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Jiarong Lin

12 accepted papers

2025

An End-to-End Learning-Based Multi-Sensor Fusion for Autonomous Vehicle Localization

ICRA 2025

Multi-sensor fusion is essential for autonomous vehicle localization, as it is capable of integrating data from various sources for enhanced accuracy and reliability. The accuracy of the integrated location and orientation depends on the precision of the uncertainty modeling. Traditional methods of

Cited by 2SourceScholar
2025

GS-SDF: LiDAR-Augmented Gaussian Splatting and Neural SDF for Geometrically Consistent Rendering and Reconstruction

IROS 2025

Digital twins are fundamental to the development of autonomous driving and embodied artificial intelligence. However, achieving high-granularity surface reconstruction and high-fidelity rendering remains a challenge. Gaussian splatting offers efficient photorealistic rendering but struggles with geo

Cited by 8SourcecodeScholar
2025

LVBA: LiDAR-Visual Bundle Adjustment for RGB Point Cloud Mapping

ICRA 2025

Point cloud maps with accurate color are crucial in robotics and mapping applications. Existing approaches for producing RGB-colorized maps are primarily based on realtime localization using filter-based estimation or sliding window optimization, which may lack accuracy and global consistency. In th

Cited by 2SourceScholar
2023

MARSIM: A Light-Weight Point-Realistic Simulator for LiDAR-Based UAVs

RA-L 2023

The emergence of low-cost, small form factor and light-weight solid-state LiDAR sensors have brought new opportunities for autonomous unmanned aerial vehicles (UAVs) by advancing navigation safety and computation efficiency. Yet the successful developments of LiDAR-based UAVs must rely on extensive

Cited by 56SourcecodeScholar
2023

STD: Stable Triangle Descriptor for 3D place recognition

ICRA 2023poster

In this work, we present a novel global descriptor termed stable triangle descriptor (STD) for 3D place recognition. For a triangle, its shape is uniquely determined by the length of the sides or included angles. Moreover, the shape of triangles is completely invariant to rigid transformations. Base…

Cited by 92SourcecodeScholar
2022

Fast 3D Sparse Topological Skeleton Graph Generation for Mobile Robot Global Planning

IROS 2022poster

In recent years, mobile robots are becoming ambitious and deployed in large-scale scenarios. Serving as a high-level understanding of environments, a sparse skeleton graph is beneficial for more efficient global planning. Currently, existing solutions for skeleton graph generation suffer from severa…

Cited by 17SourceScholar
2022

R3LIVE: A Robust, Real-time, RGB-colored, LiDAR-Inertial-Visual tightly-coupled state Estimation and mapping package

ICRA 2022poster

In this paper, we propose a novel LiDAR-Inertial-Visual sensor fusion framework termed R3LIVE, which takes advantage of measurement of LiDAR, inertial, and visual sensors to achieve robust and accurate state estimation. R3LIVE consists of two subsystems, a LiDAR-Inertial odometry (LIO) and a Visual-…

Cited by 364SourcecodeScholar
2021

R $2$ LIVE: A Robust, Real-Time, LiDAR-Inertial-Visual Tightly-Coupled State Estimator and Mapping

RA-L 2021

In this letter, we propose a robust, real-time tightly-coupled multi-sensor fusion framework, which fuses measurements from LiDAR, inertial sensor, and visual camera to achieve robust and accurate state estimation. Our proposed framework is composed of two parts: the filter-based odometry and factor

Cited by 124SourcecodeScholar
2020

A decentralized framework for simultaneous calibration, localization and mapping with multiple LiDARs

IROS 2020poster

LiDAR is playing a more and more essential role in autonomous driving vehicles for objection detection, self localization and mapping. A single LiDAR frequently suffers from hardware failure (e.g., temporary loss of connection) due to the harsh vehicle environment (e.g., temperature, vibration, etc.…

Cited by 53SourcecodeScholar
2020

Loam livox: A fast, robust, high-precision LiDAR odometry and mapping package for LiDARs of small FoV

ICRA 2020poster

LiDAR odometry and mapping (LOAM) has been playing an important role in autonomous vehicles, due to its ability to simultaneously localize the robot’s pose and build high-precision, high-resolution maps of the surrounding environment. This enables autonomous navigation and safe path planning of auto…

Cited by 412SourcecodeScholar
2019

Flying through a narrow gap using neural network: an end-to-end planning and control approach

IROS 2019poster

In this paper, we investigate the problem of enabling a drone to fly through a tilted narrow gap, without a traditional planning and control pipeline. To this end, we propose an end-to-end policy network, which imitates from the traditional pipeline and is fine-tuned using reinforcement learning. Un…

Cited by 41SourcecodeScholar