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A statistical approach in enhancing the volume prediction of ellipsoidal ham

机译:提高椭圆素火腿体积预测的统计方法

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摘要

In literature, there exist many attempts to determine the surface area and volume of an irregular object using automated image processing techniques. This paper expanded previous work on predicting the volume of ellipsoidal hams by using both image processing techniques and numerical methods. Novel algorithms were proposed to improve the prediction accuracy and robustness of the volume estimation mechanism. Particularly, the work focused on the ham's position in the horizontal viewpoint. An industrial robotic arm was utilized to lift the ham object and rotate it at a fixed controlled speed to maximize data consistency. Then, a Mask Region-based convolutional neural network approach was used to extract the ham object's features. Experiments were conducted on 16 newly collected ham datasets. In this paper, performance comparisons between this and the previous work were reported and detailed analyses presented. Particularly, three numerical algorithms (i.e., based on the minor axis, Y-direction, and k-nearest neighbor) were introduced to enhance volume prediction in the two databases. The new algorithm exhibited a 27% higher performance than that of the previous work's algorithm. Related theoretical and conceptual frameworks were discussed to further provide evidence and insights on the proposed mechanism.
机译:在文献中,存在许多尝试使用自动图像处理技术确定不规则对象的表面积和体积。本文通过使用两种图像处理技术和数值方法,扩展了先前的研究预测椭圆火腿的体积。提出了新的算法,提高了体积估计机制的预测精度和鲁棒性。特别是,工作集中在水平观点中的火腿的位置。使用工业机器人臂用于抬起火腿物体并以固定的控制速度旋转,以最大化数据一致性。然后,使用基于掩模区域的卷积神经网络方法来提取火腿对象的特征。在16个新收集的火腿数据集进行实验。在本文中,报告了绩效比较和上一项工作的比较,并提出了详细的分析。特别地,引入了三个数值算法(即,基于次轴,Y方向和k最近邻居)以增强两个数据库中的体积预测。新算法表现比上一项工作算法的表现高27%。讨论了相关的理论和概念框架,以进一步为提出机制提供证据和见解。

著录项

  • 来源
    《Journal of food engineering》 |2021年第2期|110186.1-110186.15|共15页
  • 作者单位

    Natl Taipei Univ Nursing & Hlth Sci Res Ctr Healthcare Ind Innovat Taipei Taiwan;

    Xiamen Univ Malaysia Sch Elect & Comp Engn Jalan Sunsuria Sepang Selangor Malaysia;

    Xiamen Univ Malaysia Sch Elect & Comp Engn Jalan Sunsuria Sepang Selangor Malaysia;

    Xiamen Univ Malaysia Sch Elect & Comp Engn Jalan Sunsuria Sepang Selangor Malaysia;

    Natl Univ Tainan Dept Appl Math Tainan Taiwan;

    Feng Chia Univ Dept Elect Engn Taichung Taiwan;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Mask R-CNN; Ham; Numerical algorithm; Volume;

    机译:面膜R-CNN;火腿;数值算法;体积;

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