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Assessing the state of maturation of the pineapple in its perolera variety using computer vision techniques

机译:使用计算机视觉技术评估菠萝中菠萝成熟状态

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Computer vision systems allow identifying physical characteristics and product defects in a non-invasive and reliable form. Due to these advantages, computer vision systems have been widely accepted in the agricultural and food industries, since these industries require a high demand for objectivity, consistency and efficiency in the quality control of the product, requirements that can be met by the computer vision systems. This paper proposes a method for automatically evaluate the state of maturation of the perolera variety pineapple (Ananas Comosus) in post-harvest using computer vision techniques. The proposed evaluation procedure is implemented through a digital color-image processing based on the stages of preprocessing, segmentation, feature extraction and statistical classification. For this purpose we use images in the HSV color space, segmentation by automatic thresholding using Otsu's method, the first-order moment of the distributions of the H and S planes as features, and the Modified Basic Sequential Algorithmic Scheme (MBSAS). 1320 images were utilized, which 770 images were used in the process of training and 550images in the evaluation process. The results of the evaluation procedure proposed in this paper were compared with the value judgment of three experts, showing that this algorithm has efficiency in the assessment close to 96.36%.
机译:计算机视觉系统允许以非侵入性和可靠的形式识别物理特性和产品缺陷。由于这些优点,计算机视觉系统已被广泛接受农业和食品工业,因为这些行业需要高度要求对产品质量控制的客观性,一致性和效率,计算机视觉系统可以满足的要求。本文提出了一种使用计算机视觉技术自动评估利用后收获后的Merolera品种菠萝(Ananas Comosus)的成熟状态。所提出的评估程序是通过基于预处理,分割,特征提取和统计分类的阶段的数字颜色图像处理来实现。为此目的,我们在HSV颜色空间中使用图像,通过使用OTSU的方法自动阈值平衡,分布的一阶时刻和S平面的分布,以及修改的基本顺序算法方案(MBSA)。利用了1320个图像,在评估过程中,在训练过程中使用770个图像和5550图像。本文提出的评价程序的结果与三位专家的价值判断进行了比较,表明该算法在评估中具有效率,接近96.36%。

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