首页> 外文会议>SPIE Conference on Sensors, Systems, and Next-Generation Satellites >Architecting next 30 years of climate monitoring from space with instructive examples from NPOESS and GCOS plus new rule-based decision tools - suggesting and promoting global collaborative paths forward. (Part V)
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Architecting next 30 years of climate monitoring from space with instructive examples from NPOESS and GCOS plus new rule-based decision tools - suggesting and promoting global collaborative paths forward. (Part V)

机译:建筑物未来30年气候监测与NPoess和GCOS的指示器示例与基于新的规则的决策工具 - 建议和促进全球协作路径前进。 (第五部分)

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Collecting the earth's critical climate signatures over the next 30 years is an obvious priority for many world governments and international organizations. Implementing a solution requires bridging from today's scientific missions to 'operational' constellations that are adequate to support the future demands of decision makers, scientific investigators and global users for trusted data. In earlier authored efforts, time was spent parsing out 'operational' constellation components (lite review below). This paper will focus on contrasting architectural alternatives from historically different perspectives. First, the heavily securitized NPOESS architecture, while undone by requirements growth and collaborations that were not sustained; but an instructive (ambitious) constellation construct to learn from with its targeted collection of environmental parameters (starting in 1994). Second, examining the requirements of earth climate observations identified by GCOS (2006) in ECV's (essential climate variables) measured from space-based sensors with global coverage and sufficient quality to ensure the needs of major global & international organizations (UNFCCC & IPCC). Third, how the application of a rule-based decision engine thesis (2012)~([17]) can improve the architectural trades of earth observation satellite systems, allowing comparison(s) to existing architectures and gaining insights for recommendations to global architectures (assessing the value of alternatives and effectively exploring the trade space) and would offer the global community. These converged architecture discussions are instructive based on the time when they occurred, and their refinement of environmental & climate variables and associated trade space(s). The examples of required environment parameters, leads into essential climate variables and becomes a critical part the knowledge domain space for a new rule based decision architecting tool that can iterate an optimized best value constellation solution as its goal. The process of discovering new architectural alternatives reinforces the necessity for international collaborative efforts and elicits identification by and responses from key stakeholders.
机译:在未来30年内收集地球的关键气候签名是许多世界各国政府和国际组织的明显优先事项。实施解决方案需要从今天的科学任务到“运营”的星座,这足以满足决策者,科学调查人员和全球用户的未来需求,以获得可信数据。在早期的撰写努力中,时间花了分布出'运营'的星座组件(以下Lite审查)。本文将侧重于历史上不同观点的造成架构替代品。首先,严重证券化的NPOESS架构,同时通过需求增长和不持续的合作;但是,一个有序(雄心勃勃)星座构建体,用于学习其目标环境参数集合(从1994年开始)。其次,研究了来自基于空间的传感器的ECV(基本气候变量2006)的GCOS(2006)鉴定的地球气候观测要求,以全球覆盖范围和足够的质量,以确保主要全球和国际组织(UNFCCC和IPCC)的需求。三是如何应用基于规则的决策引擎论文(2012)〜([17])可以改善地球观测卫星系统的架构行业,允许比较(s)现有架构,并获得对全球架构的建议的见解(评估替代品的价值并有效地探索贸易空间)并提供全球社区。这些融合架构讨论是基于它们发生的时间的有效性,以及它们对环境和气候变量和相关贸易空间的改进。所需环境参数的示例导致基本的气候变量,并成为一种基于规则的决策架构工具的知识域空间的关键部分,可以迭代优化的最佳价值星座解决方案作为其目标。发现新的建筑替代方案的过程强化了国际合作努力的必要性,并享有关键利益攸关方的识别和响应。

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