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首页> 外文期刊>Computers and Electronics in Agriculture >vitisBerry: An Android-smartphone application to early evaluate the number of grapevine berries by means of image analysis
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vitisBerry: An Android-smartphone application to early evaluate the number of grapevine berries by means of image analysis

机译:Vitisberry:Android-Smartphone申请早日通过图像分析评估葡萄浆果数量

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In agriculture, crop monitoring and plant phenotyping are mainly manually measured. However, this practice gathers phenotyping information at a lower rate than genotyping evolves, thus producing bottleneck. This paper presents vitisBerry, a smartphone application for assessing in the vineyard, using computer vision, the berry number in clusters at phenological stages between berry-set and cluster-closure. The implemented image analysis algorithm is an evolution of a previous development, providing 1.63% and 7.57% of Recall and Precision improvement, respectively. The application was evaluated using two devices, taking and analysing 144 images from 12 different grapevine varieties. The Recall and Precision results ranged between 0.8762 and 0.9082 and 0.9392-0.9508, depending on the device. The average computational time required to analyse the 144 images varied from 3.14 to 8.40 s. According to these results, vitisBerry constitutes a tool for viticulturists to acquire phenotyping information from their vineyards in an easy and practical way.
机译:在农业中,主要是手动测量作物监测和植物表型。然而,这种做法以比基因分型的速率更低的速率收集表型信息,从而产生瓶颈。本文介绍了伏替床,智能手机应用于葡萄园评估葡萄园,使用计算机愿景,浆果组合之间的诸如植物阶段的植物群中的浆果。实施的图像分析算法是先前发展的演变,分别提供了1.63%和7.57%的召回和精确改善。使用两种器件,从12种不同的葡萄品种进行144张图像进行评估。召回和精确度结果范围为0.8762和0.9082和0.9392-0.9508,具体取决于设备。分析144个图像所需的平均计算时间从3.14变化到8.40秒。根据这些结果,Vitisberry构成了葡萄葡萄栽培者的工具,以简单实用的方式从葡萄园中获取从葡萄园中的表型信息。

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