基于U-Net的香菇表型提取方法研究
作者:
作者单位:

1.华中农业大学工学院;2.华中农业大学植物科学技术学院

中图分类号:

TP391.4;S646

基金项目:

山东省重点研发计划

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    摘要:

    针对香菇表型测量信息化程度低、人工测量费时费力的问题,本文提出了一种基于U-Net的香菇表型提取方法。该方法通过采集香菇切面图像,建立数据集,实现了基于U-Net的香菇菌盖、菌柄、左右菌褶的分割,模型的平均交并比和平均像素准确率分别为85.00%和91.25%。结合质心法和最小外接矩形法实现了菌盖直径、菌盖厚度、菌柄长度、菌柄直径和菌褶宽度5 个香菇表型参数的自动测量。与人工测量值相比,本文所提出的方法在测量菌盖直径、菌盖厚度、菌柄长度、菌柄直径和菌褶宽度时,其平均绝对百分比误差分别为 1.57%、5.01%、2.57%、5.47%、2.74%;均方根误差分别为0.12cm、0.08cm、0.09cm、0.10cm、0.06cm;决定系数均大于 0.90。研究表明,本文所述方法适用于香菇的表型测量,其测量结果能够为香菇的分选、分级提供有力的技术支撑。

    Abstract:

    In response to the low level of informatization and time-consuming manual measurement of mushroom phenotype, this paper proposes a U-Net mushroom phenotype extraction method. This method collects cross-sectional images of shiitake mushrooms, establishes a dataset, and achieves segmentation of shiitake mushroom caps, stems, and left and right gills based on U-Net. The average intersection to union ratio and average pixel accuracy of the model are 85.00% and 91.25%, respectively. The automatic measurement of five phenotypic parameters of shiitake mushrooms, including cap diameter, cap thickness, stem length, stem diameter, and gill width, was achieved by combining the centroid method and the minimum bounding rectangle method. Compared with manual measurements, the method proposed in this article has average absolute percentage errors of 1.57%, 5.01%, 2.57%, 5.47%, and 2.74% in measuring cap diameter, cap thickness, stem length, stem diameter, and gill width, respectively; The root mean square errors are 0.12cm,

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历史
  • 收稿日期:2024-11-20
  • 最后修改日期:2025-03-01
  • 录用日期:2025-03-28
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