首页> 外文期刊>Journal of Agricultural Studies >The Minimum Agriculture-Chunk as an Elementary Data Science Component in ADAM, a Micro Targeted, Trainable, Modular, Multipurpose System for Land Farming
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The Minimum Agriculture-Chunk as an Elementary Data Science Component in ADAM, a Micro Targeted, Trainable, Modular, Multipurpose System for Land Farming

机译:最小农业块作为ADAM中的基本数据科学组件,它是用于土地耕种的微型目标,可训练的模块化多用途系统

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The poor Data Science support of agriculture brought us to our main idea of the research is to analyze all micro-works for every plant or tree. Then we proceed to specify targeted actions for harvest collection, micro spraying and hundreds similar simple actions. Initially we collect data from the farm. The airborne, land and underwater unmanned vehicles scan the field area with customized various sensors and cameras in various multi spectral modes. The result is minimum agro-chunk Four-Dimensional model. The unmanned vehicle on the field area receives target data. It is equipped with a general-purpose robotic arm, an absorbing bellow, a robotic pruner, a liquid spraying pipe, an underwater robotic arm and hundreds of others. It moves there and performs the commanded action. Action is flower or nuts collection, insect suction pruning and hundred more. All operations are high trainable by human intervention and the system stores its approach and logic for future action correction.
机译:农业对数据科学的不良支持使我们进入了研究的主要思想,即分析每棵植物或树木的所有微型作品。然后,我们将针对收获的收集,微喷和数百种类似的简单操作指定目标操作。最初,我们从服务器场收集数据。空中,陆地和水下无人驾驶车辆使用各种多光谱模式的定制化各种传感器和摄像头扫描现场区域。结果是最小的农业块状四维模型。野外区域的无人驾驶车辆接收目标数据。它配备有通用机械臂,吸收波纹管,机械修枝剪,喷液管,水下机械臂以及数百种其他机械臂。它在那里移动并执行命令的操作。动作是收集花或坚果,吸除昆虫等。所有操作都可以通过人为干预进行高度培训,并且系统存储其方法和逻辑以用于将来的操作纠正。

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