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AutoMRM: A Model Retrieval Method Based on Multimodal Query and Meta-learning

  • Beihang University

科研成果: 书/报告/会议事项章节会议稿件同行评审

摘要

With more and more Deep Neural Network (DNN) models are publicly available on model sharing platforms (e.g., HuggingFace), model reuse has become a promising way in practice to improve the efficiency of DNN model construction by avoiding the costs of model training. To that end, a pivotal step for model reuse is model retrieval, which facilitates discovering suitable models from a model hub that match the requirements of users. However, the existing model retrieval methods have inadequate performance and efficiency, since they focus on matching user requirements with the model names, and thus cannot work well for high-dimensional data such as images. In this paper, we propose a user-task-centric multimodal model retrieval method named AutoMRM. AutoMRM can retrieve DNN models suitable for the user's task according to both the dataset and description of the task. Moreover, AutoMRM utilizes meta-learning to retrieve models for previously unseen task queries. Specifically, given a task, AutoMRM extracts the latent meta-features from the dataset and description for training meta-learners offline and obtaining the representation of user task queries online. Experimental results demonstrate that AutoMRM outperforms existing model retrieval methods including the state-of-the-art method in both effectiveness and efficiency.

源语言英语
主期刊名CIKM 2023 - Proceedings of the 32nd ACM International Conference on Information and Knowledge Management
出版商Association for Computing Machinery
1228-1237
页数10
ISBN(电子版)9798400701245
DOI
出版状态已出版 - 21 10月 2023
活动32nd ACM International Conference on Information and Knowledge Management, CIKM 2023 - Birmingham, 英国
期限: 21 10月 202325 10月 2023

出版系列

姓名International Conference on Information and Knowledge Management, Proceedings

会议

会议32nd ACM International Conference on Information and Knowledge Management, CIKM 2023
国家/地区英国
Birmingham
时期21/10/2325/10/23

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