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基于网络和无箱频率分析

Network-Based and Binless Frequency Analyses.

作者信息

Derrible Sybil, Ahmad Nasir

机构信息

Complex and Sustainable Urban Networks (CSUN) Laboratory, University of Illinois at Chicago, Chicago, IL, United States of America.

出版信息

PLoS One. 2015 Nov 3;10(11):e0142108. doi: 10.1371/journal.pone.0142108. eCollection 2015.

Abstract

We introduce and develop a new network-based and binless methodology to perform frequency analyses and produce histograms. In contrast with traditional frequency analysis techniques that use fixed intervals to bin values, we place a range ±ζ around each individual value in a data set and count the number of values within that range, which allows us to compare every single value of a data set with one another. In essence, the methodology is identical to the construction of a network, where two values are connected if they lie within a given a range (±ζ). The value with the highest degree (i.e., most connections) is therefore assimilated to the mode of the distribution. To select an optimal range, we look at the stability of the proportion of nodes in the largest cluster. The methodology is validated by sampling 12 typical distributions, and it is applied to a number of real-world data sets with both spatial and temporal components. The methodology can be applied to any data set and provides a robust means to uncover meaningful patterns and trends. A free python script and a tutorial are also made available to facilitate the application of the method.

摘要

我们引入并开发了一种基于网络的无区间方法来进行频率分析并生成直方图。与使用固定区间对数值进行分组的传统频率分析技术不同,我们在数据集中的每个单独值周围设置一个±ζ的范围,并计算该范围内的值的数量,这使我们能够将数据集中的每个值相互比较。从本质上讲,该方法与构建网络相同,如果两个值位于给定范围内(±ζ),则它们相互连接。因此,度数最高(即连接最多)的值被视为分布的众数。为了选择最佳范围,我们观察最大聚类中节点比例的稳定性。该方法通过对12种典型分布进行采样得到验证,并应用于一些具有空间和时间成分的实际数据集。该方法可应用于任何数据集,并提供了一种强大的手段来揭示有意义的模式和趋势。还提供了一个免费的Python脚本和教程,以方便该方法的应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/11d4/4631440/fff1a5520c48/pone.0142108.g001.jpg

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