SOTAVerified

3D Reconstruction

3D Reconstruction is the task of creating a 3D model or representation of an object or scene from 2D images or other data sources. The goal of 3D reconstruction is to create a virtual representation of an object or scene that can be used for a variety of purposes, such as visualization, animation, simulation, and analysis. It can be used in fields such as computer vision, robotics, and virtual reality.

Image: Gwak et al

Papers

Showing 15261550 of 2326 papers

TitleStatusHype
Disentangling 3D Attributes from a Single 2D Image: Human Pose, Shape and Garment0
Learning Object Manipulation Skills from Video via Approximate Differentiable PhysicsCode0
Neural Correspondence Field for Object Pose Estimation0
Few-shot Single-view 3D Reconstruction with Memory Prior Contrastive Network0
The One Where They Reconstructed 3D Humans and Environments in TV Shows0
Towards the Probabilistic Fusion of Learned Priors into Standard Pipelines for 3D Reconstruction0
DeepFusion: Real-Time Dense 3D Reconstruction for Monocular SLAM using Single-View Depth and Gradient Predictions0
NeurAR: Neural Uncertainty for Autonomous 3D Reconstruction with Implicit Neural Representations0
Dense RGB-D-Inertial SLAM with Map Deformations0
R2P: A Deep Learning Model from mmWave Radar to Point Cloud0
Neural Pixel Composition: 3D-4D View Synthesis from Multi-Views0
2D GANs Meet Unsupervised Single-view 3D Reconstruction0
Structural Causal 3D Reconstruction0
VoloGAN: Adversarial Domain Adaptation for Synthetic Depth DataCode0
Revisiting PatchMatch Multi-View Stereo for Urban 3D Reconstruction0
Efficient View Clustering and Selection for City-Scale 3D Reconstruction0
Edge-preserving Near-light Photometric Stereo with Neural Surfaces0
Learning-based Monocular 3D Reconstruction of Birds: A Contemporary Survey0
Few 'Zero Level Set'-Shot Learning of Shape Signed Distance Functions in Feature SpaceCode0
Vision Transformers: State of the Art and Research Challenges0
What Makes for Automatic Reconstruction of Pulmonary SegmentsCode0
Probabilistic PolarGMM: Unsupervised Cluster Learning of Very Noisy Projection Images of Unknown Pose0
Efficient and Robust Training of Dense Object Nets for Multi-Object Robot Manipulation0
EventNeRF: Neural Radiance Fields from a Single Colour Event Camera0
Attention-driven Next-best-view Planning for Efficient Reconstruction of Plants and Targeted Plant Parts0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
13D-R2N2Overall0.63Unverified
2GipumaOverall0.58Unverified
3COLMAPOverall0.53Unverified
4MVSNetOverall0.46Unverified
5Vis-MVSNetOverall0.37Unverified
6AA-RMVSNetOverall0.36Unverified
7Cas-MVSNetOverall0.36Unverified
8EPP-MVSNetOverall0.36Unverified
9PatchmatchNetOverall0.35Unverified
10CVP-MVSNetOverall0.35Unverified
#ModelMetricClaimedVerifiedStatus
1MD-GONIoU92.8Unverified
2POCOIoU92.6Unverified
3FS-SDFIoU91.2Unverified
4DP-ConvONetIoU89.5Unverified
5ConvONetIoU88.4Unverified
6ONetIoU76.1Unverified
7EVolTIoU73.8Unverified
8ZubicLioIoU65.43Unverified
#ModelMetricClaimedVerifiedStatus
1AttSets3DIoU0.64Unverified
2PSGN3DIoU0.64Unverified
3OGN3DIoU0.6Unverified
43D-R2N23DIoU0.56Unverified
#ModelMetricClaimedVerifiedStatus
1Scan2CADAverage Accuracy31.68Unverified
23DMatchAverage Accuracy10.29Unverified
#ModelMetricClaimedVerifiedStatus
1SVCPChamfer10Unverified
#ModelMetricClaimedVerifiedStatus
1EVLAccuracy18.2Unverified
#ModelMetricClaimedVerifiedStatus
1EVLAccuracy5.7Unverified
#ModelMetricClaimedVerifiedStatus
1Atlas (finetuned)3DIoU89.4Unverified