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交互式人工智能驱动的鱼类年龄读取平台。

An interactive AI-driven platform for fish age reading.

机构信息

Thünen Institute of Sea Fisheries, Bremerhaven, Germany.

School of Science and Engineering, Constructor University, Bremen, Germany.

出版信息

PLoS One. 2024 Nov 18;19(11):e0313934. doi: 10.1371/journal.pone.0313934. eCollection 2024.

Abstract

Fish age is an important biological variable required as part of routine stock assessment and analysis of fish population dynamics. Age estimates are traditionally obtained by human experts from the count of ring-like patterns along calcified structures such as otoliths. To automate the process and minimize human bias, modern methods have been designed utilizing the advances in the field of artificial intelligence (AI). While many AI-based methods have been shown to attain satisfactory accuracy, there are concerns regarding the lack of explainability of some early implementations. Consequently, new explainable AI-based approaches based on U-Net and Mask R-CNN have been recently published having direct compatibility with traditional ring counting procedures. Here we further extend this endeavor by creating an interactive website housing these explainable AI methods allowing age readers to be directly involved in the AI training and development. An important aspect of the platform presented in this article is that it allows the additional use of different advanced concepts of Machine Learning (ML) such as transfer learning, ensemble learning and continual learning, which are all shown to be effective in this study.

摘要

鱼类年龄是常规种群评估和鱼类种群动态分析所必需的重要生物学变量。年龄估计传统上是由人类专家通过计算耳石等钙化结构上的环状图案来获得的。为了实现自动化并最大程度地减少人为偏见,已经利用人工智能 (AI) 领域的进步设计了现代方法。虽然许多基于 AI 的方法已经被证明具有令人满意的准确性,但人们担心一些早期实现缺乏可解释性。因此,最近发布了基于 U-Net 和 Mask R-CNN 的新的可解释 AI 方法,这些方法与传统的环计数程序具有直接兼容性。在这里,我们通过创建一个可容纳这些可解释 AI 方法的交互式网站进一步扩展了这项工作,该网站允许年龄读取器直接参与 AI 培训和开发。本文提出的平台的一个重要方面是,它允许额外使用机器学习 (ML) 的不同高级概念,例如迁移学习、集成学习和持续学习,在本研究中都被证明是有效的。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e9b5/11573220/525d20db3280/pone.0313934.g001.jpg

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