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Predictive model of water stress in tenera oil palm by means of spectral signature methods

机译:基于光谱特征方法,Tenera油棕中水分胁迫预测模型

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Agriculture as a competitive business, seeks to improve productivity within crops with a more sustainable environmental management. It is important that agriculture includes new technologies that allow it to generate differential, precise and real-time information. In Colombia, the current lack of knowledge about techniques that allow early identification of water stress in African palm could generate a loss in the investment made in the fertilization of the crop, cause an increase in diseases, pests, and susceptibility to compaction or abortions in female flowers that would lead to decreases in production. In this work, a predictive model is established to quantify water stress based on spectral, physiological and soil information in African palm plants. To this end, a study was carried out in an oil palm plantation where treatments were established with 3 ranges of humidity. It was found that the indices with the highest correlation with the biophysical variable soil moisture were: NDVI_1 and NDVI_16 for treatment 1, SR_4 for treatment 2 and NDVI_16 and NDVI_20 for treatment 3. Finally, the third order polynomial regression model that obtained higher correlation coefficients of Pearson R^2=0.73 was selected as the most suitable model to estimate soil moisture content for treatments 2 and 3.
机译:农业作为一个竞争力的业务,寻求提高作物内的生产力,具有更具可持续性的环境管理。农业允许它允许产生差异,精确和实时信息是重要的。在哥伦比亚,目前缺乏关于允许早期识别非洲棕榈水胁迫的技术的知识可能会产生对作物受精的投资的损失,导致疾病,害虫和压实或堕胎的易感性增加女性花将导致生产中减少。在这项工作中,建立了一种预测模型来量化基于非洲棕榈植物中的光谱,生理和土壤信息的水分胁迫。为此,在油棕种植园中进行了一项研究,其中用3种湿度建立了处理。发现具有与生物物理可变土壤水分相关最高的索引:NDVI_1和NDVI_16用于治疗1,SR_4用于治疗2和NDVI_16和NDVI_20用于治疗3.最后,获得了更高的相关系数的三阶多项式回归模型Pearson R ^ 2 = 0.73被选为最合适的模型,以估算治疗方法2和3的土壤水分含量。

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