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Hybrid Consensus Learning for Legume Species and Cultivars Classification

机译:豆类种类和品种分类的混合共识学习

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In this work we propose an automatic method aimed at classifying five legume species and varieties using leaf venation features. Firstly, we segment the leaf veins and measure several multiscale morphological features on the vein segments and the areoles. Next, we build a hybrid consensus of experts formed by five different automatic classifiers to perform the classification using the extracted features. We propose to use two strategies in order to assign the importance to the votes of the algorithms in the consensus. The first one is considering all the algorithms equally important. The second one is based on the accuracy of the standalone classifiers. The performance of both consensus classifiers show to outperform the standalone classification algorithms in the five class recognition task.
机译:在这项工作中,我们提出了一种自动方法,旨在使用叶静脉特征进行分类五种豆类物种和品种。首先,我们在静脉段和亚尔斯进行叶静脉并测量几种多尺度形态特征。接下来,我们建立由五种不同的自动分类器组成的专家的混合共识,以使用提取的特征来执行分类。我们建议使用两种策略,以便为共识中的算法投票分配重要性。第一个是考虑所有算法同样重要的。第二个是基于独立分类器的准确性。两种共识分类器的性能显示在五类识别任务中优于独立分类算法。

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