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QUANTIFYING UNCERTAINTY:CALCULATING INTERVAL ESTIMATES USING QUALITY CONTROL RESULTS

机译:量化不确定性:使用质量控制结果计算间隔估算值

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EPA's Great Lakes National Program Office (GLNPO) is leading one of the most extensive studies of a lake ecosystem ever undertaken.The Lake Michigan Mass Balance Study (LMMB Study) is a coordinated effort among state,federal,and academic scientists to monitor tributary and atmospheric pollutant loads,develop source inventories of toxic substances,and evaluate the fate and effects of these pollutants in Lake Michigan.A key objective of the LMMB Study is to construct a mass balance model for several important contaminants in the environment:PCBs,atrazine,mercury,and trans-nonachlor.The mathematical mass balance models will provide a state-of-the-art tool for evaluating management scenarios and options for control of toxics in Lake Michigan. At the outset of the LMMB Study,managers recognized that the data gathered and the model developed from the study would be used extensively by data users responsible for making environmental,economic,and policy decisions.Environmental measurements are never true values and always contain some level of uncertainty.Decision makers,therefore,must recognize and be sufficiently comfortable with the uncertainty associated with data on which their decisions are based.The quality of data gathered in the LMMB was defined,controlled,and assessed through a variety of quality assurance (QA) activities,including QA program planning,development of QA project plans,implementation of a QA workgroup,training,data verification,and implementation of a standardized data reporting format.As part of this QA program,GLNPO has been developing quantitative assessments that define data quality at the data set level.GLNPO also is developing approaches to derive estimated concentration ranges (interval estimates) for specific field sample results (single study results) based on uncertainty.The interval estimates must be used with consideration to their derivation and the types of variability that are and are not included in the interval.
机译:EPA的大湖国家计划办公室(GLNPO)牵头开展了有史以来最广泛的湖泊生态系统研究。密歇根湖质量平衡研究(LMMB研究)是州,联邦和学术科学家之间共同努力监测支流和大气污染物负荷,开发有毒物质的来源清单,并评估这些污染物在密歇根湖的命运和影响。LMMB研究的一个主要目标是为环境中的几种重要污染物建立质量平衡模型:PCBs,azine去津,数学质量平衡模型将提供最先进的工具,用于评估密歇根湖的管理方案和控制有毒物质的选择。在LMMB研究开始之初,管理者意识到负责研究环境,经济和政策决策的数据用户将广泛使用从该研究中收集的数据和开发的模型。环境测量永远不是真实的值,并且始终包含一定水平因此,决策者必须认识到决策决策所依据的数据相关的不确定性并对其感到足够满意.LMMB中收集的数据质量是通过各种质量保证(QA)进行定义,控制和评估的)活动,包括质量检查计划规划,质量检查项目计划的制定,质量检查工作组的实施,培训,数据验证以及标准化数据报告格式的实施。作为此质量检查计划的一部分,GLNPO一直在开发定义数据的定量评估数据集级别的质量。GLNPO还正在开发方法以得出估计的浓度范围(间隔估计)对于基于不确定性的特定现场样本结果(单个研究结果)。必须使用区间估计值,并要考虑区间推导和区间中包括和不包括的可变性类型。

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