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A computer vision approach for weeds identification through Support Vector Machines

机译:通过支持向量机识别杂草的计算机视觉方法

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摘要

This paper outlines an automatic computervision system for the identification of avena sterilis which is a special weed seed growing in cereal crops. The final goal is to reduce the quantity of herbicide to be sprayed as an important and necessary step for precision agriculture. So, only areas where the presence of weeds is important should be sprayed. The main problems for the identification of this kind of weed are its similar spectral signature with respect the crops and also its irregular distribution in the field. It has been designed a new strategy involving two processes: image segmentation and decision making. The image segmentation combines basic suitable image processing techniques in order to extract cells from the image as the low level units. Each cell is described by two area-based attributes measuring the relations among the crops and weeds. The decision making is based on the SupportVectorMachines and determines if a cell must be sprayed. The main findings of this paper are reflected in the combination of the segmentation and the SupportVectorMachines decision processes. Another important contribution of this approach is the minimum requirements of the system in terms of memory and computation power if compared with other previous works. The performance of the method is illustrated by comparative analysis against some existing strategies.
机译:本文概述了一种自动计算机视觉系统,该系统可用于识别avena sterilis,它是谷物作物中生长的一种特殊杂草种子。最终目标是减少喷洒除草剂的量,这是精准农业的重要而必要的步骤。因此,仅应喷洒杂草存在很重要的区域。鉴定这种杂草的主要问题是其与农作物相似的光谱特征以及田间的不规则分布。它被设计为一种涉及两个过程的新策略:图像分割和决策。图像分割结合了基本的合适图像处理技术,以便从图像中提取单元作为低级单元。每个单元格由两个基于区域的属性来描述,这些属性测量农作物与杂草之间的关系。决策基于SupportVectorMachines并确定是否必须喷涂细胞。本文的主要发现反映在分段和SupportVectorMachines决策过程的结合中。这种方法的另一个重要贡献是,与其他先前的工作相比,该系统在内存和计算能力方面的最低要求。通过与一些现有策略进行比较分析来说明该方法的性能。

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