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A comparison of classification methods in automated taxa identification of benthic macroinvertebrates

机译:底栖大型椎骨自动化素鉴定分类方法比较

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In this research, we examined the automated taxa identification of benthic macroinvertebrates. Benthic macroinvertebrates play an important role in biomonitoring. They can be used in water quality assessments. Identification of benthic macroinvertebrates is made usually by highly trained experts, but this approach has high costs and, hence, the automation of this identification process could reduce the costs and would make wider biomonitoring possible. The automated taxa identification of benthic macroinvertebrates returns to image classification. We applied altogether 11 different classification methods to the image dataset of eight taxonomic groups of benthic macroinvertebrates. Wide experimental tests were performed. The best results, around 94% accuracies, were achieved when quadratic discriminant analysis (QDA), radial basis function network and multi-layer perceptron (MLP) were used. On the basis of the results, it can be said that the automated taxa identification of benthic macroinvertebrates is possible with high accuracy.
机译:在这项研究中,我们检查了底栖大型椎骨椎体的自动分类鉴定。 Benthic Macroinvertebres在生物监测中发挥着重要作用。它们可用于水质评估。终身大型近似型专家的识别通常是由训练有素的专家制造的,但这种方法具有高成本,因此,这种识别过程的自动化可以降低成本并使更广泛的生物监测成为可能。 Benthic Macroinvertebres的自动分类识别率恢复到图像分类。我们将共11种不同的分类方法应用于八个分类群的底栖大型椎骨门的图像数据集。进行广泛的实验测试。当使用二次判别分析(QDA),径向基函数网络和多层的Perceptron(MLP)时,实现了大约94%的精度高约94%的精度。在结果的基础上,可以说,底栖大型脊椎动物的自动分类鉴定是高精度的。

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