arXiv:2503.14109cs.CVcs.AI2025-03综述被引 1

面向国家测绘机构的地理信息变更检测方法综述与挑战分析

Operational Change Detection for Geographical Information: Overview and Challenges

  • 按规则、统计、机器学习、仿真四类梳理自动变更检测方法
  • 指出当前缺乏大规模标注数据,且变化定义不统一制约应用
  • 适合关注地理数据库动态更新与遥感变化监测的研究者

由于气候变化和人类活动导致地域快速演变,国家测绘机构维护的地理空间数据库亟需及时高效更新。本文系统综述了适用于大规模地理数据库运维更新的变更检测方法。首先明确变更的多维内涵,涵盖时间与语义层面;将自动化检测方法分为规则、统计、机器学习与仿真四类,分析各类在不同输入数据下的优劣与适用性。重点识别了国家测绘机构的核心应用场景:地理数据库优化更新、基于变更的现象识别与动态监测。最后指出当前主要挑战:变更定义不统一、缺少大规模相关数据集、输入数据多样性、未充分研究的“无变更”检测、人机协同集成难题以及实际运行约束。强调需持续创新变更检测技术以满足未来地理信息系统对国家测绘的需求。

原文摘要 · Abstract (English)

Rapid evolution of territories due to climate change and human impact requires prompt and effective updates to geospatial databases maintained by the National Mapping Agency. This paper presents a comprehensive overview of change detection methods tailored for the operational updating of large-scale geographic databases. This review first outlines the fundamental definition of change, emphasizing its multifaceted nature, from temporal to semantic characterization. It categorizes automatic change detection methods into four main families: rule-based, statistical, machine learning, and simulation methods. The strengths, limitations, and applicability of every family are discussed in the context of various input data. Then, key applications for National Mapping Agencies are identified, particularly the optimization of geospatial database updating, change-based phenomena, and dynamics monitoring. Finally, the paper highlights the current challenges for leveraging change detection such as the variability of change definition, the missing of relevant large-scale datasets, the diversity of input data, the unstudied no-change detection, the human in the loop integration and the operational constraints. The discussion underscores the necessity for ongoing innovation in change detection techniques to address the future needs of geographic information systems for national mapping agencies.

地理信息变更检测国家测绘遥感

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