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SOTA
3D-Semantische Segmentierung
3D Semantic Segmentation On Scannet200
3D Semantic Segmentation On Scannet200
Metriken
test mIoU
val mIoU
Ergebnisse
Leistungsergebnisse verschiedener Modelle zu diesem Benchmark
Columns
Modellname
test mIoU
val mIoU
Paper Title
Repository
DITR
44.9
41.2
DINO in the Room: Leveraging 2D Foundation Models for 3D Segmentation
-
PPT+SparseUNet
33.2
31.9
Towards Large-scale 3D Representation Learning with Multi-dataset Point Prompt Training
-
Pamba
37.1
36.3
Pamba: Enhancing Global Interaction in Point Clouds via State Space Model
-
OctFormer
32.5
32.6
OctFormer: Octree-based Transformers for 3D Point Clouds
-
PonderV2 + SparseUNet
34.6
32.3
PonderV2: Pave the Way for 3D Foundation Model with A Universal Pre-training Paradigm
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OneFormer3D
-
30.1
OneFormer3D: One Transformer for Unified Point Cloud Segmentation
-
OA-CNNs
32.3
33.3
OA-CNNs: Omni-Adaptive Sparse CNNs for 3D Semantic Segmentation
-
LSK3DNet
-
33.1
LSK3DNet: Towards Effective and Efficient 3D Perception with Large Sparse Kernels
-
CSC
24.9
26.4
Exploring Data-Efficient 3D Scene Understanding with Contrastive Scene Contexts
-
MinkUNet
25.3
25.0
4D Spatio-Temporal ConvNets: Minkowski Convolutional Neural Networks
-
ODIN
36.8
40.5
ODIN: A Single Model for 2D and 3D Segmentation
-
Sonata + PTv3
-
36.8
Sonata: Self-Supervised Learning of Reliable Point Representations
BFANet
36.0
37.3
BFANet: Revisiting 3D Semantic Segmentation with Boundary Feature Analysis
-
PTv3 + PPT
39.3
36.0
Point Transformer V3: Simpler, Faster, Stronger
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LGround
27.2
28.8
Language-Grounded Indoor 3D Semantic Segmentation in the Wild
-
PTv3 ArKitLabelmaker
41.4
40.3
ARKit LabelMaker: A New Scale for Indoor 3D Scene Understanding
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3D Semantic Segmentation On Scannet200 | SOTA | HyperAI