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Francesco Cappio Borlino

4 accepted papers

2022

3DOS: Towards 3D Open Set Learning - Benchmarking and Understanding Semantic Novelty Detection on Point Clouds

NeurIPS 2022accept

In recent years there has been significant progress in the field of 3D learning on classification, detection and segmentation problems. The vast majority of the existing studies focus on canonical closed-set conditions, neglecting the intrinsic open nature of the real-world. This limits the abilitie…

2022

Contrastive Learning for Cross-Domain Open World Recognition

IROS 2022poster

The ability to evolve is fundamental for any valuable autonomous agent whose knowledge cannot remain limited to that injected by the manufacturer. Consider for example a home assistant robot: it should be able to incrementally learn new object categories when requested, but also to recognize the sam…

Cited by 3SourcecodeScholar
2022

Semantic Novelty Detection via Relational Reasoning

ECCV 2022poster

"Semantic novelty detection aims at discovering unknown categories in the test data. This task is particularly relevant in safety-critical applications, such as autonomous driving or healthcare, where it is crucial to recognize unknown objects at deployment time and issue a warning to the user accor…

2020

One-Shot Unsupervised Cross-Domain Detection

ECCV 2020poster

Despite impressive progress in object detection over the last years, it is still an open challenge to reliably detect objects across visual domains. Although the topic has attracted attention recently, current approaches all rely on the ability to access a sizable amount of target data for use at tr…