arXiv:2602.03767cs.LGcs.AI2026-02被引 4

用决策导向框架评估AI天气模型,助力印度农民应对季风变化。

Decision-oriented benchmarking to transform AI weather forecast access: Application to the Indian monsoon

  • 构建气象、AI与社会科学融合的评估框架
  • 提前数周精准预测农业相关季风始发时间
  • 已支持政府向3800万农民推送预警,适合气候脆弱区应用

人工智能天气预报(AIWP)模型在多数指标上已超越传统物理模型,且计算资源和时间需求低得多。开放获取的AIWP模型有望成为帮助低收入和中等收入人群应对极端天气冲击的关键工具。然而,现有评估方法多聚焦于整体气象指标,未考虑本地利益相关者在实际决策中的需求。本文提出一个融合气象学、人工智能与社会科学的决策导向评估框架,并以印度季风预报这一持续150年的难题为例,重点服务于对气候变化高度敏感的雨养农业。在离线样本测试中,该框架验证了多个AIWP模型能以确定性和概率性指标,在区域尺度上提前数周精准预测农业相关的季风始发指数。此框架直接推动2025年政府行动,向3800万印度农民发放基于AI的季风始发预报,成功捕捉到季风进程异常的数周暂停。该决策导向评估体系为利用AIWP技术帮助大规模易受威胁人口适应气候波动与变化提供了关键蓝图。

原文摘要 · Abstract (English)

Artificial intelligence weather prediction (AIWP) models now often outperform traditional physics-based models on common metrics while requiring orders-of-magnitude less computing resources and time. Open-access AIWP models thus hold promise as transformational tools for helping low- and middle-income populations make decisions in the face of high-impact weather shocks. Yet, current approaches to evaluating AIWP models focus mainly on aggregated meteorological metrics without considering local stakeholders' needs in decision-oriented, operational frameworks. Here, we introduce such a framework that connects meteorology, AI, and social sciences. As an example, we apply it to the 150-year-old problem of Indian monsoon forecasting, focusing on benefits to rain-fed agriculture, which is highly susceptible to climate change. AIWP models skillfully predict an agriculturally relevant onset index at regional scales weeks in advance when evaluated out-of-sample using deterministic and probabilistic metrics. This framework informed a government-led effort in 2025 to send 38 million Indian farmers AI-based monsoon onset forecasts, which captured an unusual weeks-long pause in monsoon progression. This decision-oriented benchmarking framework provides a key component of a blueprint for harnessing the power of AIWP models to help large vulnerable populations adapt to weather shocks in the face of climate variability and change.

AI气象季风预测农业决策公共政策

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