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首页> 外文期刊>NJAS Wageningen Journal of Life Sciences >RiceGrow: A rice growth and productivity model
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RiceGrow: A rice growth and productivity model

机译:RiceGrow:水稻生长和生产力模型

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Growth and yield formation in rice (Oryza sativa L) depend on integrated impacts of genotype, environment and management A rice growth simulation model can provide a systematic and quantitative tool for predicting growth, development and productivity of rice under changing environmental conditions Existing rice models perform well but are somewhat difficult to use because of the large number of parameters that users must estimate Experience in modelling wheat suggested that using physiological development time (PDT) as a scaler for phenology and a partitioning Index for organ growth could result in fewer parameters while providing good predictability and applicability RiceGrow was developed using PDT and a partitioning index to quantify relations among rice growth and environmental facto's, genotypic parameters and management practices RiceGrow includes seven sub-models for simulating phenology, morphology and organ formation, photosynthesis and biomass production, dry matter partitioning, yield and quality formation, water relations and nutrient balance The model was calibrated with three datasets involving various cultivars, sowing dates and N rates at multiple sites Validation with independent datasets showed the model had good predictability and applicability The RiceGrow model was compared with the ORYZA2000 model, showing that both provided satisfactory estimates for phenology, shoot biomass and yield Overall. RiceGrow can be used to predict rice growth and development with varied genotypes, environmental conditions and management practices for multiple uses including scientific understanding, policy formulation and optimizing crop management
机译:水稻(Oryza sativa L)的生长和产量形成取决于基因型,环境和管理的综合影响。水稻生长模拟模型可以为预测在变化的环境条件下水稻的生长,发育和生产力提供系统和定量的工具。很好,但由于用户必须估计的大量参数而难以使用。建模小麦的经验表明,使用生理发育时间(PDT)作为物候的标度和用于器官生长的分配指数可能会导致较少的参数,同时提供良好的可预测性和适用性RiceGrow是使用PDT和分区指数开发的,用于量化水稻生长与环境因素,基因型参数和管理实践之间的关系。RiceGrow包括七个用于模拟物候,形态和器官形成,光合作用和生物量产生,干物质的子模型。划分形态,产量和品质形成,水分关系和养分平衡利用三个数据集对模型进行校准,该数据集涉及不同品种,播种日期和多个地点的氮素含量。独立数据集的验证表明该模型具有良好的可预测性和适用性。 ORYZA2000模型,显示两者均提供了令人满意的物候,芽生物量和整体产量估算。 RiceGrow可用于预测多种基因型,环境条件和多种管理实践的水稻生长发育,包括科学理解,政策制定和优化作物管理

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