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A comparative study of social interaction frequencies among social network members in five countries

机译:五个国家社会网络成员社会互动频率的比较研究

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Social interaction patterns are relevant to explain (social) travel behavior. As such, the objective of this paper is to comparatively study the factors that influence social interaction frequency among social network members with different communication modes. Based on data from seven surveys on social networks, this analysis seeks to shed some light on (i) the similarities and differences in social interaction frequency patterns, (ii) the relation of personal and network characteristics with observed patterns, and (iii) the extent to which these associations are consistent across contexts, in terms of effect direction and magnitude. A multilevel-multivariate lognormal hurdle model is used to jointly analyze social interaction frequency patterns across all datasets. Level 1 includes information on ego-alter dyad characteristics, level 2 includes ego level socio-demographic and aggregate social network characteristics, while level 3 includes information specific to each context where data was collected. In line with network capital theory, results show the existence of very consistent associations between social interaction frequency and some network and dyad characteristics such as network size, ego-alter distance, and emotional closeness, which showed some degree of generality irrespective of context. Building up on previous research, results also suggest that the effect of a higher transport cost-to earnings ratio is more likely to manifest in the tie-formation phase, in such a way that the geographical spread of the network will tend to be smaller, but conditional on such a network distribution, the cost-to-earnings ratio effect becomes negligible. For other variables such as education level, gender and relationship type, effect patterns were less clear, which might be explained by socio-economic, and other contextual factors, as well as methodological differences across studies. The model presented here can provide average levels of demand for social interactions, which bounded by the geographical distribution of networks, can be used to further understand travel demand in urban environments and transportation systems at the local or regional level.
机译:社交互动模式与解释(社会)旅行行为有关。因此,本文的目的是相互研究影响具有不同通信模式的社交网络成员之间的社交互动频率的因素。基于来自社交网络上的七次调查的数据,此分析旨在阐明(i)社交互动频率模式的相似性和差异,(ii)与观察到的模式的个人和网络特征的关系,(iii)在效果方向和幅度方面,这些关联在上下文中的范围保持范围。多变量 - 多变量对数正常障碍模型用于共同分析所有数据集的社交交互频率模式。 1级包括关于自我改变Dyad特征的信息,2级包括自我级别的社会人口统计和聚合社交网络特征,而第3级包括所收集数据的每个上下文的信息。符合网络资本理论,结果表明社交交互频率与某些网络和二元特征(如网络规模,自我改变距离和情绪近距离)之间存在非常一致的关联,其出现了一定程度的普遍性。在以前的研究中构建,结果还表明,更高的运输成本与收益比率的影响更容易在界面形成阶段表现出来,以这样的方式,即网络的地理扩展趋于更小,但有条件的网络分布,成本与收益比率效果可忽略不计。对于其他变量,如教育水平,性别和关系类型,效果模式不太明确,这可能由社会经济和其他语境因素和其他研究的方法差异解释。这里展示的模型可以为社交交互的平均需求水平提供,这是通过网络地域分布的限制,可用于在本地或区域层面的城市环境和运输系统中进一步了解旅行需求。

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