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Overcoming Catastrophic Forgetting in Incremental Object Detection via Elastic Response Distillation

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arxiv 2204.02136 v1 pith:H6HA2YCJ submitted 2022-04-05 cs.CV

classification cs.CV
keywords incrementaldistillationresponsescatastrophicdetectionelasticforgettingknowledge
verification ladder T0 review T1 audit T2 compute T3 formal
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Traditional object detectors are ill-equipped for incremental learning. However, fine-tuning directly on a well-trained detection model with only new data will lead to catastrophic forgetting. Knowledge distillation is a flexible way to mitigate catastrophic forgetting. In Incremental Object Detection (IOD), previous work mainly focuses on distilling for the combination of features and responses. However, they under-explore the information that contains in responses. In this paper, we propose a response-based incremental distillation method, dubbed Elastic Response Distillation (ERD), which focuses on elastically learning responses from the classification head and the regression head. Firstly, our method transfers category knowledge while equipping student detector with the ability to retain localization information during incremental learning. In addition, we further evaluate the quality of all locations and provide valuable responses by the Elastic Response Selection (ERS) strategy. Finally, we elucidate that the knowledge from different responses should be assigned with different importance during incremental distillation. Extensive experiments conducted on MS COCO demonstrate our method achieves state-of-the-art result, which substantially narrows the performance gap towards full training.

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    A solicited SKA science chapter reviewing how bent-tail and winged radio galaxies will be identified and studied with SKA continuum surveys; no new data or derivations are presented.

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