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Daniel McGann

8 accepted papers

2026

CU-Multi: A Dataset for Multi-Robot Collaborative Perception

ICRA 2026poster

A central challenge for multi-robot systems is fusing independently gathered perception data into a unified representation. Despite progress in Collaborative SLAM (C-SLAM), benchmarking remains hindered by the scarcity of dedicated multi-robot datasets. Many evaluations instead partition single-robo…

2026

FORM: Fixed-Lag Odometry with Reparative Mapping Utilizing Rotating LiDAR Sensors

ICRA 2026poster

Light Detection and Ranging (LiDAR) sensors have become a de-facto sensor for many robot state estimation tasks, spurring development of many LiDAR Odometry (LO) methods in recent years. While some smoothing-based LO methods have been proposed, most require matching against multiple scans, resulting…

2024

iMESA: Incremental Distributed Optimization for Collaborative Simultaneous Localization and Mapping

RSS 2024poster

This paper introduces a novel incremental distributed back-end algorithm for Collaborative Simultaneous Localization and Mapping (C-SLAM). For real-world deployments, robotic teams require algorithms to compute a consistent state estimate accurately, within online runtime constraints, and with poten…

2022

GPS-Denied Global Visual-Inertial Ground Vehicle State Estimation via Image Registration

ICRA 2022poster

Robotic systems such as unmanned ground vehicles (UGVs) often depend on GPS for navigation in outdoor environments. In GPS-denied environments, one approach to maintain a global state estimate is localizing based on preexisting georeferenced aerial or satellite imagery. However, this is inherently c…

Cited by 8SourceScholar