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Monocular Depth Estimation

Monocular Depth Estimation is the task of estimating the depth value (distance relative to the camera) of each pixel given a single (monocular) RGB image. This challenging task is a key prerequisite for determining scene understanding for applications such as 3D scene reconstruction, autonomous driving, and AR. State-of-the-art methods usually fall into one of two categories: designing a complex network that is powerful enough to directly regress the depth map, or splitting the input into bins or windows to reduce computational complexity. The most popular benchmarks are the KITTI and NYUv2 datasets. Models are typically evaluated using RMSE or absolute relative error.

Source: Defocus Deblurring Using Dual-Pixel Data

Papers

Showing 701750 of 876 papers

TitleStatusHype
Robust Learning Through Cross-Task ConsistencyCode1
SDC-Depth: Semantic Divide-and-Conquer Network for Monocular Depth Estimation0
A Survey on Deep Learning Techniques for Stereo-based Depth Estimation0
Structure-Guided Ranking Loss for Single Image Depth PredictionCode1
Monocular Depth Estimators: Vulnerabilities and Attacks0
On the uncertainty of self-supervised monocular depth estimationCode1
VisualEchoes: Spatial Image Representation Learning through Echolocation0
Deep 3D Pan via Local adaptive "t-shaped" convolutions with global and local adaptive dilations0
Deflating Dataset Bias Using Synthetic Data Augmentation0
GIMP-ML: Python Plugins for using Computer Vision Models in GIMP0
Improved Noise and Attack Robustness for Semantic Segmentation by Using Multi-Task Training with Self-Supervised Depth Estimation0
On the Synergies between Machine Learning and Binocular Stereo for Depth Estimation from Images: a Survey0
DepthNet Nano: A Highly Compact Self-Normalizing Neural Network for Monocular Depth Estimation0
RealMonoDepth: Self-Supervised Monocular Depth Estimation for General Scenes0
Monocular Depth Estimation with Self-supervised Instance Adaptation0
Toward Hierarchical Self-Supervised Monocular Absolute Depth Estimation for Autonomous Driving ApplicationsCode1
Self-Supervised Monocular Scene Flow EstimationCode1
Guiding Monocular Depth Estimation Using Depth-Attention VolumeCode1
Towards Better Generalization: Joint Depth-Pose Learning without PoseNetCode1
The Edge of Depth: Explicit Constraints between Segmentation and DepthCode1
Distilled Semantics for Comprehensive Scene Understanding from VideosCode1
Self-supervised Monocular Trained Depth Estimation using Self-attention and Discrete Disparity VolumeCode1
DeFeat-Net: General Monocular Depth via Simultaneous Unsupervised Representation LearningCode1
Holopix50k: A Large-Scale In-the-wild Stereo Image DatasetCode1
Adversarial Attacks on Monocular Depth Estimation0
DELTAS: Depth Estimation by Learning Triangulation And densification of Sparse pointsCode1
Monocular Depth Estimation Based On Deep Learning: An Overview0
DiPE: Deeper into Photometric Errors for Unsupervised Learning of Depth and Ego-motion from Monocular VideosCode1
D3VO: Deep Depth, Deep Pose and Deep Uncertainty for Monocular Visual Odometry0
Unsupervised Learning of Depth, Optical Flow and Pose with Occlusion from 3D GeometryCode1
Predicting Sharp and Accurate Occlusion Boundaries in Monocular Depth Estimation Using Displacement FieldsCode1
Domain Decluttering: Simplifying Images to Mitigate Synthetic-Real Domain Shift and Improve Depth Estimation0
Semantically-Guided Representation Learning for Self-Supervised Monocular DepthCode2
Dense monocular Simultaneous Localization and Mapping by direct surfel optimization0
FIS-Nets: Full-image Supervised Networks for Monocular Depth Estimation0
Aerial Single-View Depth Completion with Image-Guided Uncertainty EstimationCode1
Single Image Depth Estimation Trained via Depth from Defocus CuesCode1
Perception and Navigation in Autonomous Systems in the Era of Learning: A Survey0
Don't Forget The Past: Recurrent Depth Estimation from Monocular Video0
Instance-wise Depth and Motion Learning from Monocular VideosCode1
Edge-Guided Occlusion Fading Reduction for a Light-Weighted Self-Supervised Monocular Depth EstimationCode0
Analysis of Deep Networks for Monocular Depth Estimation Through Adversarial Attacks with Proposal of a Defense Method0
On the Benefit of Adversarial Training for Monocular Depth EstimationCode0
Deep Classification Network for Monocular Depth Estimation0
Moving Indoor: Unsupervised Video Depth Learning in Challenging Environments0
Unsupervised High-Resolution Depth Learning From Videos With Dual Networks0
ClearGrasp: 3D Shape Estimation of Transparent Objects for ManipulationCode0
Robust Semi-Supervised Monocular Depth Estimation with Reprojected Distances0
Deep 3D Pan via adaptive "t-shaped" convolutions with global and local adaptive dilations0
Deep Depth From Aberration Map0
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