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The effect of social influence and social interactions on the adoption of a new technology: The use of bike sharing in a student population

机译:社会影响与社会互动对新技术采用的影响:在学生人口中使用自行车分享

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The present study investigates how social influence and social interactions can affect the adoption of new technologies, using stated preference (SP) survey data combined with an "accelerated reality" experience of social interaction among the respondents. Specifically, the intention to use a pro-environmental transport mode (the bike sharing) during a public transport strike within a cohort of students has been analysed. Previous studies have modelled social influence effects using SP data by providing a hypothetical scenario with simulated interactions or information about social conformity processes (i.e. social adoption) during the survey. In our paper, in addition to the impact of assumed social norms, the effect of live/real social interactions is included in the survey. SP survey is developed to investigate the effect of Level-of-Service attributes on the hypothetical choices in the scenario of a public transport strike. Besides the pre-defined attributes characterising the alternatives in the SP design, the survey includes techniques to acquire information on conformity and social interactions. Specifically, the interviewees undertake a before and after stated preference experiment (SP1 and SP2), with a period of group discussion in between the two parts. This SP experiment involves different cognitive and interpersonal mechanisms, such as the functional information exchange on benefits and drawbacks of cycling and bike sharing. The aim is to establish whether hypothetical scenarios of social conformity are different from real/live social interactions and whether these social influence processes actually affect the individuals' mode choice. A joint SP1/SP2 mixed logit (ML) model has been estimated to explore the choice behaviour of individuals and allows us to incorporate the inertia/propensity to change behaviour between SP1 and SP2. Moreover, considering the "Reflexive Layers of Influence" (RU) framework, the processes generated by social interactions (diffusion, translation and reflexivity) are measured and incorporated in the model. We finally show the effect of these social influence variables on the goodness-of-fit of the models and choice simulation for prediction. We also draw conclusions about the value of such enhanced choice models in understanding and predicting the impacts of social interactions on choice behaviour in the context of new transport technologies.
机译:本研究调查了社会影响和社会互动如何影响新技术的采用,使用所述偏好(SP)调查数据与受访者之间的“加速现实”的经验相结合。具体而言,分析了在学生队列中公共交通罢工中使用的有意使用“自行车共享”。以前的研究通过提供了具有模拟相互作用或关于调查期间的社会符合性过程(即社会采用)的模拟相互作用或信息来建模社会影响效应。在我们的论文中,除了假定的社会规范的影响外,还包括现场/真实社交互动的影响。开发了SP调查,以调查服务水平属性对公共交通罢工情景中的假设选择的影响。除了预定义的属性,还表征了SP设计中的替代品,该调查包括获取有关符合性和社交交互的信息的技术。具体而言,受访者在两部分之间进行了一定时间的讨论之前和之后进行过偏好实验(SP1和SP2)。该SP实验涉及不同的认知和人际关系机制,例如骑自行车和自行车共享的益处和缺点的功能信息交流。目的是建立社会符合性的假设情景与真正/现场社交互动不同,这些社会影响过程是否实际上影响个人的模式选择。据估计,联合SP1 / SP2混合Logit(ML)模型探讨了个体的选择行为,并允许我们纳入惯性/倾向改变SP1和SP2之间的行为。此外,考虑到“反射层数”(Ru)框架,通过社交交互(扩散,翻译和反射性)产生的过程在模型中被测量并结合在模型中。我们终于展现了这些社会影响变量对模型的良好健康和选择仿真的影响。我们还得出了关于这种增强选择模型的价值的结论,以了解和预测社会互动对新交通技术背景下的社会互动对选择行为的影响。

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