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Grassland Species Characterization for Plant Family Discrimination by Image Processing

机译:草地物种特征的图像处理对植物科的区分

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Pasture species belonging to poaceae and fabaceae families constitute of essential elements to maintain natural and cultivated regions. Their balance and productivity are key factors for good functioning of the grassland ecosystems. The study is based on a process of image processing. First of all an individual signature is defined while considering geometric characteristics of each family. Then, this signature is used to discriminate between these families. Our approach focuses on the use of shape features in different situations. Specifically, the approach is based on cutting the representative leaves of each plant family. After cutting, we obtain leaves sections of different sizes and random geometry. Then, the shape features are calculated. Principal component analysis is used to select the most discriminatory features. The results will be used to optimize the acquisition conditions. We have a discrimination rate of more than 90% for the experiments carried out in a controlled environment. Experiments are being carried out to extend this study in natural environments.
机译:属于禾本科和草科的牧场物种是维持自然和耕作区的基本要素。它们的平衡和生产力是草地生态系统良好运转的关键因素。该研究基于图像处理过程。首先,在考虑每个家庭的几何特征的同时定义个人签名。然后,使用该签名来区分这些家族。我们的方法着重于在不同情况下使用形状特征。具体而言,该方法基于切割每个植物科的代表性叶片。切割后,我们获得了具有不同大小和随机几何形状的叶子部分。然后,计算形状特征。主成分分析用于选择最具歧视性的特征。结果将用于优化采集条件。对于在受控环境中进行的实验,我们的辨别率超过90%。正在开展实验,以在自然环境中扩展这项研究。

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