论文标题

Seemo:一种新的设计窗口窗口视图满意度评估的新工具

Seemo: A new tool for early design window view satisfaction evaluation in residential buildings

论文作者

Kim, Jaeha, Kent, Michael, Kral, Katharina, Dogan, Timur

论文摘要

人们将大约90%的终生花在室内,因此可以说,室内太空设计可以显着影响居住者的福祉。对外部的充分看法是与居住者福祉相关的最引用的室内品质之一。但是,由于城市化和致密趋势,设计师可能很难用各种内容向外部提供远景和观点,这可以满足其居住者的需求。为了更好地理解乘员视图满意度并向建筑师提供可靠的设计反馈,必须扩展现有的视图满意度数据,以捕获更广泛的视图方案和乘员。由于缺乏易于使用的早期设计分析工具,大多数相关研究在建筑实践中仍然具有挑战性。但是,对早期设计的早期评估可以是有利的,因为在早期设计中的设计决策,例如构建方向,计划布局和立面设计,可以提高视图质量。因此,本文介绍了181个参与者观点满意度调查,并具有5​​90个窗口视图。调查数据用于训练树木回归模型以预测视图满意度。通过案例研究将预测性能与现有视图评估框架进行了比较。结果表明,与框架相比,新预测对被调查结果更准确。此外,对于大多数响应,预测性能通常很高,可以验证可靠性。为了促进早期设计中的视图分析,本文介绍了整合满意度预测模型和射线铸造工具,以在CAD环境中计算视图参数。

People spend approximately 90% of their lives indoors, and thus arguably, the indoor space design can significantly influence occupant well-being. Adequate views to the outside are one of the most cited indoor qualities related to occupant well-being. However, due to urbanization and densification trends, designers may have difficulties in providing vistas and views to the outside with an assortment of content, which can support the needs of their occupants. To better understand occupant view satisfaction and provide reliable design feedback to architects, existing view satisfaction data must be expanded to capture a wider variety of view scenarios and occupants. Most related research remains challenging in architectural practice due to a lack of easy-to-use early-design analysis tools. However, early assessment of view can be advantageous as design decisions in early design, such as building orientation, plan layout, and facade design, can improve the view quality. This paper, hence, presents results from a 181 participant view satisfaction survey with 590 window views. The survey data is used to train a tree-regression model to predict view satisfaction. The prediction performance was compared to an existing view assessment framework through case studies. The result showed that the new prediction is more accurate to the surveyed result than the framework. Further, the prediction performance was generally high for most responses, verifying the reliability. To facilitate view analysis in early design, this paper describes integrating the satisfaction prediction model and a ray-casting tool to compute view parameters in the CAD environment.

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