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A rule-based decision support tool for architecting Earth observing missions

机译:基于规则的决策支持工具,用于构建地球观测任务

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A decision support tool is presented that is especially tailored for architecting Earth observing missions and programs. The tool features both a cost model and a performance model. This paper focuses on the description of the performance model. Indeed, while considerable effort has been put into the development of cost estimating models, comparably much less effort has been put into the development of quantitative methods to assess how well Earth Observing Mission satisfy scientific and societal needs. A literature review revealed that existing methods include a commercial approach, a value-of-information approach, end-to-end simulation, assimilation in Observing System Simulation Experiments, and simple expert judgment. Limitations of these methods include limited applicability, computational complexity, low modeling fidelity (e.g. abstraction of synergies between measurements), and subjectivity. Our method uses a knowledge-based system to store and manage large quantities of expert knowledge in the form of rules-of-thumb that replace expensive computations. Scientific and societal measurement requirements and instrument capabilities are expressed in the form of logical rules and data structures. An efficient pattern matching algorithm performs the comparison of the measurement requirements and the measurement capabilities on the basis of 64 different measurement attributes. The system is demonstrated on the Earth Science Decadal Survey. While the system is still under development, it shows great potential to enhance traceability in the modeling of scientific and societal value of Earth observing missions. Furthermore, the recursive nature of rule-based systems shows potential to model synergies between instruments and measurements, at a sufficient level of fidelity for architectural trade studies, especially for the ones conducted in committees with experts such as Decadal Surveys.
机译:提出了一种决策支持工具,该工具特别适合于设计地球观测任务和程序。该工具同时具有成本模型和绩效模型。本文重点介绍性能模型。的确,尽管在成本估算模型的开发上已付出了巨大的努力,但在评估量化地球观测任务满足科学和社会需求的程度的定量方法方面却投入了相当少的精力。文献综述表明,现有方法包括商业方法,信息价值方法,端到端仿真,观测系统仿真实验中的同化以及简单的专家判断。这些方法的局限性包括适用性有限,计算复杂度低,建模保真度低(例如抽象测量之间的协同作用)以及主观性。我们的方法使用基于知识的系统以经验法则的形式存储和管理大量专家知识,以取代昂贵的计算。科学和社会的测量要求和仪器功能以逻辑规则和数据结构的形式表示。高效的模式匹配算法基于64种不同的测量属性对测量要求和测量能力进行比较。该系统在“地球科学十年调查”中得到了证明。尽管该系统仍在开发中,但它显示出巨大的潜力,可以增强对地球观测任务的科学和社会价值进行建模的可追溯性。此外,基于规则的系统的递归性质显示了在工具和度量之间的协同作用方面建模的潜力,对于建筑行业研究,尤其是在由专家委员会(例如,十年调查)进行的研究中,具有足够的保真度。

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