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首页> 外文期刊>The Astrophysical journal >HOW SAMPLE COMPLETENESS AFFECTS GAMMA-RAY BURST CLASSIFICATION
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HOW SAMPLE COMPLETENESS AFFECTS GAMMA-RAY BURST CLASSIFICATION

机译:样品完整性如何影响伽马射线暴分类

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摘要

Unsupervised pattern-recognition algorithms support the existence of three gamma-ray burst classes: class 1 (long, large-fluence bursts of intermediate spectral hardness), class 2 (short, small-fluence, hard bursts), and class 3 (soft bursts of intermediate durations and fluences). The algorithms surprisingly assign larger membership to class 3 than to either of the other two classes. A known systematic bias has been previously used to explain the existence of class 3 in terms of class 1; this bias allows the fluences and durations of some bursts to be underestimated, as recently shown by Hakkila et al. We show that this bias primarily affects only the longest bursts and cannot explain the bulk of the class 3 properties. We resolve the question of class 3's existence by demonstrating how samples obtained using standard trigger mechanisms fail to preserve the duration characteristics of small―peak flux bursts. Sample incompleteness is thus primarily responsible for the existence of class 3. In order to avoid this incompleteness, we show how a new, dual-timescale peak flux can be defined in terms of peak flux and fluence. The dual-timescale peak flux preserves the duration distribution of faint bursts and correlates better with spectral hardness (and presumably redshift) than either peak flux or fluence. The techniques presented here are generic and have applicability to the studies of other transient events. The results also indicate that pattern recognition algorithms are sensitive to sample completeness; this can influence the study of large astronomical databases, such as those found in a virtual observatory.
机译:无监督模式识别算法支持三种伽马射线爆发类:1类(中等光谱硬度的长通量大长通量),2类(短通量,小通量,硬通量)和3类(软通量)持续时间和通量)。与其他两个类别中的任何一个相比,该算法令人惊讶地为类别3分配了更大的成员资格。先前已经使用一种已知的系统偏差来根据1类来解释3类的存在;正如Hakkila等人最近所显示的,这种偏见使得某些爆发的通量和持续时间被低估了。我们表明,这种偏差主要只影响最长的脉冲,不能解释3类属性的大部分。通过演示使用标准触发机制获得的样本如何无法保留小峰值通量爆发的持续时间特征,我们解决了第3类存在的问题。因此,样本不完整是导致第3类存在的主要原因。为了避免这种不完整,我们展示了如何根据峰通量和通量来定义新的双时标峰通量。双时标峰值通量保留了微弱突发的持续时间分布,并且与峰值通量或通量相比,与光谱硬度(可能是红移)的相关性更好。本文介绍的技术是通用的,可应用于其他瞬态事件的研究。结果还表明模式识别算法对样本完整性很敏感。这可能会影响大型天文数据库的研究,例如在虚拟天文台中发现的数据库。

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