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Development of an image processing system and a fuzzy algorithm for site-specific herbicide applications

机译:针对特定地点除草剂应用的图像处理系统和模糊算法的开发

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In precision farming, image analysis techniques can aid farmers in the site-specific application of herbicides, and thus lower the risk of soil and water pollution by reducing the amount of chemicals applied. Using weed maps built with image analysis techniques, farmers can learn about the weed distribution within the crop. In this study, a digital camera was used to take a series of grid-based images covering the soil between rows of corn in a field in southwestern Quebec in May of 1999. Weed coverage was determined from each image using a "greenness method" in which the red, green, and blue intensities of each pixel were compared. Weed coverage and weed patchiness were estimated based on the percent of greenness area in the images. This information was used to create a weed map. Using weed coverage and weed patchiness as inputs, a fuzzy logic model was developed for use in determining site-specific herbicide application rates. A herbicide application map was then created for further evaluationof herbicide application strategy. Simulations indicated that significant amounts of herbicide could be saved using this approach.
机译:在精密农业中,图像分析技术可以帮助农民在特定地点使用除草剂,从而通过减少所用化学品的量来降低土壤和水污染的风险。使用通过图像分析技术构建的杂草图,农民可以了解作物中杂草的分布情况。在这项研究中,使用数码相机拍摄了一系列基于网格的图像,该图像覆盖了1999年5月在魁北克西南部一个田地中玉米行之间的土壤。杂草的覆盖率是使用“绿色方法”从每个图像中确定的。比较每个像素的红色,绿色和蓝色强度。根据图像中绿色区域的百分比估算杂草覆盖率和杂草斑点。该信息用于创建杂草图。使用杂草覆盖率和杂草斑块作为输入,开发了一种模糊逻辑模型,用于确定特定地点的除草剂施用量。然后创建除草剂施用图,以进一步评估除草剂施用策略。模拟表明,使用这种方法可以节省大量除草剂。

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