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Assessing accuracy and precision for space?¢????based measurements of carbon dioxide: An associated statistical methodology revisited

机译:评估基于空间的二氧化碳测量的精确度和精确度:一种相关的统计方法

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Analyzing retrieval accuracy and precision is an important element of space?¢????based CO 2 retrievals. However, this error analysis is sometimes challenging to perform rigorously because of the subtlety of Multivariate Statistics . To help address this issue, we revisit some fundamentals of Multivariate Statistics that help reveal the statistical essence of the associated error analysis. We show that the related statistical methodology is useful for revealing the intrinsic discrepancy and relation between the retrieval error for a nonzero?¢????variate CO 2 state and that for a zero?¢????variate one. Our study suggests that the two scenarios essentially yield the same?¢????magnitude accuracy, while the latter scenario yields a better precision than the former. We also use this methodology to obtain a rigorous framework systematically and explore a broadly used approximate framework for analyzing CO 2 retrieval errors. The approximate framework introduces errors due to an essential, but often forgotten, fact that a priori climatology in reality is never equal to the true state. Due to the nature of the problem considered, realistic numerical simulations that produce synthetic spectra may be more appropriate than remote sensing data for our specific exploration. As highlighted in our retrieval simulations, utilizing the approximate framework may not be universally satisfactory in assessing the accuracy and precision of X co 2 retrievals (with errors up to 0.17?¢????0.28?¢????ppm and 1.4?¢????1.7?¢????ppm, respectively, at SNR?¢????=?¢????400). In situ measurements of CO 2 are needed to further our understanding of this issue and related implications.
机译:分析检索的准确性和准确性是基于空间的CO 2检索的重要元素。但是,由于多元统计的精妙之处,有时很难严格执行此错误分析。为了帮助解决此问题,我们重新审视了多元统计的一些基础知识,这些基础有助于揭示相关错误分析的统计本质。我们表明,相关的统计方法对于揭示非零变量CO 2状态与零变量变量CO 2状态的内在差异和检索误差之间的关系是有用的。我们的研究表明,这两种情况基本上产生相同的幅度精度,而后一种情况比前一种情况产生更好的精度。我们还使用这种方法系统地获得了一个严格的框架,并探索了用于分析CO 2检索误差的广泛使用的近似框架。近似框架会引入错误,这是由于以下事实引起的,但实际上却常常被人们遗忘,即现实中的先验气候永远不会等于真实状态。由于所考虑问题的性质,产生合成光谱的逼真的数值模拟可能比遥感数据更适合我们的具体探索。正如我们的检索模拟中所强调的那样,在评估X co 2检索的准确性和精确性时,使用近似框架可能并不能令人满意(误差高达0.17≤0.2≤0.28≤ppm≤1.4。分别在SNR(400)时为1.7ppm(ppm)。需要对CO 2进行现场测量,以加深我们对该问题及其相关含义的理解。

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