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首页> 外文期刊>Journal of the American Planning Association >Turning Highways into Main Streets: Two Innovations in Planning Methodology
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Turning Highways into Main Streets: Two Innovations in Planning Methodology

机译:把高速公路变成大街:规划方法的两项创新

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摘要

In most visual preference surveys, citizens are shown a sample of scenes and asked to rate them on a preference scale. Scenes are then classified by type, and for each scene type, statistics are computed. In the end, results may suggest that one scene type is preferred to another, but that is about all that can be said. In this article, we offer an alternative: a visual assessment study. In our example, we find what qualities distinguish main streets from other highways. Main street stakeholders were shown photos and video clips of state highways and asked to score them on a "main street" scale. We then estimated a cross-classified random effects model using main street scores as the dependent variable, and characteristics of scenes and viewers as independent variables. This class of models is new to the planning field and is preferred when random effects are present and an outcome varies systematically in two dimensions, as do ratings of different scenes by different viewers. The model we estimated can now be used to qualify certain highways for special treatment as main streets or to redesign certain highways to be more main street-like.
机译:在大多数视觉偏好调查中,会向市民展示场景样本,并要求他们按照偏好等级对其进行评分。然后按类型对场景进行分类,并针对每种场景类型计算统计信息。最后,结果可能表明一种场景类型比另一种场景类型更可取,但这就是所有可以说的。在本文中,我们提供了一种替代方法:视觉评估研究。在我们的示例中,我们发现主要街道与其他高速公路有什么区别。向主要街道的利益相关者显示了州道的照片和视频片段,并要求他们按照“主要街道”的标准进行评分。然后,我们使用主要街道得分作为因变量,将场景和观众的特征作为自变量来估计交叉分类的随机效应模型。此类模型是规划领域的新模型,当存在随机效果且结果在两个维度上系统地变化时,它是首选模型,不同观众对不同场景的评分也是如此。我们估计的模型现在可以用于将某些高速公路作为主要街道进行特殊处理,或将某些高速公路重新设计为更像主要街道。

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