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  1. Pubblicazioni

Improving Indoor Semantic Segmentation with Boundary-level Objectives

Contributo in Atti di convegno
Data di Pubblicazione:
2021
Citazione:
Improving Indoor Semantic Segmentation with Boundary-level Objectives / Amoroso, Roberto; Baraldi, Lorenzo; Cucchiara, Rita. - 12862:(2021), pp. 318-329. ( 16th International Work-Conference on Artificial Neural Networks, IWANN 2021 Online June 16-18, 2021) [10.1007/978-3-030-85099-9_26].
Abstract:
While most of the recent literature on semantic segmentation has focused on outdoor scenarios, the generation of accurate indoor segmentation maps has been partially under-investigated, although being a relevant task with applications in augmented reality, image retrieval, and personalized robotics. With the goal of increasing the accuracy of semantic segmentation in indoor scenarios, we develop and propose two novel boundary-level training objectives, which foster the generation of accurate boundaries between different semantic classes. In particular, we take inspiration from the Boundary and Active Boundary losses, two recent proposals which deal with the prediction of semantic boundaries, and propose modified geometric distance functions that improve predictions at the boundary level. Through experiments on the NYUDv2 dataset, we assess the appropriateness of our proposal in terms of accuracy and quality of boundary prediction and demonstrate its accuracy gain.
Tipologia CRIS:
Relazione in Atti di Convegno
Keywords:
Indoor scene understanding, Segmentation, Boundary losses
Elenco autori:
Amoroso, Roberto; Baraldi, Lorenzo; Cucchiara, Rita
Autori di Ateneo:
BARALDI LORENZO
CUCCHIARA Rita
Link alla scheda completa:
https://iris.unimore.it/handle/11380/1246075
Link al Full Text:
https://iris.unimore.it//retrieve/handle/11380/1246075/371259/IWANN_2021_05_10_Improving_Indoor_Semantic_Segmentation_with_Boundary_level_Objectives.pdf
Titolo del libro:
Proceedings of the 16th International Work-conference on Artificial Neural Networks
Pubblicato in:
LECTURE NOTES IN COMPUTER SCIENCE
Journal
LECTURE NOTES IN COMPUTER SCIENCE
Series
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