DIGITAL IMAGE ANALYSIS USING FLATBED SCANNING SYSTEM FOR PURITY TESTING OF RICE SEED AND CONFIRMATION BY GROW OUT TEST

Q4 Agricultural and Biological Sciences Indonesian Journal of Agricultural Science Pub Date : 2018-12-09 DOI:10.21082/ijas.v19n2.2018.p49-56
M. Widiastuti, A. Hairmansis, E. R. Palupi, S. Ilyas
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引用次数: 4

Abstract

The common method used for purity testing of rice seed is human visual observation. This method, however, has a high degree of subjectivity when dealing with different rice varieties which have similar morphology. Digital image analysis with flatbed scanning for purity testing of rice seed was proposed by investigating the morphology of rice seeds and confirmation by grow out test (GOT) in the field. Two extra-long seed varieties were used in this study including a red rice Aek Sibundong and an aromatic rice Sintanur. The identification on 14 parameters of morphological characteristics indicated that only six parameters were correlated, i.e. area, feret, minimum feret, aspect ratio, round, and solidity. The purity of rice seed can be effectively determined using digital image analysis of spikelet color and shape. Based on the discriminant analysis of the digital image the recognition rate of rice seed purity was higher than 99.2% for shape and 93.55% for color. The method, therefore, has a potential to be used as a complement in rice seed purity testing to increase the accuracy of human visual method and it is more sensitive than GOT.
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利用平板扫描系统对水稻种子纯度检测进行数字图像分析,并通过生长试验进行验证
水稻种子纯度检测常用的方法是肉眼观察。然而,当处理具有相似形态的不同水稻品种时,这种方法具有高度的主观性。通过对水稻种子形态的研究和田间生长试验(GOT)的验证,提出了用平板扫描进行水稻种子纯度检测的数字图像分析方法。本研究使用了两个超长种子品种,包括红米Aek Sibundong和芳香米Sintanur。对14个形态特征参数的鉴定表明,只有6个参数相关,即面积、蕨类、最小蕨类、纵横比、圆形和坚固性。利用小穗颜色和形状的数字图像分析可以有效地确定水稻种子的纯度。基于数字图像的判别分析,水稻种子纯度的形状识别率高于99.2%,颜色识别率高于93.55%。因此,该方法有可能作为水稻种子纯度测试的补充,以提高人类视觉方法的准确性,并且它比GOT更灵敏。
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来源期刊
Indonesian Journal of Agricultural Science
Indonesian Journal of Agricultural Science Agricultural and Biological Sciences-Soil Science
CiteScore
1.00
自引率
0.00%
发文量
5
审稿时长
12 weeks
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