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基于掩蔽 K-均值算法和侧窗滤波器的虾苗光学计数平台。

Optical counting platform of shrimp larvae using masked k-means and a side window filter.

出版信息

Appl Opt. 2024 Feb 20;63(6):A7-A15. doi: 10.1364/AO.502868.

Abstract

Accurate and efficient counting of shrimp larvae is crucial for monitoring reproduction patterns, assessing growth rates, and evaluating the performance of aquaculture. Traditional methods via density estimation are ineffective in the case of high density. In addition, the image contains bright spots utilizing the point light source or the line light source. Therefore, in this paper an automated shrimp counting platform based on optics and image processing is designed to complete the task of counting shrimp larvae. First, an area light source ensures a uniformly illuminated environment, which helps to obtain shrimp images with high resolution. Then, a counting algorithm based on improved -means and a side window filter (SWF) is designed to achieve an accurate number of shrimp in the lamp house. Specifically, the SWF technique is introduced to preserve the body contour of shrimp larvae, and eliminate noise, such as water impurities and eyes of shrimp larvae. Finally, shrimp larvae are divided into two groups, independent and interdependent, and counted separately. Experimental results show that the designed optical counting system is excellent in terms of visual effect and objective evaluation.

摘要

准确、高效地计算虾苗数量对于监测繁殖模式、评估生长速度和评估水产养殖性能至关重要。在高密度情况下,传统的密度估计方法效果不佳。此外,图像中存在利用点光源或线光源产生的亮斑。因此,本文设计了一种基于光学和图像处理的自动化虾苗计数平台,以完成虾苗计数任务。首先,采用面光源保证了均匀的光照环境,有助于获得高分辨率的虾苗图像。然后,设计了一种基于改进均值和侧窗滤波器 (SWF) 的计数算法,以实现灯室内虾苗数量的精确计数。具体来说,引入 SWF 技术来保留虾苗的身体轮廓,并消除水杂质和虾苗眼睛等噪声。最后,将虾苗分为独立和相互依赖两组,分别进行计数。实验结果表明,设计的光学计数系统在视觉效果和客观评价方面表现出色。

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