Utilize este identificador para referenciar este registo: https://hdl.handle.net/1822/71174

TítuloAutomated generation of synthetic in-car dataset for human body pose detection
Autor(es)Borges, João
Oliveira, Bruno
Torres, Helena Daniela Ribeiro
Rodrigues, Nelson
Queirós, Sandro Filipe Monteiro
Shiller, Maximilian
Coelho, Victor
Pallauf, Johannes
Brito, José Henrique
Mendes, José A.
Fonseca, Jaime C.
Palavras-chaveAutomotive Applications
Synthetic Dataset Generation
Supervised Learning
Human Pose Estimation
Data2020
EditoraSCITEPRESS – Science and Technology Publications
Resumo(s)In this paper, a toolchain for the generation of realistic synthetic images for human body pose detection in an in-car environment is proposed. The toolchain creates a customized synthetic environment, comprising human models, car, and camera. Poses are automatically generated for each human, taking into account a per-joint axis Gaussian distribution, constrained by anthropometric and range of motion measurements. Scene validation is done through collision detection. Rendering is focused on vision data, supporting time-of-flight (ToF) and RGB cameras, generating synthetic images from these sensors. Ground-truth data is then generated, comprising the car occupants' body pose (2D/3D), as well as full body RGB segmentation frames with different body parts' labels. We demonstrate the feasibility of using synthetic data, combined with real data, to train distinct machine learning agorithms, demonstrating the improvement in their algorithmic accuracy for the in-car scenario.
TipoArtigo em ata de conferência
URIhttps://hdl.handle.net/1822/71174
ISBN978-989-758-402-2
DOI10.5220/0009316205500557
Versão da editorahttps://www.scitepress.org/Link.aspx?doi=10.5220/0009316205500557
Arbitragem científicayes
AcessoAcesso aberto
Aparece nas coleções:DEI - Artigos em atas de congressos internacionais

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