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Towards Automated Annotation of Benthic Survey Images: Variability of Human Experts and Operational Modes of Automation

机译:走向底栖调查图像的自动注释:人类专家的可变性和自动化的操作模式

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摘要

Global climate change and other anthropogenic stressors have heightened the need to rapidly characterize ecological changes in marine benthic communities across large scales. Digital photography enables rapid collection of survey images to meet this need, but the subsequent image annotation is typically a time consuming, manual task. We investigated the feasibility of using automated point-annotation to expedite cover estimation of the 17 dominant benthic categories from survey-images captured at four Pacific coral reefs. Inter- and intra- annotator variability among six human experts was quantified and compared to semi- and fully- automated annotation methods, which are made available at . Our results indicate high expert agreement for identification of coral genera, but lower agreement for algal functional groups, in particular between turf algae and crustose coralline algae. This indicates the need for unequivocal definitions of algal groups, careful training of multiple annotators, and enhanced imaging technology. Semi-automated annotation, where 50% of the annotation decisions were performed automatically, yielded cover estimate errors comparable to those of the human experts. Furthermore, fully-automated annotation yielded rapid, unbiased cover estimates but with increased variance. These results show that automated annotation can increase spatial coverage and decrease time and financial outlay for image-based reef surveys.
机译:全球气候变化和其他人为压力因素使人们更加需要迅速地大规模地表征海洋底栖生物群落的生态变化。数字摄影可以快速收集调查图像以满足这一需求,但是后续的图像注释通常是一项耗时的手动任务。我们调查了使用自动点注释从覆盖四个太平洋珊瑚礁的调查图像中快速评估17个主要底栖生物类别的可行性。量化了六位人类专家在批注者之间和批注者内部的变异性,并将其与半自动和全自动注释方法进行了比较,该方法可在网站上获得。我们的结果表明,鉴定珊瑚属的专家意见很高,但对于藻类功能群的认同较低,尤其是在草皮藻类和c壳珊瑚藻类之间。这表明需要明确定义藻类,仔细训练多个注释者并增强成像技术。半自动注释,其中50%的注释决定是自动执行的,产生的覆盖率估计误差与人类专家的相当。此外,全自动注释产生了快速,公正的覆盖率估计,但方差增加。这些结果表明,对于基于图像的珊瑚礁调查,自动注释可以增加空间覆盖范围,并减少时间和财务支出。

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