基于Mask R-CNN的单株柑橘树冠识别与分割 |
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引用本文: | 王辉,韩娜娜,吕程序,毛文华,李沐桐,李林. 基于Mask R-CNN的单株柑橘树冠识别与分割[J]. 农业机械学报, 2021, 52(5): 169-174 |
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作者姓名: | 王辉 韩娜娜 吕程序 毛文华 李沐桐 李林 |
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作者单位: | 中国农业机械化科学研究院土壤植物机器系统技术国家重点实验室,北京100083;广东省现代农业装备研究所,广州510630;江苏大学农业工程学院,镇江212013 |
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基金项目: | 广东省重点领域研发计划项目(2019B090922001)和江苏省现代农业装备与技术协同创新中心开放基金项目(4091600016) |
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摘 要: | 针对在复杂果园背景中难以识别分割单株果树树冠的问题,研究了基于Mask R-CNN神经网络模型实现单株柑橘树冠识别与分割的方法.通过相机获取柑橘园图像数据,利用Mask R-CNN神经网络实现单株柑橘树冠的识别与分割,根据测试集的预测结果评估模型的性能和可适应性,并分析模型的影响因素.结果 表明:参与建模的果园单株树冠...
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关 键 词: | 柑橘树冠 Mask R-CNN 图像识别 图像分割 |
收稿时间: | 2020-08-04 |
Recognition and Segmentation of Individual Citrus Tree Crown Based on Mask R-CNN |
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Affiliation: | Chinese Academy of Agricultural Mechanization Sciences;Guangdong Institute of Modern Agricultural Equipment; Jiangsu University |
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Abstract: | The topography of the orchard is variable. The planting density of the fruit trees is large, and the shape of the crown is different. Therefore, it is difficult to recognize the crown of an individual fruit tree in a complex orchard background. A novel method of crown recognition and segmentation based on Mask R-CNN neural network model was studied. The image data of the citrus orchard was obtained through the camera, and the Mask R-CNN neural network was used to realize the recognition and segmentation of the crown of an individual citrus plant. The research results showed that the recognition accuracy of the individual tree crown of the orchard participating in the modeling was 97%, and the recognition time was 0.26s, which can basically meet the requirements of tree crown recognition in the process of precise orchard operation. The recognition accuracy of the single tree crown of the orchard not participating in the modeling was 89%, which showed that the model was suitable for different kinds and environments of orchards. Compared with the SegNet model, the accuracy of the used model was about 5 percentage points higher, indicating that it had a better recognition and segmentation effect in complex orchard images with more non-target tree crowns. Therefore, the recognition and segmentation method can achieve rapid and accurate recognition and segmentation of single tree crown, which provided an important basis for accurate orchard operations such as target spraying, pest protection, growth recognition and prediction. |
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Keywords: | citrus tree crown Mask R-CNN image recognition image segmentation |
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