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Classification of Pollen Grain Images Based on an Ensemble of Classifiers

机译:基于分类器集合的花粉粒图像分类

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The recognition of pollen grains is a challenging task since they are three-dimensional structures with complex morphological characteristics. Palynologists are responsible for studying pollen, spores and similar microscopic plant structures. In this work, we develop and analyze an automatic method for classification of pollen grain images based on a set of features and classifiers. Predictions of different classifiers are fused into an ensemble rule of majority voting. Experiments conducted on two datasets containing different types of pollen grains are used to demonstrate the effectiveness of the proposed approach.
机译:花粉粒的识别是一项具有挑战性的任务,因为它们是具有复杂形态特征的三维结构。古生物学家负责研究花粉,孢子和类似的微观植物结构。在这项工作中,我们开发并分析了基于一组特征和分类器的自动对花粉颗粒图像进行分类的方法。将不同分类器的预测融合到多数表决的整体规则中。在包含不同类型花粉粒的两个数据集上进行的实验被用来证明该方法的有效性。

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