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AutoSynPose: Automatic Generation of Synthetic Datasets for 6D Object Pose Estimation

  • We present an automated pipeline for the generation of synthetic datasets for six-dimension (6D) object pose estimation. Therefore, a completely automated generation process based on predefined settings is developed, which enables the user to create large datasets with a minimum of interaction and which is feasible for applications with a high object variance. The pipeline is based on the Unreal 4 (UE4) game engine and provides a high variation for domain randomization, such as object appearance, ambient lighting, camera-object transformation and distractor density. In addition to the object pose and bounding box, the metadata includes all randomization parameters, which enables further studies on randomization parameter tuning. The developed workflow is adaptable to other 3D objects and UE4 environments. An exemplary dataset is provided including five objects of the Yale-CMU-Berkeley (YCB) object set. The datasets consist of 6 million subsegments using 97 rendering locations in 12 different UE4 environments. Each dataset subsegment includes one RGB image, one depth image and one class segmentation image at pixel-level.

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Metadaten
Author:Heiko Engemann, Shengzhi Du, Stephan Kallweit, Chuanfang Ning, Saqib Anwar
DOI:https://doi.org/10.3233/FAIA200770
ISBN:978-1-64368-137-5
Parent Title (English):Machine Learning and Artificial Intelligence. Proceedings of MLIS 2020
Publisher:IOS Press
Place of publication:Amsterdam
Document Type:Part of a Book
Language:English
Year of Completion:2020
Date of the Publication (Server):2021/01/25
First Page:89
Last Page:97
Note:
Frontiers in Artificial Intelligence and Applications. Vol 332
Link:https://doi.org/10.3233/FAIA200770
Zugriffsart:weltweit
Institutes:FH Aachen / Fachbereich Maschinenbau und Mechatronik
FH Aachen / MASKOR Institut für Mobile Autonome Systeme und Kognitive Robotik
FH Aachen / IaAM - Institut für angewandte Automation und Mechatronik
collections:Verlag / IOS Press
Open Access / Gold
Licence (German):License LogoCreative Commons - Namensnennung-Nicht kommerziell