The structure and information spread capability of the network formed by integrated fitness apps

E. Vermeulen, S. Grobbelaar
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Abstract

PurposeIn this article we aim to understand how the network formed by fitness tracking devices and associated apps as a subset of the broader health-related Internet of things is capable of spreading information.Design/methodology/approachThe authors used a combination of a content analysis, network analysis, community detection and simulation. A sample of 922 health-related apps (including manufacturers' apps and developers) were collected through snowball sampling after an initial content analysis from a Google search for fitness tracking devices.FindingsThe network of fitness apps is disassortative with high-degree nodes connecting to low-degree nodes, follow a power-law degree distribution and present with low community structure. Information spreads faster through the network than an artificial small-world network and fastest when nodes with high degree centrality are the seeds.Practical implicationsThis capability to spread information holds implications for both intended and unintended data sharing.Originality/valueThe analysis confirms and supports evidence of widespread mobility of data between fitness and health apps that were initially reported in earlier work and in addition provides evidence for the dynamic diffusion capability of the network based on its structure. The structure of the network enables the duality of the purpose of data sharing.
综合健身app形成的网络结构和信息传播能力
在本文中,我们旨在了解由健身跟踪设备和相关应用组成的网络是如何作为更广泛的健康相关物联网的一个子集来传播信息的。设计/方法/方法作者采用了内容分析、网络分析、社区检测和仿真相结合的方法。在谷歌搜索健身追踪设备的初步内容分析后,通过滚雪球抽样收集了922个与健康相关的应用程序(包括制造商的应用程序和开发者的应用程序)。发现健身应用网络具有高节点与低节点相连接的不协调性,服从幂律度分布,呈现低社区结构。信息在网络中的传播速度比人工的小世界网络更快,当高度中心性的节点作为种子时传播速度最快。实际意义这种传播信息的能力对有意和无意的数据共享都有意义。该分析证实并支持了早期工作中最初报告的健身和健康应用程序之间数据广泛流动的证据,此外还为基于其结构的网络动态扩散能力提供了证据。网络的结构实现了数据共享目的的双重性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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