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Assessing environmental features related to mental health: a reliability study of visual streetscape images

机译:评估与心理健康有关的环境特征:视觉街景图像的可靠性研究

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Background An association between depressive symptoms and features of built environment has been reported in the literature. A remaining research challenge is the development of methods to efficiently capture pertinent environmental features in relevant study settings. Visual streetscape images have been used to replace traditional physical audits and directly observe the built environment of communities. The aim of this work is to examine the inter-method reliability of the two audit methods for assessing community environments with a specific focus on physical features related to mental health. Methods Forty-eight postcodes in urban and rural areas of Cambridgeshire, England were randomly selected from an alphabetical list of streets hosted on a UK property website. The assessment was conducted in July and August 2012 by both physical and visual image audits based on the items in Residential Environment Assessment Tool (REAT), an observational instrument targeting the micro-scale environmental features related to mental health in UK postcodes. The assessor used the images of Google Street View and virtually "walked through" the streets to conduct the property and street level assessments. Gwet’s AC1 coefficients and Bland-Altman plots were used to compare the concordance of two audits. Results The results of conducting the REAT by visual image audits generally correspond to direct observations. More variations were found in property level items regarding physical incivilities, with broad limits of agreement which importantly lead to most of the variation in the overall REAT score. Postcodes in urban areas had lower consistency between the two methods than rural areas. Conclusions Google Street View has the potential to assess environmental features related to mental health with fair reliability and provide a less resource intense method of assessing community environments than physical audits.
机译:背景技术文献报道了抑郁症状与建筑环境特征之间的关联。剩下的研究挑战是开发在相关研究环境中有效捕获相关环境特征的方法。视觉街景图像已用于代替传统的物理审核,并直接观察社区的建成环境。这项工作的目的是检查两种用于评估社区环境的审核方法在方法间的可靠性,特别关注与心理健康相关的身体特征。方法从英国房地产网站上托管的街道字母列表中随机选择英格兰剑桥郡市区和郊区的48个邮政编码。评估是在2012年7月和2012年8月通过物理和视觉图像审核进行的,该审核基于“居住环境评估工具”(REAT)中的项目进行,该工具是针对英国邮政编码中与心理健康相关的微观环境特征的观察仪器。评估人员使用Google街景的图像,并实际上“穿过”街道进行财产和街道水平评估。 Gwet的AC1系数和Bland-Altman图用于比较两次审核的一致性。结果通过视觉图像审核进行REAT的结果通常对应于直接观察。在财产级别的项目中,与人身伤害有关的变化更多,协议的广泛限制重要地导致了整个REAT分数的大部分变化。与农村地区相比,城市地区的邮政编码在两种方法之间的一致性较低。结论Google街景视图具有以合理的可靠性评估与心理健康相关的环境特征的潜力,并且与物理审核相比,它提供了一种资源占用较少的评估社区环境的方法。

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