基于三次样条插值的计算机视觉测量轴对称食品体积的新框架

J. Siswantoro, Endah Asmawati
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引用次数: 8

摘要

体积是决定食品外部质量的重要因素。食品的体积测量如果是手工进行的,就不是一个简单的过程。作为替代方案,已经提出了几种使用2D和3D计算机视觉的食品体积测量方法。圆盘法和锥台法在许多二维计算机视觉中被应用于轴对称食品的体积近似。这些方法采用分段线性函数逼近目标边界,精度较低。本文提出了一种基于三次样条插值的轴对称食品体积测量新框架。采用三次样条插值法从图像中构造目标边界的分段连续多项式。然后对多项式进行积分以近似计算物体的体积。仿真结果表明,该框架能产生准确的体积测量结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A new framework for measuring volume of axisymmetric food products using computer vision system based on cubic spline interpolation
Volume is an important factor to determine the external quality of a food product. The volume measurement of food product is not a simple process if it is performed manually. For alternative, several volume measurement methods for food products have been proposed using 2D and 3D computer vision. Disk method and frustum cone method have been applied in many 2D computer visions to approximate the volume of axisymmetric food products. These methods were less in accuracy, since it used piecewise linear function to approximate the boundary of the object. This paper aims to propose a new framework for measuring the volume of axisymmetric food product based on cubic spline interpolation. Cubic spline interpolation is employed to construct a piecewise continuous polynomial of the boundary of object from captured image. The polynomial is then integrated to approximate the volume of the object. The simulation result shows that the proposed framework produced accurate volume measurement result.
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