A Review of the Literature on Arecanut Sorting and Grading Using Computer Vision and Image Processing

Satheesha K. M., Rajanna K. S., K. K
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Abstract

Background/Purpose: These days, the involvement of computer science in agriculture and food science is expanding. Classification and fault identification of diverse products employ a variety of Artificial Intelligence (AI), soft computing approaches, and methodologies, which contribute to higher-quality products for consumers. The position of Arecanuts in the international and Indian markets, as well as the application of computer vision and image processing to a system for categorizing and grading Arecanuts, are the main topics of this article. Objective: The development of a system for the automated categorization of Arecanut using images is limited by difficulties. To assess the value of computer vision application for Arecanut, it is critical to taken as account the traditional and economic significance of Arecanut. Design/Methodology/Approach: Several types of Arecanut are prone to great variation in color, texture, and form depending on the category and the area in which they are cultivated. Arecanuts are processed utilizing a variety of techniques, with an emphasis on the finished product's exterior. Here, the color, size, and texture of Arecanut are used to construct a classification or grading system. Findings/Result: With reference to the cited significant work that has been done on other fruits as well as Arecanuts from the standpoint of computer vision. This article provided a thorough introduction to Arecanuts, computer vision, and the uses and benefits of vision-aided technologies in the grading of Arecanuts and categorization. Result Limitations/Implications: This review is based on the detection and classification of the Arecanuts done using computer vision and AI techniques. Originality Value: Several inline resources including review papers on Arecanut, research articles, technical books, and website resources. Paper Type: Literature Review paper on smart auto Arecanut Sorting and Grading of Arecanut using Computer Vision and Image Processing
基于计算机视觉和图像处理的槟榔分类与分级研究综述
背景/目的:如今,计算机科学在农业和食品科学中的应用正在扩大。不同产品的分类和故障识别采用各种人工智能(AI)、软计算方法和方法,这有助于为消费者提供更高质量的产品。槟榔在国际和印度市场的地位,以及计算机视觉和图像处理在槟榔分类和分级系统中的应用,是本文的主要主题。目的:开发一种基于图像的槟榔自动分类系统存在一定困难。要评估槟榔的计算机视觉应用价值,必须综合考虑槟榔的传统意义和经济意义。设计/方法/方法:几种类型的槟榔在颜色、质地和形状上都有很大的变化,这取决于它们的种类和种植区域。槟榔是利用各种技术加工的,重点是成品的外观。在这里,槟榔的颜色、大小和质地被用来构建一个分类或分级系统。发现/结果:参考了从计算机视觉的角度对其他水果和槟榔所做的重要工作。本文全面介绍了槟榔、计算机视觉,以及视觉辅助技术在槟榔分级和分类中的用途和好处。局限性/意义:本综述基于使用计算机视觉和人工智能技术对槟榔进行的检测和分类。原创性价值:一些内联资源,包括关于槟榔的评论论文、研究文章、技术书籍和网站资源。论文类型:基于计算机视觉和图像处理的槟榔智能自动分拣分级的文献综述论文
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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