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景观可视性分析工具及技术改进综述。

A Survey of the Landscape Visibility Analysis Tools and Technical Improvements.

机构信息

College of Architecture and Urban Planning, Tongji University, Shanghai 200092, China.

Bartlett School of Architecture, University College London, London WC1H0QB, UK.

出版信息

Int J Environ Res Public Health. 2023 Jan 18;20(3):1788. doi: 10.3390/ijerph20031788.

Abstract

Visual perception of the urban landscape in a city is complex and dynamic, and it is largely influenced by human vision and the dynamic spatial layout of the attractions. In return, landscape visibility not only affects how people interact with the environment but also promotes regional values and urban resilience. The development of visibility has evolved, and the digital landscape visibility analysis method allows urban researchers to redefine visible space and better quantify human perceptions and observations of the landscape space. In this paper, we first reviewed and compared the theoretical results and measurement tools for spatial visual perception and compared the value of the analytical methods and tools for landscape visualization in multiple dimensions on the principal of urban planning (e.g., complex environment, computational scalability, and interactive intervention between computation and built environment). We found that most of the research was examined in a static environment using simple viewpoints, which can hardly explain the actual complexity and dynamic superposition of the landscape perceptual effect in an urban environment. Thus, those methods cannot effectively solve actual urban planning issues. Aiming at this demand, we proposed a workflow optimization and developed a responsive cross-scale and multilandscape object 3D visibility analysis method, forming our analysis model for testing on the study case. By combining the multilandscape batch scanning method with a refined voxel model, it can be adapted for large-scale complex dynamic urban visual problems. As a result, we obtained accurate spatial visibility calculations that can be conducted across scales from the macro to micro, with large external mountain landscapes and small internal open spaces. Our verified approach not only has a good performance in the analysis of complex visibility problems (e.g., we defined the two most influential spatial variables to maintain good street-based landscape visibility) but also the high efficiency of spatial interventions (e.g., where the four recommended interventions were the most valuable), realizing the improvement of intelligent landscape evaluations and interventions for urban spatial quality and resilience.

摘要

城市景观的视觉感知是复杂而动态的,主要受到人类视觉和景观吸引力的动态空间布局的影响。反过来,景观可见性不仅影响人们与环境的互动方式,还促进了区域价值和城市弹性。可见性的发展已经演变,数字景观可见性分析方法使城市研究人员能够重新定义可见空间,并更好地量化人类对景观空间的感知和观察。在本文中,我们首先回顾和比较了空间视觉感知的理论结果和测量工具,并根据城市规划的原则(如复杂环境、计算可扩展性以及计算与建筑环境之间的交互干预)比较了景观可视化分析方法和工具在多个维度上的价值。我们发现,大多数研究都是在静态环境中使用简单的视点进行检查的,这很难解释城市环境中景观感知效果的实际复杂性和动态叠加。因此,这些方法不能有效地解决实际的城市规划问题。针对这一需求,我们提出了一种工作流程优化,并开发了一种响应式跨尺度多景观对象 3D 可见性分析方法,形成了我们在案例研究中测试的分析模型。通过将多景观批量扫描方法与细化的体素模型相结合,可以适应大规模复杂的动态城市视觉问题。结果,我们获得了可以从宏观到微观跨尺度进行的精确空间可见性计算,包括外部大山景观和内部小开放空间。我们验证的方法不仅在分析复杂可见性问题(例如,我们定义了两个最具影响力的空间变量来保持良好的基于街道的景观可见性)方面表现出色,而且在空间干预方面的效率也很高(例如,建议的四个干预措施中哪四个最有价值),实现了对城市空间质量和弹性的智能景观评估和干预的改进。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/45a5/9914139/8c70564cf6ca/ijerph-20-01788-g001.jpg

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