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Multi-stage Robust Scheme for Citrus Identification from High Resolution Airborne Images

机译:来自高分辨率空气图像的柑橘识别多级鲁棒方案

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Identification of land cover types is one of the most critical activities in remote sensing. Nowadays, managing land resources by using remote sensing techniques is becoming a common procedure to speed up the process while reducing costs. However, data analysis procedures should satisfy the accuracy figures demanded by institutions and governments for further administrative actions. This paper presents a methodological scheme to update the citrus Geographical Information Systems (GIS) of the Comunidad Valenciana autonomous region (Spain). The proposed approach introduces a multi-stage automatic scheme to reduce visual photointerpretation and ground validation tasks. First, an object-oriented feature extraction process is carried out for each cadastral parcel from very high spatial resolution (VH R) images (0.5m) acquired in the visible and near infrared. Next, several automatic classifiers (decision trees, multilayer perceptron, and support vector machines) are trained and combined to improve the final accuracy of the results. The proposed strategy fulfills the high accuracy demanded by policy makers by means of combining automatic classification methods with visual photointerpretation available resources. A level of confidence based on the agreement between classifiers allows us an effective management by fixing the quantity of parcels to be reviewed. The proposed methodology can be applied to similar problems and applications.
机译:识别土地覆盖类型是遥感中最关键的活动之一。如今,通过使用遥感技术管理土地资源正在成为加速过程的共同过程,同时降低成本。但是,数据分析程序应满足机构和政府所需的准确性数据,以获得进一步的行政行为。本文介绍了更新Comunidad Valenciana自治区(西班牙)的柑橘地理信息系统(GIS)的方法。所提出的方法引入了多级自动方案,以减少视觉审核和地面验证任务。首先,针对在可见和近红外线获取的非常高的空间分辨率(VH R)图像(VH R)图像(0.5M)来执行面向对象的特征提取处理。接下来,培训几种自动分类器(决策树,多层erceptron和支持向量机),并结合以提高结果的最终精度。拟议的策略通过将自动分类方法与可视审查可用资源结合起来,实现了决策者所需的高精度。根据分类器之间的协议,根据审查的包裹数量,基于分类器之间的协议的置信度达到了有效的管理。所提出的方法可以应用于类似的问题和应用。

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