使用 CCA 和 DBSCAN 方法对基于数字图像处理的虾进行尺寸聚类

Adri Priadana, Ari Murdiyanto
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引用次数: 0

摘要

养殖虾的质量有几个标准,其中之一是虾的大小。虾的选择由承包商在收获时根据虾的大小进行分组。本研究旨在利用数字图像处理技术,采用连通成分分析法(CCA)和基于密度的噪声空间聚类法(DBSCAN),根据虾的大小进行聚类。虾群图像由数码相机拍摄,光照强度为 1200-3200 勒克斯。聚类结果与两位专家通过直接观察得出的聚类结果进行了比较,两位专家的准确率分别为 79.81 % 和 72.99 %,因此该方法的平均准确率为 76.4 %。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Klasterisasi udang berdasarkan ukuran berbasis pemrosesan citra digital menggunakan metode CCA dan DBSCAN
The quality of farmed shrimps has several criteria, one of which is shrimp size. The shrimp selection was carried out by the contractor at the harvest time by grouping the shrimp based on their size. This study aims to apply digital image processing for shrimp clustering based on size using the connected component analysis (CCA) and density-based spatial clustering of applications with noise (DBSCAN) methods. Shrimp group images were taken with a digital camera at a light intensity of 1200-3200 lux. The clustering results were compared with clustering from direct observation by two experts, each of which obtained an accuracy of 79.81 % and 72.99 % so that the average accuracy of the method was 76.4 %.
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