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 651675 of 1576 papers

TitleStatusHype
Hierarchical Cross-Modal Alignment for Open-Vocabulary 3D Object Detection0
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
Class-Aware PillarMix: Can Mixed Sample Data Augmentation Enhance 3D Object Detection with Radar Point Clouds?0
Multi-Scale Neighborhood Occupancy Masked Autoencoder for Self-Supervised Learning in LiDAR Point Clouds0
BEVDiffuser: Plug-and-Play Diffusion Model for BEV Denoising with Ground-Truth Guidance0
LCV2I: Communication-Efficient and High-Performance Collaborative Perception Framework with Low-Resolution LiDAR0
Depth-aware Fusion Method based on Image and 4D Radar Spectrum for 3D Object Detection0
Q-PETR: Quant-aware Position Embedding Transformation for Multi-View 3D Object Detection0
LXLv2: Enhanced LiDAR Excluded Lean 3D Object Detection with Fusion of 4D Radar and Camera0
Synth It Like KITTI: Synthetic Data Generation for Object Detection in Driving ScenariosCode0
Task-Oriented Semantic Communication for Stereo-Vision 3D Object Detection0
RobuRCDet: Enhancing Robustness of Radar-Camera Fusion in Bird's Eye View for 3D Object Detection0
Deep Reinforcement Learning-Based User Scheduling for Collaborative Perception0
DetVPCC: RoI-based Point Cloud Sequence Compression for 3D Object Detection0
Improving Generalization Ability for 3D Object Detection by Learning Sparsity-invariant FeaturesCode0
Reliability-Driven LiDAR-Camera Fusion for Robust 3D Object Detection0
SpikingRTNH: Spiking Neural Network for 4D Radar Object Detection0
IROAM: Improving Roadside Monocular 3D Object Detection Learning from Autonomous Vehicle Data Domain0
Breaking the SSL-AL Barrier: A Synergistic Semi-Supervised Active Learning Framework for 3D Object Detection0
Doracamom: Joint 3D Detection and Occupancy Prediction with Multi-view 4D Radars and Cameras for Omnidirectional Perception0
LiFT: Lightweight, FPGA-tailored 3D object detection based on LiDAR dataCode0
MutualForce: Mutual-Aware Enhancement for 4D Radar-LiDAR 3D Object Detection0
The Devil is in the Details: Simple Remedies for Image-to-LiDAR Representation Learning0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1EA-LSSNDS0.78Unverified
2MMFusion-eNDS0.77Unverified
3MegFusionNDS0.77Unverified
4RacoonPowerNDS0.76Unverified
5BEVFusion-eNDS0.76Unverified
6DeepInteraction-largeNDS0.76Unverified
7DeepInteraction-eNDS0.76Unverified
8DAANDS0.75Unverified
9FusionVPENDS0.75Unverified
10CenterPoint-FusionNDS0.75Unverified