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A survey on aerial swarm robotics
The use of aerial swarms to solve real-world problems has been increasing steadily,
accompanied by falling prices and improving performance of communication, sensing, and …
accompanied by falling prices and improving performance of communication, sensing, and …
Factor graphs for robot perception
We review the use of factor graphs for the modeling and solving of large-scale inference
problems in robotics. Factor graphs are a family of probabilistic graphical models, other …
problems in robotics. Factor graphs are a family of probabilistic graphical models, other …
Kimera-multi: Robust, distributed, dense metric-semantic slam for multi-robot systems
Multi-robot simultaneous localization and map** (SLAM) is a crucial capability to obtain
timely situational awareness over large areas. Real-world applications demand multi-robot …
timely situational awareness over large areas. Real-world applications demand multi-robot …
Swarm-slam: Sparse decentralized collaborative simultaneous localization and map** framework for multi-robot systems
Collaborative Simultaneous Localization And Map** (C-SLAM) is a vital component for
successful multi-robot operations in environments without an external positioning system …
successful multi-robot operations in environments without an external positioning system …
Past, present, and future of simultaneous localization and map**: Toward the robust-perception age
Simultaneous localization and map** (SLAM) consists in the concurrent construction of a
model of the environment (the map), and the estimation of the state of the robot moving …
model of the environment (the map), and the estimation of the state of the robot moving …
DOOR-SLAM: Distributed, online, and outlier resilient SLAM for robotic teams
To achieve collaborative tasks, robots in a team need to have a shared understanding of the
environment and their location within it. Distributed Simultaneous Localization and Map** …
environment and their location within it. Distributed Simultaneous Localization and Map** …
Segmatch: Segment based place recognition in 3d point clouds
Place recognition in 3D data is a challenging task that has been commonly approached by
adapting image-based solutions. Methods based on local features suffer from ambiguity and …
adapting image-based solutions. Methods based on local features suffer from ambiguity and …
iSAM2: Incremental smoothing and map** using the Bayes tree
We present a novel data structure, the Bayes tree, that provides an algorithmic foundation
enabling a better understanding of existing graphical model inference algorithms and their …
enabling a better understanding of existing graphical model inference algorithms and their …
Semantics for robotic map**, perception and interaction: A survey
For robots to navigate and interact more richly with the world around them, they will likely
require a deeper understanding of the world in which they operate. In robotics and related …
require a deeper understanding of the world in which they operate. In robotics and related …
Multiple‐robot simultaneous localization and map**: A review
Simultaneous localization and map** (SLAM) in unknown GPS‐denied environments is a
major challenge for researchers in the field of mobile robotics. Many solutions for single …
major challenge for researchers in the field of mobile robotics. Many solutions for single …