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Image Analysis Protocol for Pollen Viability Identification on Selected Genotypes of Rice (Oryza sativa L.)

机译:用于选择基因型水稻(Oryza sativa L.)花粉活力鉴定的图像分析协议

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Pollen viability plays a key role in the efficient sexual reproduction of plants. However, estimating pollen viability is a labor-intensive and time-consuming task for researchers. Moreover, it is difficult to evaluate a large dataset of microscopic images as most of it needs to be meticulously examined. Existing methods have been developed to efficiently estimate total pollen count but their success in computing viability percentage is rather limited since they do not integrate viability testing techniques such as pollen staining. Some of these existing methods greatly depend on features such as the diameter of the pollen grain which requires a manual standardization to come up with two exclusive distributions for viable and nonviable pollen grains. An image analysis protocol was presented to compute the viability percentage on selected genotypes of rice (Oryza sativa L.). The effectiveness of the segmentation was evaluated in terms of accuracy in classification of the pollen grains. Results suggest the proposed method can be an alternative to the traditional labor-intensive manual counting.
机译:花粉生存力在植物的有效有性繁殖中起关键作用。然而,估计花粉生存力是研究人员的劳动密集型和费时的任务。此外,由于需要仔细检查大部分显微图像,因此很难评估较大的显微图像数据集。已经开发了现有方法来有效地估计总花粉数量,但是它们在计算生存力百分比方面的成功相当有限,因为它们没有集成诸如花粉染色的生存力测试技术。这些现有方法中的一些在很大程度上取决于特征,例如花粉颗粒的直径,这需要人工标准化才能得出可行和不可行的花粉颗粒的两个排他分布。提出了图像分析方案来计算选定基因型水稻(Oryza sativa L.)的存活率。根据花粉粒分类的准确性评估分割的有效性。结果表明,该方法可以替代传统的劳动密集型人工计数。

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