作者
Zhiyong Yu, Huijuan Chang, Zhiwen Yu, Bin Guo, Rongye Shi
发表日期
2021/3/11
期刊
IEEE Transactions on Mobile Computing
卷号
21
期号
11
页码范围
4025-4037
出版商
IEEE
简介
Accurate acquisition of air quality is important for improving human well-being. However, directly monitoring air quality at all locations is costly. The challenge is how we can select a small number of locations to monitor the air quality such that the estimation error of air quality at other locations can be minimized. In this paper, a general location selection strategy is proposed based on active learning, which involves iterations of a selector and an estimator. We implement four instances of this general strategy to embody it: KAL (Active Learning based on Kriging), TAL (Active Learning based on Regression Tree), KMAL (Active Learning based on Kriging and MPGR) and TMAL (Active Learning based on Regression Tree and MPGR). The estimator of KAL or TAL can estimate the air quality at remaining locations from air quality samples at monitoring locations, leveraging spatial or cross-domain correlation of air quality …
引用总数
20212022202320241354
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