arXiv:2512.11474cs.AIcs.CY2025-12被引 1

大模型能生成可操作的作物保护知识,助力农业决策。

General-purpose AI models can generate actionable knowledge on agroecological crop protection

  • 用大模型分析全球9种病虫害的文献,对比其知识生成能力。
  • DeepSeek比ChatGPT多发现1.6-2.4倍的生物防治方案,准确性更高。
  • 适合农业科研与基层农技人员快速获取科学信息参考。

生成式人工智能有望推动科学知识普及并转化为清晰、可操作的信息,但在农业食品科学中的应用仍待探索。本文验证了基于网络或非基于网络的大语言模型(如DeepSeek和免费版ChatGPT)在生成农业生态作物保护知识方面的表现。针对全球9种限制性病虫害与杂草,评估了各模型的知识事实准确性、数据一致性及覆盖范围。结果显示,DeepSeek平均检索文献量为ChatGPT的4.8–49.7倍,报告的生物防治剂或管理方案多出1.6–2.4倍;其疗效估计高出21.6%,实验室到田间数据一致性更强,对虫害种类与管理措施的影响判断更真实。但两者均存在幻觉问题,如虚构防治剂、错误生态关系、混淆命名体系或遗漏关键信息。尽管如此,二者仍能正确反映低分辨率的疗效趋势。结合严格的人类监督,大模型或可成为支持农户决策与激发科学创造力的强大工具。

原文摘要 · Abstract (English)

Generative artificial intelligence (AI) offers potential for democratizing scientific knowledge and converting this to clear, actionable information, yet its application in agri-food science remains unexplored. Here, we verify the scientific knowledge on agroecological crop protection that is generated by either web-grounded or non-grounded large language models (LLMs), i.e., DeepSeek versus the free-tier version of ChatGPT. For nine globally limiting pests, weeds, and plant diseases, we assessed the factual accuracy, data consistency, and breadth of knowledge or data completeness of each LLM. Overall, DeepSeek consistently screened a 4.8-49.7-fold larger literature corpus and reported 1.6-2.4-fold more biological control agents or management solutions than ChatGPT. As a result, DeepSeek reported 21.6% higher efficacy estimates, exhibited greater laboratory-to-field data consistency, and showed more realistic effects of pest identity and management tactics. However, both models hallucinated, i.e., fabricated fictitious agents or references, reported on implausible ecological interactions or outcomes, confused old and new scientific nomenclatures, and omitted data on key agents or solutions. Despite these shortcomings, both LLMs correctly reported low-resolution efficacy trends. Overall, when paired with rigorous human oversight, LLMs may pose a powerful tool to support farm-level decision-making and unleash scientific creativity.

AI农业大模型作物保护知识生成

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