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An indoor positioning system facilitated by computer vision

机译:通过计算机视觉促进室内定位系统

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The purpose of this paper is to present our work on a novel method which allows for previously unattainable accuracy in indoor positioning. Global positioning has changed the way in which we interact with our specific locations on a real time basis, as can be seen most prominently in mapping applications. However, global positioning is severely limited indoors where location is equally important, and further, requires greater accuracy. While there have been attempts to implement indoor positioning, these methods are severely lacking, prompting us to take a completely new approach. We use low cost webcams and a series of algorithms to detect people in a video frame, and then identify and position them. Accuracy for identification is upwards of 95% and positioning accuracy is within a half-meter for the majority of the frame of view, all while running in real time on mobile CPUs. Such a system can be implemented on large scales to allow for exciting new applications; indoor directions in malls and public transportation hubs, new forms of human-robot interactions and consumer habit analysis in stores are all now possible.
机译:本文的目的是在新的方法上展示我们的工作,该方法允许在室内定位方面以前无法实现的准确性。全球定位改变了我们在实时与我们的特定位置互动的方式,如可以在映射应用程序中最突出地看到的那样。然而,全球定位在室内严重有限,其中位置同样重要的,并且进一步需要更高的准确性。虽然已经尝试实施室内定位,但这些方法严重缺乏,促使我们采取全新的方法。我们使用低成本的网络摄像头和一系列算法来检测视频帧中的人,然后识别并定位它们。识别的准确性为95 %,定位精度在大多数视图框架内的半尺寸内,一切都在移动CPU上实时运行。这种系统可以在大尺度上实现,以允许令人兴奋的新应用;商场和公共交通中心的室内方向,现在可以在商店的新形式的人体机器人互动和消费习惯分析。

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