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Identifying spatio-temporal hotspots of human activity that are popular non-work destinations

机译:识别人类活动的时空热点是流行的非工作目的地

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The improved temporal and spatial granularity of data now available from current information technologies offers an opportunity to study previously unexplored dimensions of the relationship between built environment and social outcomes. Within the field of urban studies, an old question worth revisiting with these new technologies is how to best trace the spatial boundaries that circumscribe a place or location to explore non-work activity. In this study, we explore a data-driven definition of places as units of analysis that can be used to explore non-work activity in Singapore. Such a definition of place characterizes an urban space in terms of its concentration of activity and the topology of the built environment-features that are especially important to urban planners. We utilize available smartphone data to develop a systematic framework to identify locations with a concentrated human presence. Using a cylinder moving over a grid representing Singapore, we scan aggregated smartphones locational requests (by time and cell), identifying areas with atypical high concentrations at a given time. Our tool identified 93 places with a concentrated human presence. Direct observation of six of these places at the selected times in conjunction with additional transportation and population data indicated that the topology of commercial establishments provided a strong approximation of non-work activity at a given time and place. Having established the relevance of commercial establishments in approximating non-work activity, then points-of-interest data within the 93 derived places are used to propose a typology of commercial patches, based on their spatial configuration. Nine metrics of the geometry and topology of patches of establishments, such as compacity and their dependence on proximity to shopping malls, were developed. These combined variables revealed more temporal and spatial variety within locations than had previously been recognized. The most popular places for non-work activity were densely configured with various commercial sub-spaces or patches appealing to different lifestyles and income groups. This study suggests that a location/place can be best defined as a highly detailed, multi-faceted, and always evolving area of activity rather than as a fixed location with temporal and unmovable boundaries. Suggesting a dynamic redefinition of location/place that builds on other recent work, this work offers potential contributions to locational models for non-work activity.
机译:现在可以从当前信息技术获得的数据的改进的时间和空间粒度提供了一个学习建造环境与社会结果之间关系的先前未开发的尺寸的机会。在城市研究领域中,一个值得重新审视这些新技术的旧问题是如何最好地追踪条件或地点的空间边界,以探索非工作活动。在这项研究中,我们探讨了数据驱动的地方定义作为分析单位,可用于探索新加坡的非工作活动。这种地方的定义在其活动浓度和建造环境的拓扑方面具有城市空间,对城市规划者特别重要。我们利用可用的智能手机数据来开发系统框架,以识别具有集中的人的存在的位置。使用圆柱体移动在代表新加坡的网格上,我们扫描聚合的智能手机位置请求(按时间和单元格),在给定时间识别具有非典型高浓度的区域。我们的工具确定了93个具有浓缩人类存在的地方。直接观察这些地方的六个地方,结合额外的运输和人口数据表明,商业机构的拓扑在给定的时间和地点提供了不良非工作活动的强烈近似。建立了商业机构在近似非工作活动中的相关性,然后在93个派生地点内的兴趣点数据用于提出基于其空间配置的商业补丁的类型。开发了九个特征和拓扑的九个度量,如兼容性及其对购物商场的靠近的依赖。这些组合变量在位置内显示出比先前所识别的位置内的时间和空间多样。最受欢迎的非工作活动的地方密集地配置了各种商业子空间或贴片,吸引不同的生活方式和收入群体。本研究表明,位置/地方可以最好地定义为高度详细的多方面,并且始终不断地发展活动区域,而不是具有时间和不可移动的边界的固定位置。建议在其他最近工作的位置/地点的动态重新定义,这项工作为非工作活动提供了潜在的贡献。

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