SURGE: Continuous Detection of Bursty Regions Over a Stream of Spatial Objects
September 26, 2017 ยท Declared Dead ยท ๐ IEEE International Conference on Data Engineering
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Authors
Kaiyu Feng, Tao Guo, Gao Cong, Sourav S. Bhowmicks, Shuai Ma
arXiv ID
1709.09287
Category
cs.DB: Databases
Citations
19
Venue
IEEE International Conference on Data Engineering
Last Checked
3 months ago
Abstract
With the proliferation of mobile devices and location-based services, continuous generation of massive volume of streaming spatial objects (i.e., geo-tagged data) opens up new opportunities to address real-world problems by analyzing them. In this paper, we present a novel continuous bursty region detection problem that aims to continuously detect a bursty region of a given size in a specified geographical area from a stream of spatial objects. Specifically, a bursty region shows maximum spike in the number of spatial objects in a given time window. The problem is useful in addressing several real-world challenges such as surge pricing problem in online transportation and disease outbreak detection. To solve the problem, we propose an exact solution and two approximate solutions, and the approximation ratio is $\frac{1-ฮฑ}{4}$ in terms of the burst score, where $ฮฑ$ is a parameter to control the burst score. We further extend these solutions to support detection of top-$k$ bursty regions. Extensive experiments with real-world data are conducted to demonstrate the efficiency and effectiveness of our solutions.
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