孙钰蘅. 苏鲁豫皖四省传统村落空间分布特征及其驱动因素研究[J]. 华南师范大学学报(自然科学版), 2023, 55(4): 118-128. doi: 10.6054/j.jscnun.2023056
引用本文: 孙钰蘅. 苏鲁豫皖四省传统村落空间分布特征及其驱动因素研究[J]. 华南师范大学学报(自然科学版), 2023, 55(4): 118-128. doi: 10.6054/j.jscnun.2023056
SUN Yuheng. The Spatial Distribution Characteristics and Influence Factors of Traditional Villages in Jiangsu, Shandong, Henan and Anhui Provinces[J]. Journal of South China Normal University (Natural Science Edition), 2023, 55(4): 118-128. doi: 10.6054/j.jscnun.2023056
Citation: SUN Yuheng. The Spatial Distribution Characteristics and Influence Factors of Traditional Villages in Jiangsu, Shandong, Henan and Anhui Provinces[J]. Journal of South China Normal University (Natural Science Edition), 2023, 55(4): 118-128. doi: 10.6054/j.jscnun.2023056

苏鲁豫皖四省传统村落空间分布特征及其驱动因素研究

The Spatial Distribution Characteristics and Influence Factors of Traditional Villages in Jiangsu, Shandong, Henan and Anhui Provinces

  • 摘要: 分析苏鲁豫皖传统村落的空间分布特征及其影响因素,以期为今后区域内传统村落开发与保护提供理论依据与技术支持。文章以苏鲁豫皖四省825个传统村落为研究对象,采用最邻近指数、核密度分析、地理集中指数、莫兰指数以及地理探测器等方法研究区域内传统村落的空间分布格局及其影响因素。结果表明:(1)苏鲁豫皖传统村落空间分布类型为集聚型,省域尺度下研究区的传统村落均为聚集分布模式,安徽省集聚分布显著。(2)市域尺度下传统村落分布不均衡,主要集中在安徽的黄山市、宣城市和河南的平顶山市、信阳市。(3)核密度分析结果表明,苏鲁豫皖传统村落总体上呈“一主+两次+多中心”的团簇状分布格局,“核心—边缘”状分布较为明显,且在空间上表现为横“V”字型。(4)该区密度因素(如GDP密度)对传统村落空间分异解释力最强,其次是普通道路密度、河流密度等,最后是地形因素;传统村落空间分异格局受11个因子交互作用的影响存在非线性增强及双因子增强2种类型,说明该区传统村落空间格局分异受多因子的综合影响更明显,其中GDP密度、一般道路密度和其他10个因子交互作用对传统村落空间格局影响较大。

     

    Abstract: To provide a theoretical basis and technical support for the future development and protection of traditional villages in the region, an analysis was conducted of the spatial distribution characteristics and influence factors of such villages across Jiangsu, Shandong, Henan, and Anhui provinces. The spatial distribution pattern and influencing factors of 825 traditional villages in 4 Provinces were examined using the nearest neighbor index, kernel density estimate, geographic concentration index, Moran index, and geographical detector methods. The results show that: (1) Traditional villages in the study area exhibit an agglomeration distribution pattern, with all traditional villages in the provincial scale showing a clustered distribution mode, and the agglomeration distribution is significant in Anhui Province; (2) The distribution of traditional villages is imbalanced at the city scale with a concentration in Huangshan City and Xuancheng City in Anhui Province, Pingdingshan City and Xinyang City in Henan Province; (3) The nuclear density analysis reveals that traditional villages in the study area present a cluster distribution pattern of "one main village, two villages, and multiple centers" on the whole, with a more obvious "core-edge" distribution, showing a horizontal "V" shape in space; (4) Density factors such as GDP density have the strongest explanatory power on the spatial differentiation of traditional villages, followed by the density of common roads and rivers, and finally the topographic factors. The spatial differentiation pattern of traditional villages is affected by the interaction of 11 factors, and there are two types of nonlinear enhancement and double enhancement, indicating that the spatial differentiation pattern of traditional villages in this region is significantly affected by the comprehensive influence of multiple factors, among which the interaction of GDP density, general road density, and other 10 factors has a greater impact on the spatial pattern of traditional villages.

     

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