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首页> 外文期刊>Building and Environment >Predicting human perception of the urban environment in a spatiotemporal urban setting using locally acquired street view images and audio clips
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Predicting human perception of the urban environment in a spatiotemporal urban setting using locally acquired street view images and audio clips

机译:使用本地获得的街道视图图像和音频剪辑预测天空城市环境中对城市环境的人类感知

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摘要

This study investigates people's perception of visual and auditory landscapes in a mixed-use urban environment. A set of audio and visual data is collected at different intervals during the day in local streets with the help of an audio recorder and camera setup. The High and Low-level features from the collected audio and visual datasets are captured with the help of custom Deep Learning (DL) models and other standard algorithms. The collected data is used in the perception survey, which included human subjects (n = 73). The evaluation of the individual perception is done with the help of eight and six auditory and visual perceptual attributes, respectively. The results from the survey are then studied in relation to the features extracted from algorithms. Finally, a street of 10 km length is chosen within the study area where a spatiotemporal street-level visual and auditory data is collected. Statistical analysis and Machine Learning modeling are performed in the surveyed dataset to predict the human perception of audio and visual scenes in the chosen street. The results helped in understanding specific audio and visual features that are related to individual perceptions. Further, these relationships are utilized to create prediction models, which helped in creating spatiotemporal visual and auditory perception maps.
机译:本研究调查了人们对混合使用城市环境中的视觉和听觉景观的看法。在当天在当地的街道中的一天,在当天在录音机和摄像机设置的帮助下以不同的间隔收集一组音频和视觉数据。借助自定义深度学习(DL)模型和其他标准算法,捕获来自收集的音频和视觉数据集的高低级别功能。收集的数据用于感知调查,其中包括人类受试者(n = 73)。对个人感知的评估分别在八个和六个听觉和视觉感知属性的帮助下进行。然后研究调查的结果与从算法中提取的特征相关研究。最后,在研究区域内选择10公里长的街道,其中收集了时空街道视觉和听觉数据的研究区。在被调查的数据集中执行统计分析和机器学习建模,以预测所选街道的音频和视觉场景的人类感知。结果有助于了解与个人看法有关的特定音频和视觉功能。此外,这些关系利用来创建预测模型,这有助于创建时空视觉和听觉感知地图。

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