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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 126150 of 876 papers

TitleStatusHype
Benchmarking Robustness of Endoscopic Depth Estimation with Synthetically Corrupted DataCode0
GroCo: Ground Constraint for Metric Self-Supervised Monocular DepthCode1
DepthART: Monocular Depth Estimation as Autoregressive Refinement Task0
Depth Estimation Based on 3D Gaussian Splatting Siamese Defocus0
Fine-Tuning Image-Conditional Diffusion Models is Easier than You ThinkCode4
Towards Single-Lens Controllable Depth-of-Field Imaging via Depth-Aware Point Spread FunctionsCode0
GRIN: Zero-Shot Metric Depth with Pixel-Level Diffusion0
PrimeDepth: Efficient Monocular Depth Estimation with a Stable Diffusion PreimageCode2
Advancing Depth Anything Model for Unsupervised Monocular Depth Estimation in Endoscopy0
EDADepth: Enhanced Data Augmentation for Monocular Depth EstimationCode0
TanDepth: Leveraging Global DEMs for Metric Monocular Depth Estimation in UAVs0
Introducing a Class-Aware Metric for Monocular Depth Estimation: An Automotive PerspectiveCode0
iConFormer: Dynamic Parameter-Efficient Tuning with Input-Conditioned Adaptation0
SG-MIM: Structured Knowledge Guided Efficient Pre-training for Dense Prediction0
Plane2Depth: Hierarchical Adaptive Plane Guidance for Monocular Depth EstimationCode2
DepthCrafter: Generating Consistent Long Depth Sequences for Open-world VideosCode5
Large Language Models Can Understanding Depth from Monocular Images0
DARES: Depth Anything in Robotic Endoscopic Surgery with Self-supervised Vector-LoRA of the Foundation ModelCode1
EvLight++: Low-Light Video Enhancement with an Event Camera: A Large-Scale Real-World Dataset, Novel Method, and More0
Adversarial Manhole: Challenging Monocular Depth Estimation and Semantic Segmentation Models with Patch AttackCode0
NimbleD: Enhancing Self-supervised Monocular Depth Estimation with Pseudo-labels and Large-scale Video Pre-trainingCode0
TranSplat: Generalizable 3D Gaussian Splatting from Sparse Multi-View Images with Transformers0
InSpaceType: Dataset and Benchmark for Reconsidering Cross-Space Type Performance in Indoor Monocular DepthCode1
Structure-preserving Image Translation for Depth Estimation in Colonoscopy VideoCode1
Enhanced Scale-aware Depth Estimation for Monocular Endoscopic Scenes with Geometric Modeling0
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