自组织地图在地中海橄榄园土壤保持中的应用

Jamal Ammouri, P. Minet, M. Boudiaf, S. Bouzefrane, M. Yacoub
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引用次数: 0

摘要

土壤退化和炎热的气候解释了阿尔及利亚北部橄榄园产量低的原因。利用自组织地图(SOMs)对橄榄园的土壤和气候数据进行分析。SOM是一种无监督神经网络,它将高维数据投影到低维拓扑地图上,同时保留邻域。在本文中,我们展示了SOMs如何使农民能够确定橄榄园集群,表征它们,研究它们的进化并决定如何提高油的营养质量。SOM可以整合到智能农业系统中,以促进保护农业。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Self-Organizing Maps Applied to Soil Conservation in Mediterranean Olive Groves
Soil degradation and hot climate explain the poor yield of olive groves in North Algeria. Edaphic and climatic data were collected from olive groves and analyzed by Self-Organizing Maps (SOMs). SOM is a non-supervised neural network that projects high-dimensional data onto a low-dimension topological map, while preserving the neighborhood. In this paper, we show how SOMs enable farmers to determine clusters of olive groves, to characterize them, to study their evolution and to decide what to do to improve the nutritional quality of oil. SOM can be integrated in the Intelligent Farming System to boost conservation agriculture.
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