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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 201225 of 876 papers

TitleStatusHype
A geometry-aware deep network for depth estimation in monocular endoscopyCode1
Kick Back & Relax: Learning to Reconstruct the World by Watching SlowTVCode1
EndoDepth: A Benchmark for Assessing Robustness in Endoscopic Depth PredictionCode1
MonoDiffusion: Self-Supervised Monocular Depth Estimation Using Diffusion ModelCode1
MonoProb: Self-Supervised Monocular Depth Estimation with Interpretable UncertaintyCode1
Dyna-DM: Dynamic Object-aware Self-supervised Monocular Depth MapsCode1
EC-Depth: Exploring the consistency of self-supervised monocular depth estimation in challenging scenesCode1
LaRa: Latents and Rays for Multi-Camera Bird's-Eye-View Semantic SegmentationCode1
DCDepth: Progressive Monocular Depth Estimation in Discrete Cosine DomainCode1
Detecting Invisible PeopleCode1
A benchmark with decomposed distribution shifts for 360 monocular depth estimationCode1
Aerial Single-View Depth Completion with Image-Guided Uncertainty EstimationCode1
DS-Depth: Dynamic and Static Depth Estimation via a Fusion Cost VolumeCode1
DaRF: Boosting Radiance Fields from Sparse Inputs with Monocular Depth AdaptationCode1
Digging Into Self-Supervised Monocular Depth EstimationCode1
Advancing Self-supervised Monocular Depth Learning with Sparse LiDARCode1
Digging Into Uncertainty-based Pseudo-label for Robust Stereo MatchingCode1
Monocular Depth Estimation and Segmentation for Transparent Object with Iterative Semantic and Geometric FusionCode1
DiPE: Deeper into Photometric Errors for Unsupervised Learning of Depth and Ego-motion from Monocular VideosCode1
Learning Monocular Depth in Dynamic Scenes via Instance-Aware Projection ConsistencyCode1
DARES: Depth Anything in Robotic Endoscopic Surgery with Self-supervised Vector-LoRA of the Foundation ModelCode1
Learning optical flow from still imagesCode1
Mobile AR Depth Estimation: Challenges & Prospects -- Extended VersionCode1
Automated Distance Estimation for Wildlife Camera TrappingCode1
Monocular Depth Distribution Alignment with Low ComputationCode1
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