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Detection of Tomato Flowers from Greenhouse Images Using Colorspace Transformations

机译:使用颜色转换从温室图像检测番茄花

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In this paper we propose an image analysis method for detecting and counting tomato flowers from images taken in a greenhouse. Detecting and locating flowers is useful information for tomato growers and breeders, for phenotyping, yield prediction, and for automating procedures such as pollination and spraying. Since the tomato flowers are yellow, we first apply a set of grayscale transformations in which yellow regions stand out, and then threshold and combine them by a logical binary AND operation. Using more than one transform reduces the possibility of spurious detections due to non-flower regions of the image appearing yellow due to illumination conditions. Connected regions larger than a certain threshold are selected as instances belonging to the class flower. Experimental results over images acquired in a greenhouse using a Realsense camera show that this approach could detect flowers with a recall of 0.79 and precision of 0.77, which are comparable to the values reported in literature with higher resolution cameras closer to the flowers being imaged.
机译:在本文中,我们提出了一种用于检测和计数温室中拍摄图像的番茄花的图像分析方法。检测和定位花是番茄种植者和育种者的有用信息,用于表型,产量预测,以及授粉和喷涂等自动化程序。由于番茄花是黄色的,我们首先应用一组灰度变换,其中黄色区域脱颖而出,然后通过逻辑二进制和操作来阈值并将它们组合。使用多个变换降低了由于由于照明条件而出现黄色的图像的非花卉区域因杂散检测的可能性。选择的连接区域大于某个阈值,被选为属于班级花的情况。在使用实际相机的温室中获取的图像的实验结果表明,这种方法可以检测到0.79的召回的花朵,精度为0.77,这与文献中报告的值相当,具有更高分辨率的相机更靠近正在成像的花朵。

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