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dc.contributor.author王瀚阳zh_TW
dc.contributor.author庄仁辉zh_TW
dc.contributor.author陈华总zh_TW
dc.contributor.authorWang, Han-Yangen_US
dc.contributor.authorChuang Jen-Huien_US
dc.contributor.authorChen, Hua-Tsungen_US
dc.date.accessioned2018-01-24T07:40:33Z-
dc.date.available2018-01-24T07:40:33Z-
dc.date.issued2017en_US
dc.identifier.urihttp://etd.lib.nctu.edu.tw/cdrfb3/record/nctu/#GT070456628en_US
dc.identifier.urihttp://hdl.handle.net/11536/141365-
dc.description.abstract近年来,无人机因为其优异的机动性与在高空中飞行的优势,其相关应用已渐趋普及。而人物行为分析,是安全监控中极为重要的议题,但目前针对空拍影像的相关研究较少。利用无人机所拍摄的空拍影像,因为透视投影的关系,影像中的人物会有倾斜情形,使得一般应用于传统影像的深度学习架构,在空拍影像中的人物侦测效果并不佳。本研究为了克服空拍影像中的透视投影特性,实际利用无人机拍摄大量的空拍影像以建立空拍影像资料集;我们透过修改现有的深度学习架构,利用此空拍影像资料集重新训练出新的模型,以改善原本深度学习架构在拍影像中表现不佳的情况;本研究也提出了一项基于影像后处理判断所侦测人物姿态正常与否的方法,藉此达到空拍影像人物行为分析的目标。zh_TW
dc.description.abstractDue to the advantages of high mobility and the ability to fly in the sky, drone has inspired more and more applications in recent years. Deep learning-based human activity analysis is an important topic in security surveillance, however, the research works on such analysis with aer-ial images are insufficient so far. Because of perspective projection, people in aerial images are tilted, and degrading the performance of human activity analysis. In order to cope with the issue of perspective projection for aerial images, we use drone to take a large amount of aerial images and build a dataset of human. We also modify the original CNN architecture and use this dataset to retrain the new model for aerial images. Finally, a post-processing method is proposed to classify the pose of a detected person as normal or abnormal, therefore, accomplishing the task of human activity analysis with aerial images.en_US
dc.language.isozh_TWen_US
dc.subject深度学习zh_TW
dc.subject无人机zh_TW
dc.subject空拍影像zh_TW
dc.subject人物侦测zh_TW
dc.subject行为分析zh_TW
dc.subjectdeep learningen_US
dc.subjectdroneen_US
dc.subjectaerial imageen_US
dc.subjecthuman detectionen_US
dc.subjectactivity analysisen_US
dc.title基于深度学习对空拍影像 进行人物行为分析zh_TW
dc.titleDeep Learning-based Human Activity Analysis for Aerial Imagesen_US
dc.typeThesisen_US
dc.contributor.department多媒体工程研究所zh_TW
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