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MODELS IN PHYSICS AND TECHNOLOGY
Analysis of mixed reality cross-device global localization algorithms based on point cloud registration
A. A. Osipov, M. A. Ostanin, A. S. Klimchik Innopolis University,
1 Universitetskaya st., Innopolis, 420500, Russia
Abstract:
State-of-the-art localization and mapping approaches for augmented (AR) and mixed (MR) reality devices are based on the extraction of local features from the camera. Along with this, modern AR/MR devices allow you to build a three-dimensional mesh of the surrounding space. However, the existing methods do not solve the problem of global device co-localization due to the use of different methods for extracting computer vision features. Using a space map from a 3D mesh, we can solve the problem of collaborative global localization of AR/MR devices. This approach is independent of the type of feature descriptors and localisation and mapping algorithms used onboard the AR/MR device. The mesh can be reduced to a point cloud, which consists of only the vertices of the mesh. We propose an approach for collaborative localization of AR/MR devices using point clouds that are independent of algorithms onboard the device. We have analyzed various point cloud registration algorithms and discussed their limitations for the problem of global co-localization of AR/MR devices indoors.
Keywords:
co-localization, augmented and mixed reality, point cloud registration.
Received: 25.10.2022 Revised: 04.02.2023 Accepted: 26.04.2023
Citation:
A. A. Osipov, M. A. Ostanin, A. S. Klimchik, “Analysis of mixed reality cross-device global localization algorithms based on point cloud registration”, Computer Research and Modeling, 15:3 (2023), 657–674
Linking options:
https://www.mathnet.ru/eng/crm1081 https://www.mathnet.ru/eng/crm/v15/i3/p657
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Abstract page: | 62 | Full-text PDF : | 8 | References: | 16 |
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