Data storage for efficient knowledge distillation in object detectors

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초록

While the knowledge storage distillation method has proven effective in image classification, object detection is a considerably more complex task with numerous candidate bounding boxes. In this paper, we show that only a select few of these numerous candidate bounding boxes are pivotal for effective knowledge distillation. Consequently, we introduce a novel method that stores the features of important bounding boxes, selected based on their quality scores, and employs these features for learning using quality score-based masks. Through experiments, we demonstrate that our method significantly reduces computational overhead while preserving performance. © 2023 IEEE.

키워드

Knowledge distillationobject detection
제목
Data storage for efficient knowledge distillation in object detectors
저자
Son, SuhoSong, Byung Cheol
DOI
10.1109/ICCE-Asia59966.2023.10326441
발행일
2023
유형
Conference paper
저널명
2023 IEEE International Conference on Consumer Electronics-Asia, ICCE-Asia 2023