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生态学杂志 ›› 2025, Vol. 44 ›› Issue (1): 250-259.doi: 10.13292/j.1000-4890.202501.024

• 研究报告 • 上一篇    下一篇

多源数据协同的城市建成区变迁及景观生态安全格局演变分析: 以辽宁省为例

刘浦东1,黄丽1,刘建涛1*,张冬2,王凌翔3   

  1. 1山东建筑大学测绘地理信息学院, 济南 250101; 2齐鲁空天信息研究院, 济南 250101; 3潍坊河海水文科技有限公司, 山东潍坊 261100)

  • 出版日期:2025-01-10 发布日期:2025-01-16

Analyzing changes of urban built-up area and landscape ecological security pattern based on multi-source data: A case study of Liaoning Province.

LIU Pudong1, HUANG Li1, LIU Jiantao1*, ZHANG Dong2, WANG Lingxiang3   

  1. (1School of Surveying and Geo-informatics, Shandong Jianzhu University, Jinan 250101, China; 2Qilu Institute of Aerospace Information, Jinan 250101, China; 3Weifang Hehai Hydrologic Technology Company, Weifang 261100, Shandong, China).

  • Online:2025-01-10 Published:2025-01-16

摘要: 掌握建成区变迁并构建省域尺度生态安全格局,是维持地区生态安全的重要手段。基于Google Earth Engine云平台获取的夜间灯光数据及土地利用数据、兴趣点数据,使用融合算法提取辽宁省各地级市建成区,并结合省域尺度生态安全格局、城市扩张方向等探索辽宁省景观生态安全格局的时空变化特征。结果表明:(1)融合提取法可弥补单一数据源在省域尺度建成区提取中的不足,建成区提取精度平均为88%,较单一夜光数据提取精度平均提高了33%;(2)基于形态学空间格局分析模型及最小累积阻力模型提取核心区域,筛选出28块生态源地,共识别58条生态廊道,并建立不同半径为缓冲区的生态安全距离,构建省域生态安全格局;(3)以建成区面积、人口及GDP为指标建立城市重心,以2012年为基准,城市总体重心向西南方向小角度偏移。将建成区长时序变迁与生态源地、生态廊道及生态缓冲区构建的生态安全格局作为城市生态规划,对提升省域尺度城市规划和生态协同具有重要意义。


关键词: 城市化, 省级生态安全格局, 形态学空间格局分析, 最小累积阻力模型, 生态廊道

Abstract: Mastering the changes of urban areas and constructing a provincial-scale ecological security pattern is crucial for maintaining regional ecological security. We collected nightlight data, land use data, and point of interest data of Liaoning Province using the Google Earth Engine. We used a fusion algorithm to extract different urban built-up areas in Liaoning Province. With those data, the spatial and temporal variations of ecological security pattern and urban expansion in Liaoning Province were explored. The results showed that: (1) A fusion extraction method could compensate for single data source deficiencies in provincial-scale built-up area extraction, which increased the average extraction accuracy of built-up areas to 88%, being 33% higher than that of single nightlight data. (2) Based on the morphological spatial pattern analysis model and the minimum cumulative resistance model, the core regions were extracted, 28 ecological source areas were selected, 58 ecological corridors were identified. Ecological security distances with different radii were established as buffer zones to construct the ecological security pattern at the provincial level. (3) Based on the built-up area, population and GDP, the center of gravity of the city was established. With the condition in 2012 as reference, the center of gravity of the city was shifted to the southwest at a small angle. It is of great significance to combine the long sequence time-series changes of built-up areas and the constructed ecological security pattern of ecological sources, ecological corridors and ecological buffer zones as urban ecological planning for improving urban planning and ecological coordination at the provincial scale.


Key words: urbanization, provincial ecological security pattern, morphological spatial pattern analysis, minimum cumulative resistance, ecological corridor