Rezky Andrean Nugraha, Eka Wahyu Hidayat, Rahmi Nur Shofa
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摘要

番石榴果实的成熟程度可以通过观察各种因素来确定。形状是识别特定物体的因素之一。番石榴的分类可以从形状、质地和颜色上看出来。番石榴的形状非常多样,从圆形(圆形)到椭圆形(梨形)。因此,构建了一个Matlab应用程序,根据番石榴的颜色、形状和纹理来确定番石榴的类型。K-Nearest Neighbor可以基于最接近对象的学习数据对对象进行分类,从而使结果更加准确。主成分分析(PCA)是一种将多维数据集简化为较低维度(提取特征)的统计技术。k -最近邻与主成分分析相结合,对总共45张图像的番石榴类型判断具有相当高的准确性,并将其分为两个数据,包括训练数据共36张番石榴数据和测试数据共9张番石榴数据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Klasifikasi Jenis Buah Jambu Biji Menggunakan Algoritma Principal Component Analysis dan K-Nearest Neighbor
The maturity level of guava fruit can be determined by looking at various factors. Shape is one of the factors that play a role in identifying certain objects. The classification of guava fruit can be seen from the shape, texture and color. The shape of the guava fruit is quite diverse ranging from round (Round shape) to oval (Pear shape). So a Matlab application was built to determine the type of guava based on its color, shape and texture. K-Nearest Neighbor can classify objects based on learning data that is closest to the object so that the results can be more accurate. Principal Component Analysis (PCA) is a statistical technique for simplifying many-dimensional data sets into lower dimensions (extration features). The combination of K-Nearest Neighbor with Principal Component Analysis produces a fairly high accuracy for determining the type of guava using a total of 45 images and divided into two data including training data with a total of 36 guava data and test data with a total of 9 guava data.
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