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The design and implementation of a yield monitor for sweetpotatoes.

机译:甘薯产量监测仪的设计与实现。

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A study of the soil characteristics, weather conditions, and effect of management skills on the yield of the agricultural crop requires site-specific details, which involves large amount of labor and resources, compared to the traditional whole field based analysis. This thesis discusses the design and implemention of yield monitor for sweetpotatoes grown in heavy clay soil. A data acquisition system is built and image segmentation algorithms are implemented. The system performed with an R2 value of 0.80 in estimating the yield. The other main contribution of this thesis is to investigate the effectiveness of statistical methods and neural networks to correlate image-based size and shape to the grade and weight of the sweetpotatoes. An R2 value of 0.88 and 0.63 are obtained for weight and grade estimations respectively using neural networks. This performance is better compared to statistical methods with an R2 value of 0.84 weight analysis and 0.61 in grade estimation.
机译:对土壤特性,天气条件以及管理技能对农作物产量的影响的研究需要特定地点的详细信息,与传统的基于整田的分析相比,这需要大量的劳动力和资源。本文讨论了在重粘土上生长的甘薯产量监测仪的设计和实现。建立了数据采集系统,并实现了图像分割算法。系统在估计产率时以R2值为0.80进行了分析。本文的另一个主要贡献是研究统计方法和神经网络将基于图像的大小和形状与甘薯的等级和重量相关联的有效性。使用神经网络分别针对重量和等级估计获得R2值0.88和0.63。与统计方法相比,该性能更好,R2值为0.84(重量分析),等级评估为0.61。

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