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Papers/Human Vision Based 3D Point Cloud Semantic Segmentation of...

Human Vision Based 3D Point Cloud Semantic Segmentation of Large-Scale Outdoor Scene

Sunghwan Yoo, Yeongjeong Jeong, Maryam Jameela, Gunho Sohn

2023-01-30PhilosophySemantic SegmentationPoint Cloud Segmentation3D Semantic Segmentation
PaperPDFCode(official)

Abstract

This paper proposes EyeNet, a novel semantic segmentation network for point clouds that addresses the critical yet often overlooked parameter of coverage area size. Inspired by human peripheral vision, EyeNet overcomes the limitations of conventional networks by introducing a simple but efficient multi-contour input and a parallel processing network with connection blocks between parallel streams. The proposed approach effectively addresses the challenges of dense point clouds, as demonstrated by our ablation studies and state-of-the-art performance on Large-Scale Outdoor datasets.

Results

TaskDatasetMetricValueModel
Semantic SegmentationToronto-3D L002mIoU81.13EyeNet
Semantic SegmentationToronto-3D L002oAcc94.63EyeNet
Semantic SegmentationDALESmIoU79.6EyeNet
Semantic SegmentationSensatUrbanmIoU62.3EyeNet
Semantic SegmentationSensatUrbanoAcc93.7EyeNet
3D Semantic SegmentationDALESmIoU79.6EyeNet
3D Semantic SegmentationSensatUrbanmIoU62.3EyeNet
3D Semantic SegmentationSensatUrbanoAcc93.7EyeNet
10-shot image generationToronto-3D L002mIoU81.13EyeNet
10-shot image generationToronto-3D L002oAcc94.63EyeNet
10-shot image generationDALESmIoU79.6EyeNet
10-shot image generationSensatUrbanmIoU62.3EyeNet
10-shot image generationSensatUrbanoAcc93.7EyeNet

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