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Marine Video Kit: A New Marine Video Dataset for Content-based Analysis and Retrieval

Authors :
Truong, Quang-Trung
Vu, Tuan-Anh
Ha, Tan-Sang
Jakub, Lokoc
Tim, Yue Him Wong
Joneja, Ajay
Yeung, Sai-Kit
Publication Year :
2022

Abstract

Effective analysis of unusual domain specific video collections represents an important practical problem, where state-of-the-art general purpose models still face limitations. Hence, it is desirable to design benchmark datasets that challenge novel powerful models for specific domains with additional constraints. It is important to remember that domain specific data may be noisier (e.g., endoscopic or underwater videos) and often require more experienced users for effective search. In this paper, we focus on single-shot videos taken from moving cameras in underwater environments, which constitute a nontrivial challenge for research purposes. The first shard of a new Marine Video Kit dataset is presented to serve for video retrieval and other computer vision challenges. Our dataset is used in a special session during Video Browser Showdown 2023. In addition to basic meta-data statistics, we present several insights based on low-level features as well as semantic annotations of selected keyframes. The analysis also contains experiments showing limitations of respected general purpose models for retrieval. Our dataset and code are publicly available at https://hkust-vgd.github.io/marinevideokit.<br />Camera Ready for MMM 2023, Bergen, Norway

Details

Language :
English
Database :
OpenAIRE
Accession number :
edsair.doi.dedup.....fd4e1b649ce796014995047c6069f9f5