Traffic flow prediction method based on spatial copula theory

A traffic flow and theoretical technology, applied in traffic flow detection, road vehicle traffic control system, forecasting, etc., can solve problems such as limited scope of application, impact on time series continuity, and failure to capture dependencies, so as to reduce investment and strengthen The effect of innovative meaning

Active Publication Date: 2016-07-06
BEIHANG UNIV
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  • Application Information

AI Technical Summary

Problems solved by technology

The ARIMA model is suitable for short-term passenger flow forecasting and requires complete and accurate historical data, but the lack of data affects the continuity of the time series and cannot capture the dependence between adjacent time series observations; the K-NN algorithm is based on the k samples to determine the samples to be predicted, and the scope of application is li

Method used

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  • Traffic flow prediction method based on spatial copula theory
  • Traffic flow prediction method based on spatial copula theory
  • Traffic flow prediction method based on spatial copula theory

Examples

Experimental program
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Embodiment

[0042] A traffic flow prediction method based on spatial correlation theory, specifically as follows:

[0043] 1), such as figure 2 As shown, it is a certain expressway section in China. There are a total of 490 effective sample points in this section. About 1 / 4 of the magnetic induction coil equipment is selected as a sample in the global range of the section. The required data includes the geographical coordinates of each equipment and daily traffic. flow. In addition, the latitude and longitude coordinates need to be converted to facilitate subsequent distance calculations. The data conversion is as follows:

[0044] (89.5538,8.1358,74000),(89.0651,8.3785,71000)…

[0045] (39.0882,66.5354,36500)…(100.6302,10.1570,13700)

[0046] The statistical period is one day, and the sample data is 123 groups.

[0047] 2), calculate the distance between two samples, and use the Matlab tool to obtain a symmetrical distance matrix. The result is as follows:

[0048]

[0049] 3)...

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Abstract

The invention discloses a traffic flow prediction method based on the spatial copula theory. The traffic flow prediction method comprises the steps of obtaining the geographical positions of magnetic induction loop devices in a road section and the traffic flow data counted by the magnetic induction loop devices, calculating the distances between each two magnetic induction loop devices based on the geographic positions of the sample points, determining a correlation function model suitable for the samples according to semivariable functions, conducting edge distribution fitting through the sample traffic flow, selecting a copula model to calculate the correlation coefficient of traffic flow based on distance, so as to verify the feasibility of the selected copula model, and calling the model for prediction. The spatial characteristics of traffic flow are taken into consideration, the traffic flow distribution types are explored, and high precision and reliability are ensured.

Description

technical field [0001] The invention belongs to the technical field of intelligent traffic information processing, in particular to a traffic flow prediction method based on space copula (association) theory. Background technique [0002] With the development of the economy and the popularization of automobiles, the traffic flow on the roads increases year by year, and its growth rate exceeds the construction speed of the roads, causing traffic jams to always exist. Therefore, it is a foregone conclusion to build roads to expand traffic capacity. Traffic flow refers to the amount of traffic passing through a certain location, a certain section or a certain lane of a road within a selected period of time. At the same time, traffic flow is also one of the elements of the traffic system, which is of great significance to the intelligent transportation system (ITS). Reduce road congestion and improve the utilization of road resources. In the data age, the accuracy and complet...

Claims

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Application Information

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IPC IPC(8): G08G1/01G08G1/042G06Q10/04G06Q50/30
CPCG06Q10/04G06Q50/30G08G1/0125G08G1/042
Inventor 马晓磊栾森丁川刘从从
Owner BEIHANG UNIV
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