Differential Time-variant Traffic Flow Prediction Based on Deep Learning
Wei, Zhang1,2; Fenghua, Zhu1; Yuanyuan, Chen1; Xiao, Wang1; Gang, Xiong1; Fei-Yue, Wang1
2020
会议名称2020 IEEE 23rd International Conference on Intelligent Transportation Systems
页码1-6
会议日期20-23 Sept. 2020
会议地点Rhodes, Greece
出版者IEEE
摘要

The accuracy of traffic flow prediction significantly impacts the operation of Intelligent Transportation Systems (ITS). In this paper, we propose a Differential Time-variant (DT) Traffic Flow Prediction method, which can remarkably improve the accuracy and reduce the variance of traffic flow forecast based on deep learning models. To extract the temporal trend of the traffic flow at different locations, we apply data difference to preprocess the raw traffic data. This method can better eliminate the uncertainties of traffic flow series like volatility and anomaly. Then, time information is introduced in the form of One-Hot Encoding to effectively model the temporal patterns of traffic flow. Necessary analysis is presented to demonstrate the rationality. Three popular deep neural networks are applied to test our method, and experimental results on PeMS data sets indicate that it can make more accurate prediction compared with the same model.

收录类别EI
语种英语
文献类型会议论文
条目标识符http://ir.ia.ac.cn/handle/173211/44312
专题多模态人工智能系统全国重点实验室_平行智能技术与系统团队
通讯作者Yuanyuan, Chen
作者单位1.State Key Laboratory for Management and Control of Complex Systems, Institute of Automation, Chinese Academy of Sciences
2.School of Artificial Intelligence, University of Chinese Academy of Sciences
第一作者单位中国科学院自动化研究所
通讯作者单位中国科学院自动化研究所
推荐引用方式
GB/T 7714
Wei, Zhang,Fenghua, Zhu,Yuanyuan, Chen,et al. Differential Time-variant Traffic Flow Prediction Based on Deep Learning[C]:IEEE,2020:1-6.
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