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Incremental and Parallel Analytics on Astrophysical Data Streams

机译:天体数据流的增量和并行分析

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Stream processing methods and online algorithms are increasingly appealing in the scientific and large-scale data management communities due to increasing ingestion rates of scientific instruments, the ability to produce and inspect results interactively, and the simplicity and efficiency of sequential storage access over enormous datasets. This article will showcase our experiences in using off-the-shelf streaming technology to implement incremental and parallel spectral analysis of galaxies from the Sloan Digital Sky Survey (SDSS) to detect a wide variety of galaxy features. The technical focus of the article is on a robust, highly scalable principal components analysis (PCA) algorithm and its use of coordination primitives to realize consistency as part of parallel execution. Our algorithm and framework can be readily used in other domains.
机译:由于科学仪器的摄取率不断提高,交互式生成和检查结果的能力以及对庞大数据集的顺序存储访问的简便性和效率,流处理方法和在线算法在科学和大规模数据管理社区中越来越受欢迎。本文将展示我们在利用现成的流技术实施Sloan Digital Sky Survey(SDSS)的星系增量和平行光谱分析以检测各种星系特征方面的经验。本文的技术重点是一种健壮的,高度可扩展的主成分分析(PCA)算法,以及使用协调原语来实现一致性(作为并行执行的一部分)。我们的算法和框架可以很容易地在其他领域中使用。

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