Traffic Flow Anomaly Detection Based on Wavelet Denoising and Support Vector Regression

Author:

Wu Jian1,Cui Zhiming1,Shi Yujie1,Su Dongliang1

Affiliation:

1. The Institute of Intelligent Information Processing and Application Soochow University, Suzhou 215006, China

Abstract

In order to improve the speed and accuracy of traffic flow anomaly detection in real-time traffic system, we proposed an anomaly detection algorithm which is based on wavelet denoising and support vector regression. Firstly, we use wavelet transform to decompose and restructure the sampled data, and then apply support vector regression to data training. By fitting the obtained data, it can achieve dynamic prediction of traffic flow parameters. Through comparing the predictive values with the measured values of traffic flow parameters, we can achieve traffic anomaly detection. Experimental results show that the method proposed in this paper has a higher detection rate under the same false alarm rate.

Publisher

SAGE Publications

Cited by 3 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Attention graph: Learning effective visual features for large-scale image classification;Journal of Algorithms & Computational Technology;2022-01

2. A New Anomaly Detection Method Based on IGTE and IGFE;Lecture Notes of the Institute for Computer Sciences, Social Informatics and Telecommunications Engineering;2015

3. Data Mining and Optimize TCM Prescription Compatibility Based on WDS-PLS;Applied Mechanics and Materials;2014-11

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