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A Data-Driven Approach for Tracking Human Litter in Modern Cities

机译:现代城市跟踪人类垃圾的数据驱动方法

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In the recent years, human litter, such as food waste, diapers, construction materials, used motor oil, hypodermic needles, etc, is causing growing problems for the environment and quality of life in modern cities. Data about this waste has a significant importance in the field of environmental sciences due to its important use cases that span saving marine life, reducing the risk from natural hazards, community cleaning efforts, etc. In addition, such litter spreads several diseases in urban areas with high populations such as undeveloped neighborhoods in large modern cities. In this paper, we introduce a data-driven approach that enables environmental scientists and organizations to track, manage, and model human litter data at a large scale through smart technologies. We make a major on-going effort to collect and maintain this data worldwide from different sources through a community of environmental scientists and partner organizations. With the increasing volume of collected datasets, existing software packages, such as GIS software, do not scale to process, query, and visualize such data. To overcome this, we provide a scalable data management and visualization framework that digests datasets from different sources, with different formats, in a scalable backend that cleans, integrates, and unifies them in a structured form. On top of this backend, frontend applications are built to visualize litter data at multiple spatial levels, from continents and oceans to street level, to enable new opportunities for both environmental scientists and organizations to track, model, and clean up litter data. The framework is currently managing thirty real datasets and provide different interfaces for different kinds of users.
机译:近年来,人类垃圾,如食品废物,尿布,建筑材料,二手汽车油,皮下注射针等,导致现代城市环境和生活质量日益增长的问题。关于这种废物的数据由于其跨越海洋生物的重要用例,减少了自然灾害,社区清洁工作等的重要用例,在环境科学领域具有重要意义。此外,这种垃圾在城市地区传播了几种疾病具有高人群,如大型现代城市的未开发社区。在本文中,我们介绍了一种数据驱动方法,使环境科学家和组织能够通过智能技术以大规模跟踪,管理和模拟人类垃圾数据。我们通过环境科学家和合作伙伴组织的社区,在全球范围内收集和维护全球的主要努力。随着收集数据集的越来越大,现有的软件包(如GIS软件)不扩展到处理,查询和可视化此类数据。为了克服这一点,我们提供了一种可扩展的数据管理和可视化框架,可在清除,集成和统一它们以结构形式的可缩放后端中介绍不同源的数据集。在此后端之上,建立前端应用程序,以使来自大陆和海洋到街道级别的多个空间级别的垃圾数据,以实现环境科学家和组织的新机会,以跟踪,模型和清理垃圾数据。该框架目前正在管理三十个实时数据集,并为不同类型的用户提供不同的接口。

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