3D-PSRNet: Part Segmented 3D Point Cloud Reconstruction From a Single Image
September 30, 2018 ยท Entered Twilight ยท ๐ ECCV Workshops
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Repo contents: LICENSE, README.md, images, makefile, metrics.py, scripts, train.py, utils
Authors
Priyanka Mandikal, Navaneet K L, R. Venkatesh Babu
arXiv ID
1810.00461
Category
cs.CV: Computer Vision
Citations
47
Venue
ECCV Workshops
Repository
https://github.com/val-iisc/3d-psrnet
โญ 24
Last Checked
1 month ago
Abstract
We propose a mechanism to reconstruct part annotated 3D point clouds of objects given just a single input image. We demonstrate that jointly training for both reconstruction and segmentation leads to improved performance in both the tasks, when compared to training for each task individually. The key idea is to propagate information from each task so as to aid the other during the training procedure. Towards this end, we introduce a location-aware segmentation loss in the training regime. We empirically show the effectiveness of the proposed loss in generating more faithful part reconstructions while also improving segmentation accuracy. We thoroughly evaluate the proposed approach on different object categories from the ShapeNet dataset to obtain improved results in reconstruction as well as segmentation.
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