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ODIP: Towards Automatic Adaptation for Object Detection by Interactive Perception

2021-08-03 13:06:32
Tung-I Chen, Jen-Wei Wang, Winston H. Hsu

Abstract

Object detection plays a deep role in visual systems by identifying instances for downstream algorithms. In industrial scenarios, however, a slight change in manufacturing systems would lead to costly data re-collection and human annotation processes to re-train models. Existing solutions such as semi-supervised and few-shot methods either rely on numerous human annotations or suffer low performance. In this work, we explore a novel object detector based on interactive perception (ODIP), which can be adapted to novel domains in an automated manner. By interacting with a grasping system, ODIP accumulates visual observations of novel objects, learning to identify previously unseen instances without human-annotated data. Extensive experiments show ODIP outperforms both the generic object detector and state-of-the-art few-shot object detector fine-tuned in traditional manners. A demo video is provided to further illustrate the idea.

Abstract (translated)

URL

https://arxiv.org/abs/2108.01477

PDF

https://arxiv.org/pdf/2108.01477.pdf


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