Water Quality Forecasting in Shrimp Cultures based on Monte Carlo Tree Search

Dhanachai Pinitsava, P. Surinlert, Worapan Kusakunniran
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引用次数: 2

Abstract

Shrimp is a sensitive creature and cannibalism. When shrimp die because of some factor in the water, for example, the temperature suddenly changed. Shrimp will start the cannibalization process. Farmers need to understand the ecological process to avoid this situation. Water management is one of them, and water quality properties take the main role of it. If farmers know the water’s current and future situations, it could help them handle unexpected/unforeseen situations. In this research, forecasting water quality values by using Monte Carlo Tree Search (MCTS) is proposed. Salinity, pH, Dissolved Oxygen, Temperature was collected by IoT Arduino based device with Solar cell as a power source and sent data using NB-IoT module. Linear interpolation was manipulated raw data for creating a new dataset of every 30 minutes. The data was given a grade from 1 to 5. MCTS forecast value by cutting the outliner in the selection phase. After selecting the node, expand the selected node, simulate the node until found the target node, give a score, and calculate and update the score back to the beginning node. The result is the route from the beginning node to the target node that has the highest score. The device can float on the water and work all day all night. The data collected from the device does not cover the entire pond’s water quality because there is one device in the large area of shrimp ponds. The MCTS can forecast the water quality in the small area around the device. When the farmer knows the water’s future situation will help them reduce the risk of losing the shrimp.
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基于蒙特卡罗树搜索的对虾养殖水质预测
虾是一种敏感的动物,会同类相食。例如,当虾因为水中的某些因素而死亡时,温度会突然改变。虾会开始自相残杀的过程。农民需要了解生态过程,以避免这种情况。水管理就是其中之一,而水质属性在其中起着主要作用。如果农民知道水的当前和未来的情况,它可以帮助他们处理意外/不可预见的情况。本文提出了一种基于蒙特卡罗树搜索(MCTS)的水质值预测方法。盐度、pH值、溶解氧、温度由基于IoT Arduino的设备采集,以太阳能电池为电源,通过NB-IoT模块发送数据。对原始数据进行线性插值处理,每30分钟生成一个新的数据集。这些数据的等级从1到5。在选择阶段通过切割轮廓线来预测MCTS的值。选择节点后,展开所选节点,模拟节点直到找到目标节点,给出分数,计算并更新得分回起始节点。结果是从开始节点到得分最高的目标节点的路由。该装置可以漂浮在水面上,全天整夜工作。该装置收集的数据不能覆盖整个池塘的水质,因为在大面积的虾池中只有一个装置。MCTS可以预测设备周围小范围内的水质。当农民知道水的未来情况将有助于他们减少失去虾的风险。
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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