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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 226250 of 876 papers

TitleStatusHype
Distilled Semantics for Comprehensive Scene Understanding from VideosCode1
ENRICH: Multi-purposE dataset for beNchmaRking In Computer vision and pHotogrammetryCode1
M4Depth: Monocular depth estimation for autonomous vehicles in unseen environmentsCode1
A Practical Stereo Depth System for Smart GlassesCode1
NDDepth: Normal-Distance Assisted Monocular Depth Estimation and CompletionCode1
EndoMUST: Monocular Depth Estimation for Robotic Endoscopy via End-to-end Multi-step Self-supervised TrainingCode1
DaRF: Boosting Radiance Fields from Sparse Inputs with Monocular Depth AdaptationCode1
Manydepth2: Motion-Aware Self-Supervised Multi-Frame Monocular Depth Estimation in Dynamic ScenesCode1
Monocular Depth Distribution Alignment with Low ComputationCode1
Mind The Edge: Refining Depth Edges in Sparsely-Supervised Monocular Depth EstimationCode1
Self-Supervised Learning for Monocular Depth Estimation from Aerial ImageryCode1
CoDEPS: Online Continual Learning for Depth Estimation and Panoptic SegmentationCode1
Mining Supervision for Dynamic Regions in Self-Supervised Monocular Depth EstimationCode1
DARES: Depth Anything in Robotic Endoscopic Surgery with Self-supervised Vector-LoRA of the Foundation ModelCode1
A Study on Self-Supervised Pretraining for Vision Problems in Gastrointestinal EndoscopyCode1
Multi-Loss Weighting with Coefficient of VariationsCode1
Combining Events and Frames using Recurrent Asynchronous Multimodal Networks for Monocular Depth PredictionCode1
Dyna-DM: Dynamic Object-aware Self-supervised Monocular Depth MapsCode1
A Study on the Generality of Neural Network Structures for Monocular Depth EstimationCode1
EC-Depth: Exploring the consistency of self-supervised monocular depth estimation in challenging scenesCode1
Multi-resolution Monocular Depth Map Fusion by Self-supervised Gradient-based CompositionCode1
Monocular Depth Estimation via Listwise Ranking using the Plackett-Luce ModelCode1
Self-Supervised Monocular Scene Flow EstimationCode1
NDDepth: Normal-Distance Assisted Monocular Depth EstimationCode1
NVDS+: Towards Efficient and Versatile Neural Stabilizer for Video Depth EstimationCode1
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