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Combining a weed traits database with a population dynamics model predicts shifts in weed communities

机译:将杂草性状数据库与种群动态模型相结合可以预测杂草群落的变化

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摘要

A functional approach to predicting shifts in weed floras in response to management or environmental change requires the combination of data on weed traits with analytical frameworks that capture the filtering effect of selection pressures on traits. A weed traits database (WTDB) was designed, populated and analysed, initially using data for 19 common European weeds, to begin to consolidate trait data in a single repository. The initial choice of traits was driven by the requirements of empirical models of weed population dynamics to identify correlations between traits and model parameters. These relationships were used to build a generic model, operating at the level of functional traits, to simulate the impact of increasing herbicide and fertiliser use on virtual weeds along gradients of seed weight and maximum height. The model generated ‘fitness contours’ (defined as population growth rates) within this trait space in different scenarios, onto which two sets of weed species, defined as common or declining in the UK, were mapped. The effect of increasing inputs on the weed flora was successfully simulated; 77% of common species were predicted to have stable or increasing populations under high fertiliser and herbicide use, in contrast with only 29% of the species that have declined. Future development of the WTDB will aim to increase the number of species covered, incorporate a wider range of traits and analyse intraspecific variability under contrasting management and environments.
机译:预测杂草菌群随管理或环境变化而变化的功能性方法,需要将杂草性状数据与分析框架相结合,以捕获选择压力对性状的过滤作用。设计,填充和分析杂草性状数据库(WTDB),最初使用19种欧洲常见杂草的数据,开始将性状数据合并到一个存储库中。特征的初始选择是由杂草种群动态经验模型的需求所驱动,以鉴定特征与模型参数之间的相关性。这些关系用于建立在功能性状水平上运行的通用模型,以模拟沿着种子重量和最大高度的梯度增加除草剂和肥料用量对虚拟杂草的影响。该模型在不同情况下在此特征空间内生成了“适宜度等值线”(定义为人口增长率),并在其上绘制了两组在英国定义为常见或在下降的杂草物种。成功地模拟了增加投入对杂草菌群的影响。预测77%的常见物种在高肥料和除草剂的使用下具有稳定或增加的种群,相比之下,只有29%的物种已下降。 WTDB的未来发展将旨在增加覆盖物种的数量,纳入更广泛的性状,并在对比管理和环境的情况下分析种内变异性。

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