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The role of population in understanding Honduran land use patterns

机译:人口在了解洪都拉斯土地利用方式中的作用

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Land use patterns are usually influenced by large variety of factors that act over a broad range of scales. Biophysical, climatic, and socioeconomic factors are important and need to be considered, when distribution of land use is to be understood. The main objective of this study is to test this hypothesis using a statistical analysis at 'supra-local' level. Regression analysis is used to describe land use patterns in Honduras, selected because of its rare combination in Latin America of high population growth and poor biophysical conditions. Furthermore, the aim of the analysis is to specifically highlight two aspects, the effect of spatial and temporal scale and the influence of population density: to determine the influence of spatial and temporal scale, six spatial resolutions at two points in time (1974 and 1993) were included. To determine the role of population density and population growth, this factor was singled out; an analysis of migration patterns was performed; and a measure for technological development was calculated. Multiple regression equations indicate the importance of soil-related, climatic and demographic factors for most of the land uses. Relations appear to be stable in space and time. Rural population density dominates as driver over the whole range of resolutions and for both years, especially for maize where it explains up to 80% of the variation. The strong constant relationship between population and agricultural area could be caused by a lack of technological development. An analysis of yield development confirms that for most annual crops yield increases lag behind area growth. Besides, the strong correlation could be explained by assuming rural population density to be a proxy for a range of other factors, like labour costs, or accessibility that are the direct drivers of land use change. In any case, this study suggests that for a specific—relatively coarse—window of temporal and spatial scale, land use patterns can be described with very simple relationships, with a strong contribution of population density. More local studies are needed to test the hypothesis that rural population density is a proxy for other variables.
机译:土地使用方式通常会受到多种因素的影响,这些因素的作用范围很广。当要了解土地利用的分布时,生物物理,气候和社会经济因素很重要,需要加以考虑。这项研究的主要目的是使用“超本地”水平的统计分析来检验该假设。回归分析用于描述洪都拉斯的土地利用模式,这是由于洪都拉斯在拉丁美洲罕见的高人口增长和恶劣的生物物理条件相结合而选择的。此外,分析的目的是特别强调两个方面,即时空尺度的影响和人口密度的影响:确定时空尺度的影响,两个时间点(1974年和1993年)的六个空间分辨率)。为了确定人口密度和人口增长的作用,这一因素被选出。对迁移模式进行了分析;并计算出技术发展的指标。多元回归方程表明,与土壤有关的,气候和人口因素对大多数土地利用而言都很重要。关系似乎在时空上是稳定的。农村人口密度在整个决议范围内和两年内都是主要的驱动因素,尤其是对于玉米而言,可以解释高达80%的变化。人口与农业面积之间的紧密而持久的联系可能是由于缺乏技术发展所致。对单产发展的分析证实,对于大多数年度作物而言,单产增长滞后于面积增长。此外,可以通过假设农村人口密度替代其他一系列因素来解释这种强烈的相关性,例如劳动力成本或可获取性,这些因素是土地使用变化的直接驱动力。无论如何,这项研究表明,对于时间和空间规模的特定(相对粗略)窗口,土地使用模式可以用非常简单的关系来描述,而人口密度的贡献很大。需要更多的本地研究来检验以下假设:农村人口密度可以替代其他变量。

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