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Marcus Gualtieri

8 accepted papers

2024

FogROS2-LS: A Location-Independent Fog Robotics Framework for Latency Sensitive ROS2 Applications

ICRA 2024poster

In Cloud Robotics, long system latency due to varying network conditions can cause instability and collisions. However, this can be minimized in the almost univeral case where there are multiple sources available for cloud servers. By extending anycast routing, we introduce FogROS2-Latency-Sensitive…

Cited by 8SourceScholar
2024

Lifelong LERF: Local 3D Semantic Inventory Monitoring Using FogROS2

ICRA 2024poster

Inventory monitoring in homes, factories, and retail stores relies on maintaining data despite objects being swapped, added, removed, or moved. We introduce Lifelong LERF, a method that allows a mobile robot with minimal compute to jointly optimize a dense language and geometric representation of it…

Cited by 6SourceScholar
2021

Robotic Pick-and-Place With Uncertain Object Instance Segmentation and Shape Completion

RA-L 2021

We consider robotic pick-and-place of partially visible, novel objects, where goal placements are non-trivial, e.g., tightly packed into a bin. One approach is (a) use object instance segmentation and shape completion to model the objects and (b) use a regrasp planner to decide grasps and places dis

Cited by 39SourcecodeScholar
2017

Open world assistive grasping using laser selection

ICRA 2017poster

Many people with motor disabilities are unable to complete activities of daily living (ADLs) without assistance. This paper describes a complete robotic system developed to provide mobile grasping assistance for ADLs. The system is comprised of a robot arm from a Rethink Robotics Baxter robot mounte…

Cited by 36SourceScholar
2016

High precision grasp pose detection in dense clutter

IROS 2016poster

This paper considers the problem of grasp pose detection in point clouds. We follow a general algorithmic structure that first generates a large set of 6-DOF grasp candidates and then classifies each of them as a good or a bad grasp. Our focus in this paper is on improving the second step by using d…

Cited by 364SourcecodeScholar