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ROTOR, a tool for generating and evaluating crop rotations for organic farming systems.

机译:ROTOR,一种用于生成和评估有机农业系统轮作的工具。

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As with conventional farming, the improvement of organic farming systems requires agronomic planning tools to enhance economic performance. Crop rotation planning plays a crucial role in organic arable farming systems due to the renunciation of mineral nitrogen fertilisers and pesticides. Our objective was to develop a tool for generating and evaluating site-specific and agronomically sustainable crop rotations for organic farming systems in central Europe. The resulting static rule-based model, called ROTOR, consists of two basic steps: (A) A set of annual crop production activities (CPAs) is assembled semi-automatically from single site and crop-specific field operations using a relational data base. The database includes all relevant crops recorded separately with inputs and outputs, machinery and timing. Starting from stubble tillage and ending with the last harvest measure, the CPAs describe the current best cropping practices. Different CPAs are included for each crop according to (i) the type of crop preceding and (ii) the field operations following: whether ploughing or non-inverting tillage, undersowing crops, using catch crops, manuring, straw harvesting, or mechanical weed control. The former allows for the modelling of all possible positions of a crop within a crop rotation and the consequential effects of preceding crops. The CPAs are evaluated using rule-based assessment modules for yield, economic performance, N balance, nitrate leaching, and weed infestation risks. These modules have been developed using data from field experiments, farm trials and surveys, expert knowledge and a soil-crop simulation model. (B) Within the crop generation module, all possible sequences of CPAs are linked to 3-8-year preliminary crop rotations. Agronomically sustainable crop rotations are selected according to exclusion criteria (i.e., thresholds for N balance, weed infestation risks, phytosanitary and chronological restrictions) and ranked, e.g. by economic performance. The model was tested by comparing (i) estimated with observed yields and (ii) generated with existing rotations. These comparisons, based on data obtained from two farm surveys from North Eastern Germany, indicate the validity and usability of the model approach. ROTOR was found to support the complex crop rotation planning in organic farming systems requiring rotations with overlapping undersown main and cover crops. ROTOR is able to reduce the risk of planning failures by offering a quantitative method of optimisation of weed and site-specific N management..
机译:与常规耕作一样,有机耕作制度的改善需要农艺学规划工具来提高经济绩效。由于放弃了矿物氮肥和杀虫剂,轮作计划在有机耕作系统中起着至关重要的作用。我们的目标是开发一种工具,用于为中欧的有机耕作系统生成和评估针对特定地点且在农学上可持续的作物轮作。生成的基于静态规则的模型称为ROTOR,包括两个基本步骤:(A)使用关系数据库从单个站点和针对特定作物的田间作业半自动地组装一组年度作物生产活动(CPA)。该数据库包括所有单独记录的相关作物以及投入和产出,机械和时间安排。从留茬耕种开始,到最后一次收获措施结束,CPA描述了当前的最佳种植方式。根据(i)之前的作物类型和(ii)下列的田间作业,每种作物包括不同的CPA:耕作还是非翻耕,播种,使用农作物,肥料,秸秆收割或机械除草。前者允许对作物轮作内作物的所有可能位置以及先前作物的相应影响进行建模。使用基于规则的评估模块对CPA进行评估,以评估产量,经济绩效,氮平衡,硝酸盐浸出和杂草侵扰风险。这些模块是使用田间试验,农场试验和调查数据,专家知识和土壤作物模拟模型开发的。 (B)在作物生成模块中,所有可能的CPA序列都与3-8年的初步作物轮换相关。根据排除标准(即氮平衡阈值,杂草侵染风险,植物检疫和时间限制)选择农艺上可持续的作物轮作并进行排名,例如通过经济表现。通过比较(i)与观察到的产量的估计值和(ii)现有轮换产生的值来测试模型。这些比较基于从德国东北部的两次农场调查获得的数据,表明了该模型方法的有效性和可用性。发现ROTOR支持有机耕作系统中复杂的轮作计划,这些轮作需要轮作,主播和覆盖作物重叠。通过提供定量优化杂草和特定地点氮肥管理的定量方法,ROTOR能够降低规划失败的风险。

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