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StreetVizor: Visual Exploration of Human-Scale Urban Forms Based on Street Views

机译:StreetVizor:基于街景的人类规模城市形态的视觉探索

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Urban forms at human-scale, i.e., urban environments that individuals can sense (e.g., sight, smell, and touch) in their daily lives, can provide unprecedented insights on a variety of applications, such as urban planning and environment auditing. The analysis of urban forms can help planners develop high-quality urban spaces through evidence-based design. However, such analysis is complex because of the involvement of spatial, multi-scale (i.e., city, region, and street), and multivariate (e.g., greenery and sky ratios) natures of urban forms. In addition, current methods either lack quantitative measurements or are limited to a small area. The primary contribution of this work is the design of StreetVizor, an interactive visual analytics system that helps planners leverage their domain knowledge in exploring human-scale urban forms based on street view images. Our system presents two-stage visual exploration: 1) an AOI Explorer for the visual comparison of spatial distributions and quantitative measurements in two areas-of-interest (AOIs) at city- and region-scales; 2) and a Street Explorer with a novel parallel coordinate plot for the exploration of the fine-grained details of the urban forms at the street-scale. We integrate visualization techniques with machine learning models to facilitate the detection of street view patterns. We illustrate the applicability of our approach with case studies on the real-world datasets of four cities, i.e., Hong Kong, Singapore, Greater London and New York City. Interviews with domain experts demonstrate the effectiveness of our system in facilitating various analytical tasks.
机译:人类规模的城市形式,即个人在日常生活中可以感知(例如,视觉,嗅觉和触觉)的城市环境,可以在各种应用(例如城市规划和环境审核)中提供空前的见解。对城市形态的分析可以帮助规划人员通过基于证据的设计开发高质量的城市空间。但是,由于涉及城市形式的空间,多尺度(即城市,区域和街道)以及多变量(例如绿地和天空比例)的性质,所以这种分析是复杂的。另外,当前的方法要么缺乏定量测量,要么被限制在小范围内。这项工作的主要贡献是StreetVizor的设计,StreetVizor是一个交互式视觉分析系统,可以帮助规划人员利用其领域知识,基于街景图像探索人类规模的城市形态。我们的系统分为两个阶段的视觉探索:1)AOI Explorer,用于在城市和区域范围内对两个感兴趣区域(AOI)中的空间分布和定量测量进行视觉比较; 2)和带有新颖平行坐标图的Street Explorer,用于在街道规模上探索城市形式的细粒度细节。我们将可视化技术与机器学习模型集成在一起,以方便检测街景模式。我们通过对四个城市,即香港,新加坡,大伦敦和纽约的真实数据集进行案例研究来说明我们的方法的适用性。与领域专家的访谈表明,我们的系统在促进各种分析任务方面的有效性。

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