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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 526550 of 876 papers

TitleStatusHype
Measuring and Modeling Uncertainty Degree for Monocular Depth Estimation0
Multi-Object Discovery by Low-Dimensional Object Motion0
SVDM: Single-View Diffusion Model for Pseudo-Stereo 3D Object Detection0
Continuous Online Extrinsic Calibration of Fisheye Camera and LiDAR0
Lightweight Monocular Depth Estimation via Token-Sharing Transformer0
The Surprising Effectiveness of Diffusion Models for Optical Flow and Monocular Depth Estimation0
HQDec: Self-Supervised Monocular Depth Estimation Based on a High-Quality DecoderCode0
Hierarchical Neural Memory Network for Low Latency Event ProcessingCode0
Polarimetric Imaging for Perception0
Learning Monocular Depth in Dynamic Environment via Context-aware Temporal Attention0
Meta-Optimization for Higher Model Generalizability in Single-Image Depth Prediction0
FusionDepth: Complement Self-Supervised Monocular Depth Estimation with Cost Volume0
A Multi-modal Approach to Single-modal Visual Place Classification0
AutoColor: Learned Light Power Control for Multi-Color HologramsCode0
High-Resolution Synthetic RGB-D Datasets for Monocular Depth Estimation0
Depth-Relative Self Attention for Monocular Depth Estimation0
Pose Constraints for Consistent Self-supervised Monocular Depth and Ego-motionCode0
360^ High-Resolution Depth Estimation via Uncertainty-aware Structural Knowledge Transfer0
The Second Monocular Depth Estimation Challenge0
Self-Supervised Learning based Depth Estimation from Monocular ImagesCode0
SemHint-MD: Learning from Noisy Semantic Labels for Self-Supervised Monocular Depth Estimation0
TiDy-PSFs: Computational Imaging with Time-Averaged Dynamic Point-Spread-Functions0
Multi-Frame Self-Supervised Depth Estimation with Multi-Scale Feature Fusion in Dynamic Scenes0
SCADE: NeRFs from Space Carving with Ambiguity-Aware Depth Estimates0
Boosting Weakly Supervised Object Detection using Fusion and Priors from Hallucinated Depth0
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