arXiv:2509.17299cs.ROcs.CV2025-09中稿 · presentation at th…被引 1

用低成本摄像头自动计数珊瑚卵,提升修复效率

Automated Coral Spawn Monitoring for Reef Restoration: The Coral Spawn and Larvae Imaging Camera System (CSLICS)

  • 基于人机协作标注训练检测模型,实现自动化卵粒识别
  • 表面卵检测F1达82.4%,单次产卵节省5720小时人工
  • 适用于大规模珊瑚修复,尤其适合大堡礁等生态区

珊瑚礁修复中的水产养殖需要精确连续的产卵计数以分配资源并监测幼体健康,但现有方法耗时费力,成为生产流程的关键瓶颈。本文提出珊瑚卵与幼体成像相机系统(CSLICS),采用低成本模块化相机和通过人机协同标注训练的物体检测器,实现育苗缸中珊瑚卵的自动化检测、分类与计数。实验结果表明,不同胚胎发育阶段的表面卵检测F1得分为82.4%,水下潜伏卵检测F1为65.3%;在相同采样频率下,相比人工采样,单次产卵事件可节省5,720小时劳动时间。在大堡礁大规模产卵事件中,人工计数与CSLICS监测结果对比显示,该系统能准确评估受精成功率及水下卵粒数量。研究结果显著提升了珊瑚水产养殖效率,助力珊瑚礁修复规模扩展,应对气候变化对生态系统带来的威胁。

原文摘要 · Abstract (English)

Coral aquaculture for reef restoration requires accurate and continuous spawn counting for resource distribution and larval health monitoring, but current methods are labor-intensive and represent a critical bottleneck in the coral production pipeline. We propose the Coral Spawn and Larvae Imaging Camera System (CSLICS), which uses low cost modular cameras and object detectors trained using human-in-the-loop labeling approaches for automated spawn counting in larval rearing tanks. This paper details the system engineering, dataset collection, and computer vision techniques to detect, classify and count coral spawn. Experimental results from mass spawning events demonstrate an F1 score of 82.4% for surface spawn detection at different embryogenesis stages, 65.3% F1 score for sub-surface spawn detection, and a saving of 5,720 hours of labor per spawning event compared to manual sampling methods at the same frequency. Comparison of manual counts with CSLICS monitoring during a mass coral spawning event on the Great Barrier Reef demonstrates CSLICS' accurate measurement of fertilization success and sub-surface spawn counts. These findings enhance the coral aquaculture process and enable upscaling of coral reef restoration efforts to address climate change threats facing ecosystems like the Great Barrier Reef.

珊瑚修复计算机视觉自动化监测生态保护

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