SOTAVerified

3D Object Detection

3D Object Detection is a task in computer vision where the goal is to identify and locate objects in a 3D environment based on their shape, location, and orientation. It involves detecting the presence of objects and determining their location in the 3D space in real-time. This task is crucial for applications such as autonomous vehicles, robotics, and augmented reality.

( Image credit: AVOD )

Papers

Showing 5175 of 1576 papers

TitleStatusHype
MonoCT: Overcoming Monocular 3D Detection Domain Shift with Consistent Teacher Models0
Point Cloud Based Scene Segmentation: A Survey0
UniMamba: Unified Spatial-Channel Representation Learning with Group-Efficient Mamba for LiDAR-based 3D Object Detection0
HeightFormer: Learning Height Prediction in Voxel Features for Roadside Vision Centric 3D Object Detection via Transformer0
Semantic-Supervised Spatial-Temporal Fusion for LiDAR-based 3D Object Detection0
RoCo-Sim: Enhancing Roadside Collaborative Perception through Foreground SimulationCode1
Evaluating the Impact of Synthetic Data on Object Detection Tasks in Autonomous Driving0
Dual-Domain Homogeneous Fusion with Cross-Modal Mamba and Progressive Decoder for 3D Object Detection0
CleverDistiller: Simple and Spatially Consistent Cross-modal Distillation0
Learning to Detect Objects from Multi-Agent LiDAR Scans without Manual LabelsCode1
SparseVoxFormer: Sparse Voxel-based Transformer for Multi-modal 3D Object Detection0
Accelerate 3D Object Detection Models via Zero-Shot Attention Key PruningCode1
Hierarchical Cross-Modal Alignment for Open-Vocabulary 3D Object Detection0
A Light Perspective for 3D Object Detection0
RS2AD: End-to-End Autonomous Driving Data Generation from Roadside Sensor Observations0
SP3D: Boosting Sparsely-Supervised 3D Object Detection via Accurate Cross-Modal Semantic PromptsCode1
OV-SCAN: Semantically Consistent Alignment for Novel Object Discovery in Open-Vocabulary 3D Object Detection0
From Dataset to Real-world: General 3D Object Detection via Generalized Cross-domain Few-shot Learning0
Simulation-Based Performance Evaluation of 3D Object Detection Methods with Deep Learning for a LiDAR Point Cloud Dataset in a SOTIF-related Use CaseCode0
DualDiff+: Dual-Branch Diffusion for High-Fidelity Video Generation with Reward GuidanceCode1
Class-Aware PillarMix: Can Mixed Sample Data Augmentation Enhance 3D Object Detection with Radar Point Clouds?0
FASTer: Focal Token Acquiring-and-Scaling Transformer for Long-term 3D Object DetectionCode1
Spiideo SoccerNet SynLoc: Single Frame World Coordinate Athlete Detection and Localization with Synthetic DataCode1
BEVDiffuser: Plug-and-Play Diffusion Model for BEV Denoising with Ground-Truth Guidance0
Multi-Scale Neighborhood Occupancy Masked Autoencoder for Self-Supervised Learning in LiDAR Point Clouds0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1EA-LSSNDS0.78Unverified
2MegFusionNDS0.77Unverified
3MMFusion-eNDS0.77Unverified
4BEVFusion-eNDS0.76Unverified
5RacoonPowerNDS0.76Unverified
6DeepInteraction-largeNDS0.76Unverified
7DeepInteraction-eNDS0.76Unverified
8FusionVPENDS0.75Unverified
9FocalFormer3D-FNDS0.75Unverified
10CenterPoint-FusionNDS0.75Unverified