JOURNAL ARTICLE

A Spatio-Temporal Graph Neural Network Approach for Traffic Flow Prediction

Yanbing LiWei ZhaoHuilong Fan

Year: 2022 Journal:   Mathematics Vol: 10 (10)Pages: 1754-1754   Publisher: Multidisciplinary Digital Publishing Institute

Abstract

The accuracy of short-term traffic flow prediction is one of the important issues in the construction of smart cities, and it is an effective way to solve the problem of traffic congestion. Most previous studies could not effectively mine the potential relationship between the temporal and spatial dimensions of traffic data flow. Due to the large variability in the traffic flow data of road conditions, we analyzed it with “dynamic”, using a dynamic-aware graph neural network model for the hidden relationships between space-time in the deep learning segment. In this paper, we propose a dynamic perceptual graph neural network model for the temporal and spatial hidden relationships of deep learning segments. This model mixes temporal features and spatial features with graphs and expresses them. The temporal features and spatial features are connected to each other to learn potential relationships, so as to more accurately predict the traffic speed in the future time period, we performed experiments on real data sets and compared with some baseline models. The experiments show that the method proposed in this paper has certain advantages.

Keywords:
Computer science Traffic flow (computer networking) Graph Deep learning Temporal database Data mining Artificial intelligence Artificial neural network Traffic congestion Machine learning Theoretical computer science Engineering

Metrics

22
Cited By
2.88
FWCI (Field Weighted Citation Impact)
45
Refs
0.87
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Traffic Prediction and Management Techniques
Physical Sciences →  Engineering →  Building and Construction
Transportation Planning and Optimization
Social Sciences →  Social Sciences →  Transportation
Traffic control and management
Physical Sciences →  Engineering →  Control and Systems Engineering

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