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Classification of Fruits Using Computer Vision and a Multiclass Support Vector Machine

机译:使用计算机视觉和多类支持向量机对水果进行分类

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摘要

Automatic classification of fruits via computer vision is still a complicated task due to the various properties of numerous types of fruits. We propose a novel classification method based on a multi-class kernel support vector machine (kSVM) with the desirable goal of accurate and fast classification of fruits. First, fruit images were acquired by a digital camera, and then the background of each image was removed by a split-and-merge algorithm; Second, the color histogram, texture and shape features of each fruit image were extracted to compose a feature space; Third, principal component analysis (PCA) was used to reduce the dimensions of feature space; Finally, three kinds of multi-class SVMs were constructed, i.e., Winner-Takes-All SVM, Max-Wins-Voting SVM, and Directed Acyclic Graph SVM. Meanwhile, three kinds of kernels were chosen, i.e., linear kernel, Homogeneous Polynomial kernel, and Gaussian Radial Basis kernel; finally, the SVMs were trained using 5-fold stratified cross validation with the reduced feature vectors as input. The experimental results demonstrated that the Max-Wins-Voting SVM with Gaussian Radial Basis kernel achieves the best classification accuracy of 88.2%. For computation time, the Directed Acyclic Graph SVMs performs swiftest.
机译:由于多种类型的水果的各种特性,通过计算机视觉对水果进行自动分类仍然是一项复杂的任务。我们提出了一种基于多类核支持向量机(kSVM)的新颖分类方法,其目标是对水果进行准确,快速的分类。首先,通过数码相机获取水果图像,然后通过拆分和合并算法去除每个图像的背景;其次,提取每个水果图像的颜色直方图,纹理和形状特征,以组成特征空间。第三,使用主成分分析(PCA)来减少特征空间的尺寸。最后,构建了三种多类SVM,即Winner-Takes-All SVM,Max-Wins-Voting SVM和有向无环图SVM。同时,选择了三种核,即线性核,齐次多项式核和高斯径向基核。最后,使用减少特征向量作为输入的5倍分层交叉验证对SVM进行训练。实验结果表明,采用高斯径向基核的Max-Wins-Voting支持向量机实现了88.2%的最佳分类精度。对于计算时间,有向无环图SVM执行最快。

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