课题基金 / 基金详情

CAREER: Cross-Domain Urban Data Mining

CAREER: Cross-Domain Urban Data Mining
职业:跨域城市数据挖掘
批准号:
1652525
负责人:
Zhenhui Li
金额:
$49.73万
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2017
资助国家:
美国
项目状态:
已结题
起止时间:
2017-08-01 至 2021-04-30

项目摘要

项目成果

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中文摘要
翻译
根据美国2010年人口普查,大约80.7%的美国人口生活在城市地区。城市化使人们的生活现代化,但也产生了许多城市问题,如交通拥堵、空气污染、健康、教育和生活质量。与此同时,随着传感技术的快速进步和数字文档的广泛使用,越来越多的城市数据正以数字形式积累,包括人类踪迹、交通、空气质量、当地事件、车辆碰撞、噪音报告等。美国的许多城市(如纽约市、芝加哥和洛杉矶)都加入了开放数据倡议,并创建了网站向公众发布城市数据。这些大数据蕴含着丰富的城市知识,可以帮助我们应对许多关键的城市挑战。该项目开发了新颖的数据挖掘技术,帮助人们发现城市大数据中复杂的相关性。虽然每种类型的城市数据以前都是在自己的领域进行分析的,但我们缺乏一种原则性的方法来整合和分析从不同领域收集的数据,以便从多个方面更好地理解城市问题。该项目研究系统的解决方案,以集成和建模城市数据,发现隐藏的模式,并以可解释的方式呈现和可视化结果。关键的创新在于如何有效地利用城市异质数据,并从这些数据中学习相互补充的知识。该项目探索激发其他研究领域的现实问题,如社会科学、交通、生态和城市规划,并承诺在这些领域产生跨学科影响。最终,该项目致力于推动城市计算技术的发展,这是一个新兴的跨学科研究领域,旨在应对快速发展的城市环境中的挑战和机遇。
英文摘要
According to U.S. 2010 Census, about 80.7% of the U.S. population live in urban area. Urbanization has modernized people's lives but also generated many urban issues such as traffic congestion, air pollution, health, education, and life quality. In the meantime, with the rapid progress in sensing technologies and widely-used digital documentation, increasing amount of urban data are being accumulated in the digital form, including human traces, traffic, air quality, local events, vehicle collisions, noise reports, and many more. Many cities in the U.S. (e.g., New York City, Chicago, and Los Angeles) have joined the open data initiative and created websites to release the city data to the public. Such big data implies rich knowledge about a city and could empower us to address many critical urban challenges.This project develops novel data mining techniques to help people uncover the complicated correlations in the big urban data. While each type of urban data has been previously analyzed in its own domain, we lack a principled approach to integrate and analyze the data collected from different domains in order to better understand the urban issues from multiple aspects. The project investigates systematic solutions to integrate and model the urban data, discover the hidden patterns, and present and visualize the results in an interpretable way. The key innovation lies in how to effectively harness the heterogeneous urban data and learn mutually reinforced knowledge from such data. The project explores motivating real-world problems from other research fields such as social science, transportation, ecology, and urban planning, and promises interdisciplinary impacts in these fields. Ultimately, this project strives to advance the techniques in urban computing, a nascent interdisciplinary research field that addresses the challenges and opportunities in the fast-evolving urban environments.
期刊论文(1)
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会议论文
DOI: 10.1609/aaai.v32i1.11836
发表时间: 2018-02
期刊:
影响因子: --
作者: [Huaxiu Yao;Fei Wu;Jintao Ke;Xianfeng Tang;Yitian Jia;Siyu Lu;Pinghua Gong;Jieping Ye;Z. Li-]
通讯作者: Huaxiu Yao;Fei Wu;Jintao Ke;Xianfeng Tang;Yitian Jia;Siyu Lu;Pinghua Gong;Jieping Ye;Z. Li-
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