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Feature Selection on Magelang Duck Egg Candling Image Using Variance Threshold Method

机译:使用方差阈值方法的Magelang鸭蛋蛋蜡像的特征选择

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Magelang ducks are the leading poultry commodity in Central Java because they have the best egg quality among other local duck eggs. Egg candling is performed to separate fertile and infertile eggs, which is limited to the accuracy of human vision. Egg sorting is carried out to increase the productivity of Magelang duck eggs. This research aims at finding the best feature in distinguishing fertile and infertile eggs using the variance threshold method with the K-Nearest Neighbor (KNN) algorithm on the Magelang duck egg candling image. The dataset used is 86 images of Magelang duck eggs with training and test data of 70:30. The characteristics used are color, shape, and texture of the Grey Level Co-Occurrence Matrix (GLCM) with 18 initial features. The research begins with image acquisition, then image pre-processing, which includes cropping, resizing, and segmentation, followed by feature extraction. After normalizing the results of feature extraction, feature selection is then performed and classified using the KNN algorithm. The highest evaluation result is 92.31% with a classification time of 0.008 seconds at a value of k=5 with features: green, roundness, variance, and standard deviation.
机译:Magelang Ducks是中爪哇省的主要家禽商品,因为它们在其他当地鸭蛋中具有最好的蛋质。蛋蜡烛是对分离的肥沃和不孕卵,这限于人类视力的准确性。进行蛋分类以提高Magelang鸭蛋的生产率。该研究旨在使用与Magelang Duck蛋蛋蜡像图像中的K-Collect邻(KNN)算法区分肥沃和不育卵的最佳特征。使用的数据集是86个Magelang鸭蛋鸡蛋图像,培训和测试数据为70:30。使用的特性是具有18个初始特征的灰度共存矩阵(GLCM)的颜色,形状和纹理。该研究开始于图像采集,然后是图像预处理,包括裁剪,调整大小和分割,然后是特征提取。在归一化特征提取结果之后,然后使用KNN算法执行和分类特征选择。最高评估结果为92.31%,分类时间为0.008秒,值为k = 5,功能:绿色,圆度,方差和标准偏差。

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