首页> 外文期刊>Photogrammetric Engineering & Remote Sensing: Journal of the American Society of Photogrammetry >Use of multispectral ikonos imagery for discriminating between conventional and conservation agricultural tillage practices
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Use of multispectral ikonos imagery for discriminating between conventional and conservation agricultural tillage practices

机译:利用多光谱的ikonos影像区分传统耕作法和保护性耕作法

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摘要

There is a global concern about the increase in atmospheric concentrations of greenhouse gases. One method being discussed to encourage greenhouse gas mitigation efforts is based on a trading system whereby carbon emitters can buy effective mitigation efforts from farmers implementing conservation tillage practices. These practices sequester carbon from the atmosphere, and such a trading system would require a low-cost and accurate method of verification. Remote sensing technology can offer such averification technique. This paper is focused on the use of standard image processing procedures applied to a multispectral Ikonos image, to determine whether it is possible to validate that farmers have complied with agreements to implement conservationtillage practices. A principal component analysis (PCA) was performed in order to isolate image variance in cropped fields. Analyses of variance (ANOVA) statistical procedures were used to evaluate the capability of each Ikonos band and each principal component to discriminate between conventional and conservation tillage practices. A logistic regression model was implemented on the principal component most effective in discriminating between conventional and conservation tillage, in order to produce amap of the probability of conventional tillage. The Ikonos imagery, in combination with ground-reference information, proved to be a useful tool for verification of conservation tillage practices.
机译:全球关注的是大气中温室气体浓度的增加。正在讨论一种鼓励减少温室气体排放的方法,该方法基于一种贸易体系,碳排放者可以从实施保护性耕作实践的农民那里购买有效的减少温室气体的措施。这些做法会从大气中隔离碳,而这样的交易系统将需要低成本且准确的验证方法。遥感技术可以提供这样的平均化技术。本文着重于将标准图像处理程序应用于多光谱Ikonos图像,以确定是否有可能验证农民是否已遵守实施保护性耕作实践的协议。进行主成分分析(PCA)以便隔离裁切场中的图像差异。方差分析(ANOVA)统计程序用于评估每个Ikonos频段和每个主要成分区分常规耕作和保护性耕作实践的能力。对最有效区分传统耕作和保护耕作的主要成分实施了逻辑回归模型,以产生传统耕作的概率图。 Ikonos影像与地面参考信息相结合,是验证保护性耕作实践的有用工具。

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