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首页> 外文期刊>The Journal of Applied Ecology >Optimally managing under imperfect detection: A method for plant invasions
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Optimally managing under imperfect detection: A method for plant invasions

机译:下最优管理不完善检测:A方法对植物入侵

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摘要

Failing to account for uncertainty in the detection of invasive plants may lead to inefficient management strategies and wasted resources. Smart strategies to manage plant invasions requires consideration of the economic costs and benefits, and plant life-history characteristics as well as imperfect detection. 2.We develop a partially observable Markov decision process (POMDP) to provide optimal management actions when we are uncertain about the presence of invasive plants. The optimal strategy depends on the probability of being in a particular state. We ask the question, 'When is it preferable to use a less efficient, less costly action to a more efficient, more costly action?' We apply the POMDP to branched broomrape Orobanche ramosa, a parasitic plant species at the centre of a national eradication campaign in South Australia. 3.The optimal strategy depends on the ability to detect the invasive species and the location of the infested site. For high detection rates, if the site is a satellite infestation, management should employ the more efficient, more costly action (i.e. soil fumigation) the year the weed is detected followed by monitoring. When the detection probability is low, then it is optimal to employ the less efficient, low cost action (i.e. host denial) in the years the species is not detected. For sites in the centre of the infestation, management should employ the less costly, less efficient action. While the optimal strategy is insensitive to colonization, the likelihood of local eradication diminishes as colonization probability increases, highlighting the importance of limiting colonization if eradication is to be achieved. 4.Synthesis and applications.Providing decision support for managing ecological systems is a key role of applied research. Formulating this support within a decision theory context provides a framework for good decision-making. The POMDP model is a novel decision support tool for optimal sequential decision making when invasive plants are difficult to detect. The model can determine the best management action to employ based on the location of the infestation and can inform when to switch to alternative management actions that buffer against imperfect detection.
机译:不考虑的不确定性检测入侵植物可能导致低效的管理策略和浪费资源。经济的入侵需要考虑成本和收益,植物生活史特点以及不完善的检测。2.提供最优决策过程(POMDP)当我们不确定管理操作入侵植物的存在。策略取决于在一个的概率特定状态。它比使用效率较低,更少昂贵的行动更有效,更昂贵行动?”Orobanche ramosa,寄生植物物种国家根除运动的中心南澳大利亚。3。在检测到入侵物种和能力出没的位置。检测率,如果站点是一个卫星侵扰,管理应该采用更多高效,更昂贵的行动(即土壤熏蒸)检测到杂草其次是监控。概率很低,那么它是最优的越高效,低成本的行动(即主机否认)的物种没有检测到。在感染的中心站点,管理应该采用成本更低、更少有效的行动。对殖民的可能性当地的根除随着殖民概率增加,突显出限制殖民的重要性根除是实现。应用程序。生态系统管理是一个关键的角色应用研究。决策理论上下文提供了一个框架良好的决策。小说最优决策支持工具序贯决策时入侵植物很难检测到。采用基于最好的管理行动侵扰的位置,可以通知时切换到另类的管理行为缓冲不完美的检测。

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