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PaintNet: Unstructured Multi-Path Learning from 3D Point Clouds for Robotic Spray Painting

We introduce the PaintNet dataset to accelerate research on supervised learning for multi-path prediction conditioned on free-shape 3D objects. PaintNet includes more than 800 object meshes and the associated spray painting strokes collected in a real industrial setting. The data currently covers four object categories of growing complexity: cuboids, windows, shelves, containers. All object meshes are already provided in a subdivided, smoothed watertight version to avoid sharp edges and holes. For each object, the associated unordered set of spray painting paths (a.k.a. strokes) is given, each being a sequence of end-effector poses. The 6-dimensional poses encode the 3D position of the ideal paint deposit point—12cm away from the gun nozzle—and the gun orientations as Euler angles. Each pose is collected by sampling from the end-effector kinematics at a rate of 4ms during offline program execution.

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Personal Data Attributes

Description: Personal Data related Information

Field Value
Anonymised Anonymized
ChildrenData No
General Data Yes
Personal Data No
Personal data was manifestly made public by the data subject No
Sensitive Data No
Additional Info
Field Value
Accessibility Both
Associate Project FAIR
Basic rights Temporary download of a single copy only
Basic rights Download
Basic rights Copying
Basic rights Distribution
Basic rights Modification
Basic rights Communication
Creation Date 2023-10-01
Creator Tiboni, Gabriele, [email protected]
Creator Camoriano, Raffaello, [email protected]
Creator Tommasi, Tatiana, [email protected]
Data sharing agreement yes
Dataset Citation Tiboni, Gabriele, Raffaello Camoriano, and Tatiana Tommasi. "PaintNet: Unstructured Multi-Path Learning from 3D Point Clouds for Robotic Spray Painting." 2023 IEEE/RSJ International Conference on Intelligent Robots and Systems (IROS). IEEE, 2023.
External Identifier https://doi.org/10.1109/LRA.2024.3451388
Field/Scope of use Any use
Group Pervasive Intelligence in Cyber-Physical Systems for Future Society
License term 2023-10-01 /2040-12-31
Processing Degree Primary
SoBigData Node SoBigData EU
Sublicense rights No
Territory of use World Wide
Thematic Cluster Other
system:type Dataset
Management Info
Field Value
Author Camoriano Raffaello
Maintainer Gabriele Tiboni
Version 1
Last Updated 23 November 2024, 16:04 (CET)
Created 23 November 2024, 16:04 (CET)