Bio-inspired Vision Fusion for Quality Assessment of Harumanis Mangoes

F. Saad, A. Y. Shakaff, A. Zakaria, M. Abdullah, A. H. Adom
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引用次数: 12

Abstract

The perceived quality of fruits, such as mangoes, is greatly dependent on many parameters such as ripeness, aroma, firmness, shape, size, and is influenced by other factors such as harvesting time. Unfortunately, a manual fruit grading has several drawbacks such as subjectivity, tediousness and inconsistency. By automating the procedure, as well as developing new classification technique, it may solve these problems. This paper presents the novel work on the bio-inspired multi-modality sensing system for classification and quality assessment of mangoes cv. Harumanis Mango using charge coupled device (CCD) camera and Infrared (IR) camera. A Fourier-based shape separation method was developed from CCD camera images to grade mango by its shape and able to correctly classify 100%. Colour intensity from infrared image was used to distinguish and classify the level of maturity and ripeness of the fruits. The finding shows 92% correct classification of maturity levels by using infrared vision.
基于仿生视觉融合的芒果品质评价
水果(如芒果)的感知质量在很大程度上取决于许多参数,如成熟度、香气、硬度、形状、大小,并受到收获时间等其他因素的影响。不幸的是,人工水果分级有几个缺点,如主观性,繁琐和不一致。通过自动化过程和开发新的分类技术,可以解决这些问题。本文介绍了基于多模态传感的芒果品种分类与质量评价系统的研究进展。Harumanis芒果采用电荷耦合器件(CCD)相机和红外(IR)相机。提出了一种基于傅里叶的形状分离方法,利用CCD相机图像对芒果进行形状分级,正确率达到100%。利用红外图像的颜色强度对果实的成熟度和成熟度进行区分和分类。研究结果表明,利用红外视觉对成熟度进行分类的正确率为92%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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