benchmark datasets show that our proposed method is effective and able to achieve state-of-the-art performances compared to existing methods.

Keywords:
Point cloud Computer science Segmentation Block (permutation group theory) Artificial intelligence Convolution (computer science) Context (archaeology) Scale (ratio) Benchmark (surveying) Point (geometry) Computer vision Pattern recognition (psychology) Artificial neural network Mathematics

Metrics

5
Cited By
1.15
FWCI (Field Weighted Citation Impact)
49
Refs
0.86
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

3D Shape Modeling and Analysis
Physical Sciences →  Engineering →  Computational Mechanics
3D Surveying and Cultural Heritage
Physical Sciences →  Earth and Planetary Sciences →  Geology
Remote Sensing and LiDAR Applications
Physical Sciences →  Environmental Science →  Environmental Engineering
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