基于k-最近邻(K-NN)算法的灰度共生矩阵(GLCM)特征提取的人脸类型鸟类分类

Daurat Sinaga, Feri Agustina, Noor Ageng Setiyanto, S. Suprayogi, Cahaya Jatmoko
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引用次数: 0

摘要

印度尼西亚是世界上动物资源最丰富的国家之一。各种各样的动物分布在印度尼西亚各地。一种拥有的动物群是一种鸟类动物。鸟类通常被当作宠物饲养,因为它们具有独特的面部声音和身体特征。本研究采用基于k-最近邻(K-NN)算法的灰度共生矩阵(GLCM)。本研究使用的数据为66张图像,分为两部分,即55张训练数据和11张测试数据。本研究使用的特征值的计算是基于GLCM特征提取的值,如:对比度、相关性、能量、均匀性和熵,这些特征值将在随后使用k-最近邻(K-NN)算法和欧几里登距离计算。从K-最近邻(K- nn)分类过程的结果来看,K = 1和0°度处的准确率最高,为54.54%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Classification of Bird Based on Face Types Using Gray Level Co-Occurrence Matrix (GLCM) Feature Extraction Based on the k-Nearest Neighbor (K-NN) Algorithm
Indonesia is one of the countries with a large number of fauna wealth. Various types of fauna that exist are scattered throughout Indonesia. One type of fauna that is owned is a type of bird animal. Birds are often bred as pets because of their characteristic facial voice and body features. In this study, using the Gray Level Co-Occurrence Matrix (GLCM) based on the k-Nearest Neighbor (K-NN) algorithm. The data used in this study were 66 images which were divided into two, namely 55 training data and 11 testing data. The calculation of the feature value used in this study is based on the value of the GLCM feature extraction such as: contrast, correlation, energy, homogeneity and entropy which will later be calculated using the k-Nearest Neighbor (K-NN) algorithm and Eucliden Distance. From the results of the classification process using k-Nearest Neighbor (K-NN), it is found that the highest accuracy results lie at the value of K = 1 and at an degree of 0 ° of 54.54%.
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