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A novel intelligent control system for flue-curing barns based on real-time image features

机译:基于实时图像特征的新型烤烟房智能控制系统

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Most intensive tobacco curing systems are manually operated requiring the curers to frequently observe the status of tobacco leaves and in order to achieve the desired temperature and relative humidity, curers adjust the setpoint values of dry and wet bulb temperatures and the time to change to the next setpoints. Control is therefore subjective and it is difficult to maintain consistent high quality curing. A novel intelligent control system based on the real-time image processing of the tobacco leaves images to monitor the status of the tobacco leaves was developed. A neural network based approach was designed to identify the setpoints for the dry and wet bulb temperatures, and the time to change to the next setpoints. Inputs were 12 extracted image features obtained from an image processing algorithm and the measured dry and wet bulb temperatures in the barn. Without any manual intervention by curers, the developed intelligent control system achieved real-time monitoring and management of the curing process. The effectiveness of the developed intelligent control system was demonstrated by simulation and experiment
机译:大多数密集型烟草硫化系统都是手动操作的,需要咖喱师经常观察烟叶的状态,并且为了达到所需的温度和相对湿度,咖喱师会调整干球和湿球温度的设定值以及更换下一个球囊的时间。设定点。因此,控制是主观的,并且难以保持一致的高质量固化。开发了一种基于烟叶图像实时图像处理监控烟叶状态的新型智能控制系统。设计了基于神经网络的方法来确定干球和湿球温度的设定点,以及更改到下一个设定点的时间。输入的是从图像处理算法获得的12个提取的图像特征,以及谷仓中测得的干球和湿球温度。无需固化员的任何手动干预,开发的智能控制系统即可实现固化过程的实时监控和管理。通过仿真和实验证明了所开发智能控制系统的有效性。

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