使用计算机视觉和机器学习构建基于众包的残疾人服务路由应用程序

N. Blanc, Zhan Liu, O. Ertz, Diego Rojas, R. Sandoz, M. Sokhn, J. Ingensand, J. Loubier
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引用次数: 2

摘要

提供全球性和可扩展的工具来评估残疾行人的服务水平(DPLoS)是一个现实的需求,但在当今世界仍然是一个挑战。这是由于缺乏能够方便地衡量适合残疾人的服务水平的工具,也是由于对有关现有服务水平的信息的可用性的关注有限,特别是在实时方面。本文描述了在这些需求方面取得进展的初步结果。它还包括一个导航工具的设计,可以帮助残疾人在城市中走动,根据残疾人的残疾情况建议最适合的路线。主要主题是如何使用先进的计算机视觉技术,以及如何从手持设备的普及中受益。我们的方法旨在展示众包技术如何通过收集和结合最新数据和有价值的实地观察来提高数据质量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Building a Crowdsourcing based Disabled Pedestrian Level of Service routing application using Computer Vision and Machine Learning
The availability of global and scalable tools to assess disabled pedestrian level of service (DPLoS) is a real need, yet still a challenge in today’s world. This is due to the lack of tools that can ease the measurement of a level of service adapted to disabled people, and also to the limitation concerns about the availability of information regarding the existing level of service, especially in real time. This paper describes preliminary results to progress on those needs. It also includes a design for a navigation tool that can help a disabled person move around a city by suggesting the most adapted routes according to the person’s disabilities. The main topics are how to use advanced computer vision technologies, and how to benefit from the prevalence of handheld devices. Our approach intends to show how crowdsourcing techniques can improve data quality by gathering and combining up-to-date data with valuable field observations.
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