作物生长模型开发与应用中若干问题的探讨。

Q3 Environmental Science
Jian-Ping Guo
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引用次数: 0

摘要

智慧农业是农业发展的重要方向。作物生长模型作为作物生产精确管理和智能决策的数字化工具,是智慧农业的核心技术之一,被称为智慧农业大脑。在这里,我介绍了近几十年来作物生长模式的发展历史,包括萌芽阶段、初始阶段、快速研发阶段、深度开发阶段、改良和应用阶段。着重介绍了目前世界上广泛使用的几种典型模型(Wageningen系列模型、DSSAT模型、APSIM模型、STICS模型等)的特点和局限性。目前的作物生长模型在应用中存在许多不足,主要表现在作物生长模型的泛化能力较弱,迁移能力较差,限制了模型的区域应用能力。作物生长发育对环境因子的响应机制尚不清楚。同时,定量表达模型有待完善。由于缺乏对极端天气事件、病虫害等不利影响的定量描述,影响了模型的模拟精度。很难在模型的复杂性和应用的便利性之间取得平衡。作物生长模型的应用与当前的新技术没有充分结合。作物生长模型中遗传参数的可解释性不足,影响了模型的预测能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Discussion on problems in the development and application of crop growth model.

Smart agriculture is an important direction for agricultural development. As a digital tool for accurate management and intelligent decision-making of crop production, crop growth model is one of the core technologies of smart agriculture, which is called smart agricultural brain. Here, I introduced the development history of crop growth models in recent decades, which included germination stage, initial stage, rapid research and development stage, deep development stage, improvement and application stage. The characteristics and limitations of several typical models (Wageningen series models, DSSAT model, APSIM model, STICS model, etc.) widely used in the world were emphatically introduced. There are many shortcomings in the application of current crop growth models, mainly manifested in the weak generalization ability and poor migration ability of crop growth models, which limited the regional application ability of the models. The mechanism of response of crop growth and development to environmental factors was not well understood. Meanwhile, the quantitative expression model needed to be improved. The lack of quantitative description of adverse effects such as extreme weather events, pests and diseases affected the simulation accuracy of the model. It was difficult to balance the complexity of the model and the convenience of application. The application of crop growth models was not sufficiently integrated with current new technologies. The insufficient interpretability of genetic parameters in crop growth models impacted the prediction ability of the models.

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来源期刊
应用生态学报
应用生态学报 Environmental Science-Ecology
CiteScore
2.50
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0.00%
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11393
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