PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
April 8, 2026Sustainability0 citationsOpen Access

Spatio-Temporal Evolution Characteristics and Driving Mechanisms of River Systems in Typical Plain River Network Region

View Full Paper
MNMengjie NiuChina Three Gorges UniversityQYQiao YanChina Three Gorges UniversityLWLei WangChina Institute of Water Resources and Hydropower Research

Key Points

  • The aim is to analyze the spatiotemporal evolution of river networks and identify driving mechanisms in the Lixiahe region.
  • Used Mann–Kendall and spatial autocorrelation analysis to assess river network changes.
  • Applied random forest analysis to quantify the impact of socioeconomic factors on river networks.
  • Conducted multiple validations to ensure model robustness.
  • Performed Granger causality tests to explore relationships among key hydrological indicators and socioeconomic variables.
  • River networks in the Lixiahe region showed an upward trend in number and connectivity from 2013 to 2025.
  • Global Moran’s I index decreased, indicating reduced spatial agglomeration and edge fragmentation.
  • Socioeconomic factors were found to significantly influence river network changes, particularly GDP and agricultural output.

Abstract

The plain river network region is faced with ecological and environmental challenges such as insufficient hydrological connectivity and degradation of ecosystem services under the influence of urbanization and human activities, and therefore attention needs to be paid to river network changes in this region and the synergistic benefits of natural–social–economic multidimensional factors. This study took the Lixiahe region, a typical plain river network region, as the research object, using Mann–Kendall, spatial autocorrelation analysis, random forest, multiple validation and Granger causality test of key drivers to analyze the spatiotemporal evolution of its river network from 2013 to 2025 and quantify driving mechanisms from natural, social and economic factors. The results showed that: (1) From 2013 to 2025, the Lixiahe Plain river network region tended to be trunk and artificial, with the number and connectivity of river networks showing an upward trend while the curvature of river network decreased significantly. (2) The Global Moran’s I index of the Lixiahe Plain river network decreased from 0.612 to 0.534, indicating a continued weakening of spatial agglomeration in the water area and exhibiting characteristics of edge fragmentation. (3) Random forest analysis showed that socioeconomic factors dominated recent river network change in the Lixiahe Plain. Economic factors mainly influenced quantity-related indicators, while social factors were more important for meander degree and connectivity in several ecologically sensitive counties. Multilevel validation demonstrated the robustness and generalization ability of the model. Granger causality analysis further indicated that GDP, road network density, freshwater aquaculture area, and agricultural output statistically preceded changes in key hydrological indicators. These findings suggest that river network management in plain river network regions should move beyond quantity-based engineering expansion and adopt a multi-indicator, spatially differentiated approach. Integrating river quantity, morphology, and connectivity into management can better support the balance between socioeconomic development and ecological protection and promote the sustainable optimization of river network.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Niu et al. (2026) studied this question.

synapsesocial.com/papers/69d5f10974eaea4b11a7a75fhttps://doi.org/10.3390/su18073556
Ask AI
Helpful
Bookmark
Share
View Full Paper