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Line-scan inspection of conifer seedlings

机译:针叶树幼苗的线扫描检查

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Abstract: two billion conifer seedlings are produced in the U.S. each year to support reforestation efforts. Seedlings are graded manually to improve viability after transplanting. Manual grading is labor-intensive and subject to human variability. Our previous research demonstrated the feasibility of automated tree seedling inspection with machine vision. Here we describe a system based on line-scan imaging, providing a three-fold increase in resolution and inspection rate. A key aspect of the system is automatic recognition of the seedling root collar. Root collar diameter, shoot height, and projected shoot and root areas are measured. Sturdiness ratio and shoot/root ratio are computed. Grade is determined by comparing measured features with pre- defined set points. Seedlings are automatically sorted. The precision of machine vision and manual measurements was determined in tests at a commercial forest nursery. Manual measurements of stem diameter, shoot height, and sturdiness ratio had standard deviations three times those of machine vision measurements. Projected shoot area was highly correlated (r$+2$/ $EQ 0.90) with shoot volume. Projected root area had good correlation (r$+2$/ $EQ 0.80) with root volume. Seedlings were inspected at rates as high as ten per second. !13
机译:摘要:为了支持重新造林工作,美国每年生产20亿针叶树幼苗。手动对幼苗进行分级,以提高移植后的活力。手动分级是劳动密集型的,易受人为因素影响。我们之前的研究证明了使用机器视觉自动检查树木幼苗的可行性。在这里,我们描述了一种基于线扫描成像的系统,可将分辨率和检查速度提高三倍。该系统的一个关键方面是对幼苗根部领的自动识别。测量根领直径,枝条高度以及预计的枝条和根部面积。计算坚固度比和苗根比。通过将测量的特征与预定义的设置点进行比较来确定等级。幼苗会自动排序。机器视觉和手动测量的精度是在商业森林苗圃的测试中确定的。手动测量茎直径,枝条高度和坚固度比的标准偏差是机器视觉测量值的三倍。预计的芽面积与芽量高度相关(r $ + 2 $ / $ EQ 0.90)。预计根面积与根体积具有良好的相关性(r $ + 2 $ / $ EQ 0.80)。幼苗的检查速度高达每秒十次。 !13

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