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Video-Based Prediction for Header-Height Control of a Combine Harvester

机译:基于视频的联合收割机割台高度控制的预测

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Many automation applications in the agriculture industry focus on navigation or steering control. But there are few studies on functional controls such as header automation. This paper introduces a video-based prediction system for header-height control of a combine harvester. To achieve this goal, we propose a lighting-invariant spatial segmentation method to locate the field region. Crop presence detection is performed by training a classifier on texture features and the percentage of crops in the field can be estimated. Then the time to lift the header is predicted based on observing the trend of crop presence. The framework is tested on both bean and wheat harvesting video sequences and the decreasing crop percentage can be successfully estimated.
机译:农业行业中的许多自动化应用程序都集中在导航或转向控制上。但是,很少有对功能控件(如标头自动化)的研究。本文介绍了一种基于视频的预测系统,用于联合收割机的割台高度控制。为了实现这一目标,我们提出了一种光照不变的空间分割方法来定位场区域。通过在纹理特征上训练分类器来执行农作物存在检测,并且可以估计田间农作物的百分比。然后根据观察到的农作物存在的趋势来预测抬起割台的时间。该框架已在豆类和小麦收获视频序列上进行了测试,并且可以成功地估算出减少的农作物百分比。

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