arXiv:2605.00315cs.CYcs.AI2026-05被引 1

提出负责任地理人工智能框架,应对气候灾害映射中的公平与可持续挑战

Unbox Responsible GeoAI: Navigating Climate Extreme and Disaster Mapping

论文配图:Unbox Responsible GeoAI: Navigating Climate Extreme and Disaster Mapping
图 1 · 摘自论文原文
  • 从代表性、可解释性、可持续性、伦理四维度构建责任框架
  • 强调算法部署需兼顾环境碳足迹与空间公平性
  • 适合关注地理信息伦理与气候智能治理的研究者

随着气候极端事件频发加剧,地理空间人工智能(GeoAI)已成为大规模灾害制图与风险减缓的变革性方法。然而,单纯追求性能的机械式部署可能导致加剧固有空间不平等、阻碍应急决策,并带来严重的环境碳足迹。本文从批判性地理信息系统视角,探讨负责任GeoAI在气候极端与灾害制图中的新兴作用,提出涵盖代表性、可解释性、可持续性与伦理四个相互关联的理论维度,并针对实践层面,构建涵盖数据、应用、社会三个范畴的概念性治理模型。本文旨在呼吁地理信息学界关注:气候韧性未来不仅依赖更优算法,更需建立负责任、合乎伦理且可持续的治理生态。

原文摘要 · Abstract (English)

As climate extreme and disaster events become more frequent and intense, Geospatial Artificial Intelligence (GeoAI) has emerged as a transformative approach for large-scale disaster mapping and risk reduction. However, the purely mechanical, performance-driven deployment of GeoAI models can result in amplifying inherent spatial inequalities, preventing effective emergency decision-making, and producing severe environmental carbon footprint. To unbox the concept of responsible GeoAI, this position paper examines its emerging role, e.g., in climate extreme and disaster mapping, from a critical GIS perspective. We address the nexus of responsible GeoAI into four interrelated theoretical dimensions, specifically Representativeness, Explainability, Sustainability, and Ethics, with examples from climate extreme and disaster mapping. Moreover, targeting at the operational practice, we then propose a conceptual governance Model of responsible GeoAI that categorizes its governance practices into Data, Application, and Society scopes. Last, this position paper aims to raise the attention in the broader GIS community that the future of climate resilience relies not just on building better algorithms, but on fostering a governance ecosystem where GeoAI is deployed responsibly, ethically, and sustainably.

地理人工智能气候韧性伦理治理可持续性

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