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Application of Image Processing and Computer Vision on Rice Seed Germination Analysis

机译:图像处理和计算机视觉技术在水稻种子萌发分析中的应用

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摘要

This paper presents a machine vision application designed for rice seed germination analysis by using image processing and computer vision technology. The application is called "Rice Seed Germination Analysis (RSGA)". RSGA consists of five main processing modules which are image acquisition, image preprocessing, feature extraction, quality control analysis and quality results. The experiments is conducted on six variation Thai rice seed species of CP111, RD41, Chiang Phatthalung, Sang Yod Phattalung, Phitsanulok 2 and Chai Nat 1 in Bangkok and Chiangmai province of Thailand. RSGA extracts four main features which are color, size, shape, and texture. Then, RSGA applies Artificial Neural Network techniques in crop germination prediction. The precision rate is 93.06 percent, with the speed 8.31 seconds per image.
机译:本文介绍了一种通过图像处理和计算机视觉技术设计用于水稻种子发芽分析的机器视觉应用程序。该应用程序称为“大米种子发芽分析(RSGA)”。 RSGA由五个主要处理模块组成,分别是图像采集,图像预处理,特征提取,质量控制分析和质量结果。在泰国曼谷和清迈省,对六种泰国水稻变种CP111,RD41,Chiang Phatthalung,Sang Yod Phattalung,彭世洛2和Chai Nat 1进行了实验。 RSGA提取了四个主要特征,分别是颜色,大小,形状和纹理。然后,RSGA将人工神经网络技术应用于农作物发芽预测。准确率为93.06%,每幅图像的速度为8.31秒。

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