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首页> 外文期刊>Journal of Geophysical Research, D. Atmospheres: JGR >Analyzing Wildland Fire Smoke Emissions Data Using Compositional Data Techniques
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Analyzing Wildland Fire Smoke Emissions Data Using Compositional Data Techniques

机译:使用组成数据技术分析威胁火灾烟雾排放数据

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By conservation of mass, the mass of wildland fuel that is pyrolyzed and combusted must equal the mass of smoke emissions, residual char, and ash. For a given set of conditions, these amounts are fixed. This places a constraint on smoke emissions data that violates key assumptions for many of the statistical methods ordinarily used to analyze these data such as linear regression, analysis of variance, and t tests. These data are inherently multivariate, relative, and nonnegative parts of a whole and are then characterized as so-called compositional data. This paper introduces the field of compositional data analysis to the biomass burning emissions community and provides examples of statistical treatment of emissions data. Measures and tests of proportionality, unlike ordinary correlation, allow one to coherently investigate associations between parts of the smoke composition. An alternative method based on compositional linear trends was applied to estimate trace gas composition over a range of combustion efficiency that reduced prediction error by 4% while avoiding use of modified combustion efficiency as if it were an independent variable. Use of log-ratio balances to create meaningful contrasts between compositional parts definitively stressed differences in smoke emissions from fuel types originating in the southeastern and southwestern United States. Application of compositional statistical methods as an appropriate approach to account for the relative nature of data about the composition of smoke emissions and the atmosphere is recommended.
机译:通过质量守恒,热解和燃烧的野生燃料的质量必须等于烟雾排放,残留炭和灰分的质量。对于给定的一组条件,这些量是固定的。这对烟雾排放数据的限制造成了违反常规用于分析这些数据的许多统计方法的关键假设,例如线性回归,方差分析和T测试。这些数据本质上是一种整体的多变量,相对和非负部分,然后表征为所谓的组成数据。本文介绍了对生物质燃烧排放社区的组建数据分析领域,并提供了排放数据的统计处理示例。与普通相关性不同,相比之下的措施和比例允许一致地调查烟雾成分部分之间的关​​联。应用基于组成线性趋势的替代方法来估计在一系列燃烧效率范围内的痕量气体组合物,即减少预测误差4%,同时避免使用改性的燃烧效率,好像它是一个独立的变量。使用日志比率平衡在组成部分之间产生有意义的对比,明确地强调了来自美国东南部和西南部的燃料排放的烟雾排放差异。建议用组成统计方法作为占烟雾排放组成和气氛的相对性质的适当方法。

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