SOTAVerified

Depth Estimation

Depth Estimation is the task of measuring the distance of each pixel relative to the camera. Depth is extracted from either monocular (single) or stereo (multiple views of a scene) images. Traditional methods use multi-view geometry to find the relationship between the images. Newer methods can directly estimate depth by minimizing the regression loss, or by learning to generate a novel view from a sequence. The most popular benchmarks are KITTI and NYUv2. Models are typically evaluated according to a RMS metric.

Source: DIODE: A Dense Indoor and Outdoor DEpth Dataset

Papers

Showing 16011625 of 2454 papers

TitleStatusHype
Composite Learning for Robust and Effective Dense Predictions0
Computing Egomotion with Local Loop Closures for Egocentric Videos0
Confidence-Aware RGB-D Face Recognition via Virtual Depth Synthesis0
Confidence Guided Stereo 3D Object Detection with Split Depth Estimation0
Configurable Holography: Towards Display and Scene Adaptation0
Connecting the Dots: Learning Representations for Active Monocular Depth Estimation0
Consistent Depth of Moving Objects in Video0
Consistent Depth Prediction for Transparent Object Reconstruction from RGB-D Camera0
Consistent Depth Prediction under Various Illuminations using Dilated Cross Attention0
Content-Aware Inter-Scale Cost Aggregation for Stereo Matching0
Continuous Online Extrinsic Calibration of Fisheye Camera and LiDAR0
ContrastAlign: Toward Robust BEV Feature Alignment via Contrastive Learning for Multi-Modal 3D Object Detection0
Contrastive Mutual Information Maximization for Binary Neural Networks0
Contrastive Unsupervised Learning of World Model with Invariant Causal Features0
ConvNets vs. Transformers: Whose Visual Representations are More Transferable?0
Convolutional neural network-based regression for depth prediction in digital holography0
CORE: Co-planarity Regularized Monocular Geometry Estimation with Weak Supervision0
Co-training for Deep Object Detection: Comparing Single-modal and Multi-modal Approaches0
Coupled Depth Learning0
CReaM: Condensed Real-time Models for Depth Prediction using Convolutional Neural Networks0
CRF360D: Monocular 360 Depth Estimation via Spherical Fully-Connected CRFs0
CroMo: Cross-Modal Learning for Monocular Depth Estimation0
Cross-Dimensional Refined Learning for Real-Time 3D Visual Perception from Monocular Video0
CrossFusion: Interleaving Cross-modal Complementation for Noise-resistant 3D Object Detection0
Cross-spectral Gated-RGB Stereo Depth Estimation0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1OmniDepthRMSE0.62Unverified
2SphereDepthRMSE0.45Unverified
3Jin et al.RMSE0.42Unverified
4BiFuse with fusionRMSE0.41Unverified
5HoHoNet (ResNet-101)RMSE0.38Unverified
6PanoDepthRMSE0.37Unverified
7BiFuse++RMSE0.37Unverified
8UniFuse with fusionRMSE0.37Unverified
9DisConvRMSE0.37Unverified
10SliceNetRMSE0.37Unverified
#ModelMetricClaimedVerifiedStatus
1A2JmAP8.61Unverified
2PAD-NetRMS0.79Unverified
3MS-CRFRMS0.59Unverified
4DORNRMS0.51Unverified
5FreeformRMS0.43Unverified
6Optimized, freeformRMS0.43Unverified
7VNLRMS0.42Unverified
8BTSRMS0.41Unverified
9TransDepth (AGD+ ViT)RMS0.37Unverified
10AdaBinsRMS0.36Unverified
#ModelMetricClaimedVerifiedStatus
1T2NetAbs Rel0.35Unverified
2MIDASAbs Rel0.31Unverified
3Bhattacharjee et al.Abs Rel0.25Unverified
#ModelMetricClaimedVerifiedStatus
1T2NetAbs Rel0.49Unverified
2MIDASAbs Rel0.42Unverified
3Bhattacharjee et al.Abs Rel0.38Unverified
#ModelMetricClaimedVerifiedStatus
1LeReSabsolute relative error0.1Unverified
2DELTASabsolute relative error0.09Unverified
3Distill Any Depthabsolute relative error0.04Unverified
#ModelMetricClaimedVerifiedStatus
1SDC-DepthRMSE6.92Unverified
2SwinMTLRMSE6.35Unverified
#ModelMetricClaimedVerifiedStatus
1AIP-BrownDelta < 1.250.36Unverified
2LeResDelta < 1.250.23Unverified
#ModelMetricClaimedVerifiedStatus
1H-Net (Ours)Absolute relative error (AbsRel)0.09Unverified
2H-Net (Ours) Full EigenAbsolute relative error (AbsRel)0.08Unverified
#ModelMetricClaimedVerifiedStatus
1GLPDepthDelta < 1.250.43Unverified
2SRDINET (Model A)Delta < 1.250.4Unverified
#ModelMetricClaimedVerifiedStatus
1Atlas (finetuned)RMSE0.17Unverified
2Atlas (plain)RMSE0.17Unverified
#ModelMetricClaimedVerifiedStatus
1LFattNetBadPix(0.01)17.23Unverified
#ModelMetricClaimedVerifiedStatus
1LightDepthNumber of parameters (M)42.6Unverified
#ModelMetricClaimedVerifiedStatus
1UniFuseAbs Rel0.11Unverified
#ModelMetricClaimedVerifiedStatus
1X-TC (Cross-Task Consistency)L1 error1.63Unverified