Empirical Study of Crop-disease Detection and Crop-yield Analysis Systems: A Statistical View

Akshay Dhande, R. Malik
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引用次数: 1

Abstract

In crop-imagery different algorithms have been proposed over the years which determine crop-growth, crop-diseases, crop-yield etc., using a series of image processing steps. As large number of architectures are available in the area of crop imaging, selection of particular algorithm is a very much crucial task for getting optimum results from the set off application. A lot of research is required for this, which increases the delay in the system design, to reduce this delay this paper reviews the best algorithm set in terms of their statistical parameter. The error rate and accuracy of different algorithms is compared in order to understand performance of different algorithms. This will facilitate the investigator to search out the most effective practices in connection with crop disease detection and crop yield prediction.
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作物病害检测与产量分析系统的实证研究:统计学观点
在作物图像中,多年来提出了不同的算法,通过一系列的图像处理步骤来确定作物生长、作物病害、作物产量等。由于作物成像领域存在大量的体系结构,因此选择特定的算法是获得最佳投影效果的关键。这需要进行大量的研究,这增加了系统设计中的延迟,为了减少这种延迟,本文从统计参数方面综述了最佳算法集。通过比较不同算法的错误率和准确率,了解不同算法的性能。这将有助于研究者找出与作物病害检测和作物产量预测有关的最有效的做法。
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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