Metode Moment Invariant Geometrik untuk Menganalisis Jenis Daging Babi dan Daging Sapi

Oky Dwi Nurhayati, Isti Pudji Hastuti
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引用次数: 1

Abstract

Beef needs have increased every year. So as the need for expensive beef even at certain times tends to rise. This is used by cheat seller to mix beef with pork because pork is relatively cheaper. This is very detrimental to consumers. Visually, many peoples (consumers) couldn’t distinguish these two types of meat. Hence, we conduct research to distinguish both types of meat.  One way to overcome these problems is the use of complete image processing techniques. The aim of this research was establised an application prototype to distinguish beef and pork with image processing techniques. Image processing method is used to distinguish the types of meat done by pre-processing, segmentation, feature extraction with geometrical moment invariant and K-NN classification. Geometric moment invariant method proposed to analyze beef and pork is done by extracting unique values from each images. This method can be used as a description of the form based on the moment theory. The results showed that the image processing method and K-NN classification with a value of k = 3 used in the research could significantly  used to analyze the type of meat namely beef and pork. The other difference can be shown from the phi moment invariant value, especially the value of phi (1) and phi (2) 
分析猪肉和牛肉种类的几何微分方法
牛肉的需求每年都在增加。因此,即使在某些时候,对昂贵牛肉的需求也会上升。因为猪肉相对便宜,所以骗子会用这个来把牛肉和猪肉混在一起。这对消费者非常不利。从视觉上看,许多人(消费者)无法区分这两种肉。因此,我们进行研究来区分这两种类型的肉。克服这些问题的一种方法是使用完整的图像处理技术。本研究的目的是建立一个应用原型,以图像处理技术区分牛肉和猪肉。采用图像处理方法,通过预处理、分割、几何矩不变特征提取和K-NN分类来区分肉的种类。提出了一种基于几何矩不变的牛肉和猪肉图像分析方法。这种方法可以作为一种基于矩理论的形式描述。结果表明,研究中使用的图像处理方法和k = 3的k - nn分类可以显著地用于分析肉类类型,即牛肉和猪肉。另一个区别可以从矩不变值,特别是(1)和(2)的值来表示
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