南苏拉威西省粮食安全影响因素的空间回归分析

Irma Yani Safitri, M. Tiro, Ruliana
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摘要

空间回归是经典线性回归的发展,它基于地点或位置的影响。为确定区位/空间效应,采用Moran指数进行空间依赖检验,采用Lagrange乘数(LM)检验确定显著的空间回归模型。本研究采用空间回归方法对南苏拉威西省各区的粮食安全状况进行分析。分析结果表明,区域间存在负空间自相关关系,即空间效应不影响粮食安全水平。显著性空间回归模型为SEM (spatial Error model)模型。SEM模型的方程产生了具有显著影响的变量,即人均规范消费与净可用性的比率,生活在贫困线以下的人口百分比,食品支出占总支出比例超过65%的家庭百分比,无法获得电力的家庭百分比,无法获得清洁水的家庭百分比,出生时预期寿命,每名卫生工作者的人口与人口密度水平的比率、15岁以上妇女的平均受教育年限以及5岁以下儿童身高低于标准(发育迟缓)的百分比。因此,得到的分布模式是统一的数据模式。这意味着每个相邻的区域往往具有不同的特征。
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Spatial Regression Analysis to See Factors Affecting Food Security at District Level in South Sulawesi Province
Spatial regression is a development of classical linear regression which is based on the influence of place or location. To determine the location/spatial effect, a spatial dependency test was performed using the Moran Index, and the Lagrange Multiplier (LM) test was used to determine a significant spatial regression model. In this study, spatial regression was applied to the case of food security in each district in South Sulawesi Province. The results of the analysis show that there is a negative spatial autocorrelation, meaning that the spatial effect does not affect the level of food security. The significant spatial regression model is the SEM (Spatial Error Model) model. The equation of the SEM model produces variables that have a significant effect, namely the ratio of normative consumption per capita to net availability, percentage of population living below the poverty line, percentage of households with a proportion of expenditure on food more than 65 percent of total expenditure, percentage of households without access to electricity, percentage of households without access to clean water, life expectancy at birth, ratio of population per health worker to the level of population density, the average length of schooling for women above 15 years, and the percentage of children under five with height below standard (stunting). Thus, the resulting distribution pattern is a uniform data pattern. This means that each adjacent district tends to have different characteristics.
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