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Counting Instances of Objects in Color Images Using U-Net Network on Example of Honey Bees

机译:使用U-Net网络在蜜蜂示例中对彩色图像中的对象实例进行计数

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This article presents a novel approach to segmentation and counting of objects in color digital images. The objects belong to a certain class, which in this case are honey bees. The authors briefly present existing approaches which use Convolutional Neural Networks to solve the problem of image segmentation and object recognition. The focus however is on application of U-Net convolutional neural network in an environment where knowledge about the object of interest is only limited to its rough, single pixel location. The authors provide full access to the details of the code used to implement the algorithms, as well as the data sets used and results obtained. The results show an encouraging low level of counting error at 14.27% for the best experiment.
机译:本文提出了一种新颖的方法来对彩色数字图像中的对象进行分割和计数。这些对象属于某个类别,在这种情况下为蜜蜂。作者简要介绍了使用卷积神经网络解决图像分割和目标识别问题的现有方法。但是,重点是在有关目标对象的知识仅限于其粗糙的单个像素位置的环境中应用U-Net卷积神经网络。作者提供对用于实现算法的代码的详细信息以及所使用的数据集和获得的结果的完全访问权限。结果表明,最佳实验的计数错误水平低至14.27%,令人鼓舞。

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