Modeling user concerns in Sharing Economy: the case of food delivery apps

Modeling user concerns in Sharing Economy: the case of food delivery apps
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DOI:
10.1007/s10515-020-00274-7
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发表时间:
2020-08-09
影响因子:
3.4
通讯作者:
Mahmoud A
Mahmoud A
中科院分区:
计算机科学3区
文献类型:
--
作者:
Williams G;Tushev M;Ebrahimi F;Mahmoud A

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Uber、Airbnb 和 TaskRabbit 等共享经济应用程序在过去十年中引起了消费者的巨大兴趣。这些应用程序所支持的点对点业务交换的独特形式与显着的经济增长水平相关,帮助资源有限社区的人们建立社会资本并提升经济阶梯。然而,由于其运营环境的多维性,并且缺乏有效的方法来捕获和描述最终用户的担忧,共享经济应用程序往往难以生存。为了应对这些挑战,在本文中,我们研究了共享经济应用程序生态系统中的人群反馈。具体来说,我们提出了一个针对食品配送应用程序生态系统的案例研究。使用定性分析方法,我们综合了 Twitter 源和这些应用程序的应用程序商店评论中存在的重要用户问题。我们进一步提出并本质上评估了一个自动化程序,用于生成这些问题的简洁模型。我们的工作为全面了解共享经济应用生态系统中的用户需求迈出了第一步。我们的目标是为共享经济应用程序开发人员提供系统指南,帮助他们最大限度地提高市场适应性,减轻最终用户的担忧并优化他们的体验。
Sharing Economy apps, such as Uber, Airbnb, and TaskRabbit, have generated a substantial consumer interest over the past decade. The unique form of peer-to-peer business exchange these apps have enabled has been linked to significant levels of economic growth, helping people in resource-constrained communities to build social capital and move up the economic ladder. However, due to the multidimensional nature of their operational environments, and the lack of effective methods for capturing and describing their end-users’ concerns, Sharing Economy apps often struggle to survive. To address these challenges, in this paper, we examine crowd feedback in ecosystems of Sharing Economy apps. Specifically, we present a case study targeting the ecosystem of food delivery apps. Using qualitative analysis methods, we synthesize important user concerns present in the Twitter feeds and app store reviews of these apps. We further propose and intrinsically evaluate an automated procedure for generating a succinct model of these concerns. Our work provides a first step toward building a full understanding of user needs in ecosystems of Sharing Economy apps. Our objective is to provide Sharing Economy app developers with systematic guidelines to help them maximize their market fitness and mitigate their end-users’ concerns and optimize their experience.
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